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Atlantic meridional overturning circulation

The Atlantic meridional overturning circulation (AMOC) is part of a global thermohaline circulation in the oceans and is the zonally integrated component of surface and deep currents in the Atlantic Ocean. It is characterized by a northward flow of warm, salty water in the upper layers of the Atlantic, and a southward flow of colder, deep waters. These "limbs" are linked by regions of overturning in the Nordic and Labrador Seas and the Southern Ocean, although the extent of overturning in the Labrador Sea is disputed.[1][2] The AMOC is an important component of the Earth's climate system, and is a result of both atmospheric and thermohaline drivers.

Topographic map of the Nordic Seas and subpolar basins with surface currents (solid curves) and deep currents (dashed curves) that form a portion of the Atlantic meridional overturning circulation. Colors of curves indicate approximate temperatures.

Climate change has the potential to weaken the AMOC through increases in ocean heat content and elevated freshwater flows from the melting ice sheets. Oceanographic reconstructions generally suggest that the AMOC is already weaker than it was before the Industrial Revolution,[3][4] although there is a robust debate over the role of climate change versus the circulation's century-scale and millennial-scale variability.[5][6] Climate models consistently project that the AMOC would weaken further over the 21st century,[7]: 19  which would affect average temperature over areas like Scandinavia and Britain that are warmed by the North Atlantic drift,[8] as well as accelerate sea level rise around North America and reduce primary production in the North Atlantic.[9]

Severe weakening of the AMOC has the potential to cause an outright collapse of the circulation, which would not be easily reversible and thus constitute one of the tipping points in the climate system.[10] A shutdown would have far greater impacts than a slowdown on both the marine and some terrestrial ecosystems: it would lower the average temperature and precipitation in Europe, slashing the region's agricultural output,[11] and may have a substantial effect on extreme weather events.[12] Earth system models used in Coupled Model Intercomparison Project indicate that shutdown is only likely after high levels of warming are sustained well after 2100,[13][14][15] but they have been criticized by some researchers for what they saw as excessive stability,[16] and a number of lower-complexity studies argue that a collapse can happen considerably earlier.[17][18] One of those lower-complexity projections suggests that AMOC collapse could happen around 2057,[19] but many scientists are skeptical of the claim.[20] On the other hand, paleoceanographic research suggests that the AMOC may be even more stable than what is predicted by most models.[21][22]

Overall structure Edit

 
AMOC in relation to the global thermohaline circulation (animation)

The Atlantic meridional overturning circulation (AMOC) is part of a global thermohaline circulation in the oceans and is the zonally integrated component of surface and deep currents in the Atlantic Ocean. The general thermohaline circulation is a pattern of water flow through the world's oceans. Warm water flows along the surface until it reaches one of a few special spots near Greenland or Antarctica. There, the water sinks, and then crawls across the bottom of the ocean, miles/kilometers deep, over hundreds of years, gradually rising in the Pacific and Indian oceans. Northward surface flow transports a substantial amount of heat energy from the tropics and Southern Hemisphere toward the North Atlantic, where the heat is lost to the atmosphere due to the strong temperature gradient. Upon losing its heat, the water becomes denser and sinks. This densification links the warm, surface limb with the cold, deep return limb at regions of convection in the Nordic and Labrador Seas. The limbs are also linked in regions of upwelling, where a divergence of surface waters causes Ekman suction and an upward flux of deep water.[citation needed]

AMOC consists of upper and lower cells. The upper cell consists of northward surface flow as well as southward return flow of North Atlantic Deep Water (NADW). The lower cell represents northward flow of dense Antarctic Bottom Water (AABW) – this bathes the abyssal ocean.[1]

AMOC exerts a major control on North Atlantic sea level, particularly along the Northeast Coast of North America. Exceptional AMOC weakening during the winter of 2009–10 has been implicated in a damaging 13 cm sea level rise along the New York coastline.[23]

There may be two stable states of the AMOC: a strong circulation (as seen over recent millennia) and a weak circulation mode, as suggested by atmosphere-ocean coupled general circulation models and Earth systems models of intermediate complexity.[18] A number of Earth system models do not identify this bistability, however.[18]

Effects on climate Edit

The net northward heat transport in the Atlantic is unique among global oceans, and is responsible for the relative warmth of the Northern Hemisphere.[1] AMOC carries up to 25% of the northward global atmosphere-ocean heat transport in the northern hemisphere.[24] This is generally thought to ameliorate the climate of Northwest Europe, although this effect is the subject of debate.[25][26][27]

As well as acting as a heat pump and high-latitude heat sink,[28][29] AMOC is the largest carbon sink in the Northern Hemisphere, sequestering approximately 0.7 Pg (0.7 Gt) C/year.[30] This sequestration has significant implications for evolution of anthropogenic global warming – especially with respect to the recent and projected future decline in AMOC vigor.[31]

Thermohaline circulation and fresh water Edit

 
The red end of the spectrum indicates slowing in this presentation of the trend of velocities derived from NASA Pathfinder altimeter data from May 1992 to June 2002. Source: NASA.

Heat is transported from the equator polewards mostly by the atmosphere but also by ocean currents, with warm water near the surface and cold water at deeper levels. The best known segment of this circulation is the Gulf Stream, a wind-driven gyre, which transports warm water from the Caribbean northwards. A northwards branch of the Gulf Stream, the North Atlantic Drift, is part of the thermohaline circulation (THC), transporting warmth further north to the North Atlantic, where its effect in warming the atmosphere contributes to warming Europe.[citation needed]

The evaporation of ocean water in the North Atlantic increases the salinity of the water as well as cooling it, both actions increasing the density of water at the surface. Formation of sea ice further increases the salinity and density, because salt is ejected into the ocean when sea ice forms.[32] This dense water then sinks and the circulation stream continues in a southerly direction. However, the Atlantic Meridional Overturning Circulation (AMOC) is driven by ocean temperature and salinity differences. But freshwater decreases ocean water salinity, and through this process prevents colder waters sinking. This mechanism possibly caused the cold ocean surface temperature anomaly currently observed near Greenland (Cold blob (North Atlantic)).[33]

Global warming could lead to an increase in freshwater in the northern oceans, by melting glaciers in Greenland, and by increasing precipitation, especially through Siberian rivers.[34][35]

Studies of the Florida Current suggest that the Gulf Stream weakens with cooling, being weakest (by ~10%) during the Little Ice Age.[36]

Regions of overturning Edit

Convection and return flow in the Nordic Seas Edit

Low air temperatures at high latitudes cause substantial sea-air heat flux, driving a density increase and convection in the water column. Open ocean convection occurs in deep plumes and is particularly strong in winter when the sea-air temperature difference is largest.[37] Of the 6 sverdrup (Sv) of dense water that flows southward over the GSR (Greenland-Scotland Ridge), 3 Sv does so via the Denmark Strait forming Denmark Strait Overflow Water (DSOW). 0.5-1 Sv flows over the Iceland-Faroe ridge and the remaining 2–2.5 Sv returns through the Faroe-Shetland Channel; these two flows form Iceland Scotland Overflow Water (ISOW). The majority of flow over the Faroe-Shetland ridge flows through the Faroe-Bank Channel and soon joins that which flowed over the Iceland-Faroe ridge, to flow southward at depth along the Eastern flank of the Reykjanes Ridge. As ISOW overflows the GSR (Greenland-Scotland Ridge), it turbulently entrains intermediate density waters such as Sub-Polar Mode water and Labrador Sea Water. This grouping of water-masses then moves geostrophically southward along the East flank of Reykjanes Ridge, through the Charlie Gibbs Fracture Zone and then northward to join DSOW. These waters are sometimes referred to as Nordic Seas Overflow Water (NSOW). NSOW flows cyclonically following the surface route of the SPG (sub-polar gyre) around the Labrador Sea and further entrains Labrador Sea Water (LSW).[38]

Convection is known to be suppressed at these high latitudes by sea-ice cover. Floating sea ice "caps" the surface, reducing the ability for heat to move from the sea to the air. This in turn reduces convection and deep return flow from the region. The summer Arctic sea ice cover has undergone dramatic retreat since satellite records began in 1979, amounting to a loss of almost 30% of the September ice cover in 39 years.[39][40] Climate model simulations suggest that rapid and sustained September Arctic ice loss is likely in future 21st century climate projections.[41][42][43][44]

Convection and entrainment in the Labrador Sea Edit

Characteristically fresh LSW is formed at intermediate depths by deep convection in the central Labrador Sea, particularly during winter storms.[37] This convection is not deep enough to penetrate into the NSOW layer which forms the deep waters of the Labrador Sea. LSW joins NSOW to move southward out of the Labrador Sea: while NSOW easily passes under the NAC at the North-West Corner, some LSW is retained. This diversion and retention by the SPG explains its presence and entrainment near the GSR (Greenland-Scotland Ridge) overflows. Most of the diverted LSW however splits off before the CGFZ (Charlie-Gibbs Fracture Zone) and remains in the western SPG. LSW production is highly dependent on sea-air heat flux and yearly production typically ranges from 3–9 Sv.[45][46] ISOW is produced in proportion to the density gradient across the Iceland-Scotland Ridge and as such is sensitive to LSW production which affects the downstream density[47][48] More indirectly, increased LSW production is associated with a strengthened SPG and hypothesized to be anti-correlated with ISOW[49][50][51] This interplay confounds any simple extension of a reduction in individual overflow waters to a reduction in AMOC. LSW production is understood to have been minimal prior to the 8.2 ka event,[52] with the SPG thought to have existed before in a weakened, non-convective state.[53] There is debate about the extent to which convection in the Labrador Sea plays a role in AMOC circulation, particularly in the connection between Labrador sea variability and AMOC variability.[54] Observational studies have been inconclusive about whether this connection exists.[1] New observations with the OSNAP array show little contribution from the Labrador Sea to overturning, and hydrographic observations from ships dating back to 1990 show similar results.[2][55] Nevertheless, older estimates of LSW formation using different techniques suggest larger overturning.[56]

Atlantic upwelling Edit

For reasons of conservation of mass, the global ocean system must upwell an equal volume of water to that downwelled. Upwelling in the Atlantic itself occurs mostly due to coastal and equatorial upwelling mechanisms.

Coastal upwelling occurs as a result of Ekman transport along the interface between land and a wind-driven current. In the Atlantic, this particularly occurs around the Canary Current and Benguela Current. Upwelling in these two regions has been modelled to be in antiphase, an effect known as "upwelling see-saw".[57]

Equatorial upwelling generally occurs due to atmospheric forcing and divergence due to the opposing direction of the Coriolis force either side of the equator. The Atlantic features more complex mechanisms such as migration of the thermocline, particularly in the Eastern Atlantic.[58]

Southern Ocean upwelling Edit

North Atlantic Deep Water is primarily upwelled at the southern end of the Atlantic transect, in the Southern Ocean.[29] This upwelling comprises the majority of upwelling normally associated with AMOC, and links it with the global circulation.[1] On a global scale, observations suggest 80% of deepwater upwells in the Southern Ocean.[59]

This upwelling supplies large quantities of nutrients to the surface, which supports biological activity. Surface supply of nutrients is critical to the ocean's functioning as a carbon sink on long timescales. Furthermore, upwelled water has low concentrations of dissolved carbon, as the water is typically 1000 years old and has not been sensitive to anthropogenic CO2 increases in the atmosphere.[60] Because of its low carbon concentration, this upwelling functions as a carbon sink. Variability in the carbon sink over the observational period has been closely studied and debated.[61] The size of the sink is understood to have decreased until 2002, and then increased until 2012.[62]

After upwelling, the water is understood to take one of two pathways: water surfacing near to sea-ice generally forms dense bottomwater and is committed to AMOC's lower cell; water surfacing at lower latitudes moves further northward due to Ekman transport and is committed to the upper cell.[29][63]

Trends Edit

Reconstructions Edit

Climate reconstructions generally support the hypothesis that the AMOC is already weaker now than it was in the early 20th century. For instance, a 2010 statistical analysis found an ongoing weakening of the AMOC since the late 1930s, with an abrupt shift of a North Atlantic overturning cell around 1970.[64] Climate scientists Michael Mann of Penn State and Stefan Rahmstorf from the Potsdam Institute for Climate Impact Research suggested that the observed cold pattern during years of temperature records is a sign that the Atlantic Ocean's Meridional overturning circulation (AMOC) may be weakening. They published their findings in 2015, and concluded that the AMOC circulation was slowing throughout the 20th century, and that the weakness it demonstrated after 1975 was unprecedented over the last millennium. They suggested that even though the AMOC had experienced partial recovery after 1975, future Greenland ice sheet melt would be likely to weaken it further still.[3] Another 2015 study suggested that the AMOC has weakened by 15–20% in 200 years.[65] In 2018, another reconstruction suggested a weakening of around 15% since the mid-twentieth century.[66] However, all these findings were challenged by 2022 research which indicated that between 1900 and 2019, a climate change-induced trend did not begin to emerge until 1980, and it is still faint relative to the circulation's natural variability.[5]

Some studies attempt to go deeper into the preindustrial past. In 2018, one such paper suggested that the last 150 years of AMOC showed exceptional weakness when compared to the previous 1500 years, and it indicated a discrepancy in the modeled timing of AMOC decline after the Little Ice Age.[67] In February 2021, a study published in Nature Geoscience[4] reported that the preceding millennium had seen an unprecedented weakening of the AMOC, an indication that the change was caused by human actions.[68] Its co-author said that AMOC had already slowed by about 15%, with impacts now being seen: "In 20 to 30 years it is likely to weaken further, and that will inevitably influence our weather, so we would see an increase in storms and heatwaves in Europe, and sea level rises on the east coast of the US."[68] In February 2022, Nature Geoscience published a "Matters Arising" commentary article co-authored by 17 scientists, which disputed those findings and argued that the long-term AMOC trend remains uncertain.[6] The journal had also published a response from the authors of 2021 study to "Matters Arising" article, where they defended their findings.[69]

In February 2021, a study had reconstructed the past 30 years of AMOC variability and found no evidence of decline.[70] In August 2021, a study published in Nature Climate Change showed significant changes in eight independent AMOC indices, and suggested that they could indicate "an almost complete loss of stability". However, while it drew on over a century of ocean temperature and salinity data, it was forced to omit all data from 35 years before 1900 and after 1980 to maintain consistent records of all eight indicators.[18] In April 2022, another study published in Nature Climate Change used nearly 120 years of data between 1900 and 2019 and found no change between 1900 and 1980, with a single-sverdrup reduction in AMOC strength not emerging until 1980 – a variation which remains within range of natural variability.[5] A March 2022 review article concluded that while there may be a long-term weakening of the AMOC caused by global warming, it remains difficult to detect when analyzing its evolution since 1980, as that time frame presents both periods of weakening and strengthening, and the magnitude of either change is uncertain (in range between 5% and 25%). The review concluded with a call for more sensitive and longer-term research.[71]

Observations Edit

 
A 2021 comparison of the post-2004 RAPID observations with the 1980-2004 reconstructed AMOC trend.

Direct observations of the strength of the AMOC have been available only since 2004 from the RAPID array, an in situ mooring array at 26°N in the Atlantic, leaving only indirect evidence of the previous AMOC behavior.[72][68] While climate models predict a weakening of AMOC under global warming scenarios, they often struggle to match observations or reconstructions of the current. In particular, observed decline in the period 2004–2014 was of a factor 10 higher than that predicted by climate models participating in Phase 5 of the Coupled Model Intercomparison Project (CMIP5): however, some scientists attributed this to a larger-than-anticipated interdecadal variability of the circulation, rather than a climate-forced trend, suggesting that the AMOC would recover from it in only a few years.[73][74] In February 2021, a study indicated that the AMOC did in fact recover from that decline, and found no evidence of an overall AMOC decline over the past 30 years.[70] Likewise, a Science Advances study published in 2020 found no significant change in the AMOC circulation relative to 1990s, in spite of the substantial changes in the North Atlantic Ocean over the same period.[75]

2010 and earlier Edit

In April 2004, the hypothesis that the Gulf Stream is switching off received a boost when a retrospective analysis of U.S. satellite data seemed to show a slowing of the North Atlantic Gyre, the northern swirl of the Gulf Stream.[76]

In May 2005, Peter Wadhams reported in The Times (London) about the results of investigations in a submarine under the Arctic ice sheet measuring the giant chimneys of cold dense water, in which the cold dense water normally sinks down to the sea bed and is replaced by warm water, forming one of the engines of the North Atlantic Drift. He and his team found the chimneys to have virtually disappeared. Normally there are seven to twelve giant columns, but Wadhams found only two giant columns, both extremely weak.[77][78]

In 2005 a 30% reduction in the warm currents that carry water north from the Gulf Stream was observed from the last such measurement in 1992. The authors noted uncertainties in the measurements.[79] Following media discussions, Detlef Quadfasel pointed out that the uncertainty of the estimates of Bryden et al. is high, but says other factors and observations do support their results, and implications based on palaeoclimate records show drops of air temperature up to 10 °C within decades, linked to abrupt switches of ocean circulation when a certain threshold is reached. He concluded that further observations and modelling are crucial for providing early warning of a possible devastating breakdown of the circulation.[80] In response Quirin Schiermeier concluded that natural variation was the culprit for the observations but highlighted possible implications.[81][82]

In 2008, Vage et al. reported "the return of deep convection to the subpolar gyre in both the Labrador and Irminger seas in the winter of 2007–2008," employing "profiling float data from the Argo program to document deep mixing," and "a variety of in situ, satellite and reanalysis data" to set the context for the phenomenon. This might have a lot to do with the observations of variations in cold water chimney behaviour.[83]

Slowdown or possible shutdown of the thermohaline circulation Edit

 
A summary of the path of the thermohaline circulation. Blue paths represent deep-water currents, while red paths represent surface currents
 
An overview of the global thermohaline circulation. It shows how there is a northward surface flow in the Atlantic Ocean, which sinks and reverses direction in the Arctic. The freshening of the Arctic surface waters by meltwater could lead to a tipping point. This would have large effects on the strength and direction of the AMOC, with serious consequences for nature and human society.

The slowdown or shutdown of the thermohaline circulation is a hypothesized effect of climate change on a major ocean circulation. The Gulf Stream is part of this circulation, and is part of the reason why northern Europe is warmer than it would normally be; Edinburgh has the same latitude as Moscow. The Thermohaline Circulation influences the climate all over the world. The impacts of the decline and potential shutdown of the AMOC could include losses in agricultural output, ecosystem changes, and the triggering of other climate tipping points.[10] Other likely impacts of AMOC decline include reduced precipitation in mid-latitudes, changing patterns of strong precipitation in the tropics and Europe, and strengthening storms that follow the North Atlantic track. Finally, a decline would also be accompanied by strong sea level rise along the eastern North American coast.[54]

AMOC stability Edit

Atlantic overturning is not a static feature of global circulation, but rather a sensitive function of temperature and salinity distributions as well as atmospheric forcings. Paleoceanographic reconstructions of AMOC vigour and configuration have revealed significant variations over geologic time[84][85] complementing variation observed on shorter scales.[86][73]

Reconstructions of a "shutdown" or "Heinrich" mode of the North Atlantic have fuelled concerns about a future collapse of the overturning circulation due to global climate change. The physics of a shutdown would be underpinned by the Stommel Bifurcation, where increased freshwater forcing or warmer surface waters would lead to a sudden reduction in overturning from which the forcing must be substantially reduced before restart is possible.[87] In 2022, a study suggested that the strongly increasing "memory" of the past multidecadal variations in the system's circulation could act as an early warning indicator of a tipping point.[88]

An AMOC shutdown would be fuelled by two positive feedbacks, the accumulation of both freshwater and heat in areas of downwelling. AMOC exports freshwater from the North Atlantic, and a reduction in overturning would freshen waters and inhibit downwelling.[89] Similar to its export of freshwater, AMOC also partitions heat in the deep-ocean in a global warming regime – it is possible that a weakened AMOC would lead to increasing global temperatures and further stratification and slowdown.[28] However, this effect would be tempered by a concomitant reduction in warm water transport to the North Atlantic under a weakened AMOC, a negative feedback on the system. Moreover, a paleoceanographic reconstruction from 2022 found only a limited impact from massive freshwater forcing of the final Holocene deglaciation ~11,700–6,000 years ago, when the sea level rise amounted to around 50 metres. It suggested that most models overestimate the impact of freshwater forcing on AMOC.[21]

To complicate the issue of positive and negative feedbacks on temperature and salinity, the wind-driven component of AMOC is still not fully constrained. A relatively larger role of atmospheric forcing would lead to less dependency on the thermohaline factors listed above, and would render AMOC less vulnerable to temperature and salinity changes under global warming.[90]

Multiple equilibria versus single equilibrium Edit

As well as paleoceanographic reconstruction, the mechanism and likelihood of collapse has been investigated using climate models. Earth Models of Intermediate Complexity (EMICs) have historically predicted a modern AMOC to have multiple equilibria, characterised as warm, cold and shutdown modes.[91] This is in contrast to more comprehensive models, which bias towards a stable AMOC characterised by a single equilibrium. However, doubt is cast upon this stability by a modelled northward freshwater flux which is at odds with observations.[73][92] An unphysical northward flux in models acts as a negative feedback on overturning and falsely biases towards stability.[13] On the other hand, it was also suggested that the stationary freshwater forcing used in the classic EMICs is too simplistic, and a 2022 study which modified a Stommel's Bifurcation EMIC to use more realistic transient freshwater flux found that this change delayed tipping behavior in the model by over 1000 years. The study suggested that this simulation is more consistent with the reconstructions of AMOC response to Meltwater pulse 1A, when a similarly long delay was observed.[22]

Impacts of a slowdown Edit

Don Chambers from the University of South Florida College of Marine Science mentioned: "The major effect of a slowing AMOC is expected to be cooler winters and summers around the North Atlantic, and small regional increases in sea level on the North American coast."[93] James Hansen and Makiko Sato stated:

AMOC slowdown that causes cooling ~1 °C and perhaps affects weather patterns is very different from an AMOC shutdown that cools the North Atlantic several degrees Celsius; the latter would have dramatic effects on storms and be irreversible on the century time scale.[94]

A 2005 paper suggested that a severe AMOC slowdown would collapse North Atlantic plankton counts to less than half of their pre-disruption biomass due to the increased stratification and the severe drop in nutrient exchange amongst the ocean layers.[9] In 2019, a study suggested that the observed ~10% decline in the phytoplankton productivity in the North Atlantic may provide evidence for this hypothesis.[95]

Downturn of the Atlantic meridional overturning circulation has been tied to extreme regional sea level rise.[96] A 2015 paper simulated global ocean changes under AMOC slowdown and collapse scenarios and found that it would greatly decrease dissolved oxygen content in the North Atlantic, even as it would slightly increase globally due to greater increases across the other oceans.[97] In 2018, AMOC slowdown was also tied to increasing coastal deoxygenation.[98] In 2020, it was linked to increasing salinity in the South Atlantic.[99]

A study published in 2016 found further evidence for a considerable impact of a slowdown on sea level rise around the U.S. East Coast. The study confirms earlier research findings which identified the region as a hotspot for rising seas, with a potential to divert 3–4 times in the rate of rise, compared to the global average. The researchers attribute the possible increase to an ocean circulation mechanism called deep water formation, which is reduced due to AMOC slow down, leading to more warmer water pockets below the surface. Additionally, the study noted, "Our results suggest that higher carbon emission rates also contribute to increased [sea level rise] in this region compared to the global average."[100] In 2021, another paper had also suggested that the slowdown had played a role in the northeastern coast of the United States ending up as one of the fastest-warming regions of North America.[101][102]

In 2020, a study evaluated the effects of projected AMOC weakening in the 21st century under the Representative Concentration Pathway 8.5, which portrays a future of continually increasing emissions. In this scenario, a weakened AMOC would also slow down Arctic sea ice decline and delay the emergence of an ice-free Arctic by around 6 years, as well as preventing over 50% of sea ice loss on the edges of Labrador Sea, Greenland Sea, Barents Sea, and Sea of Okhotsk in the years 2061–2080. It also found a southward displacement of Intertropical Convergence Zone, with the associated rainfall increases to the north of it over the tropical Atlantic Ocean and decreases to the south, but cautioned that those trends would be dwarved by the far larger changes in precipitation associated with RCP 8.5. Finally, it found that this slowdown would further deepen Icelandic Low and Aleutian Low due to the displacement of westerly jets.[103]

 
A proposed tipping cascade where the AMOC would mediate a connection between the other tipping elements.

In 2021, a conceptual network model was developed, connecting the AMOC, Greenland ice sheet, West Antarctic Ice Sheet and the Amazon rainforest (all well-known climate tipping points) through a set of simplified equations. It suggested that while changes to AMOC are unlikely to trigger tipping behaviour in those other elements of the climate system on their own, any other climate element transitioning towards tipping would also affect the others through a connection mediated by the AMOC slowdown, potentially initiating a tipping cascade across multi-century timescales. Consequently, AMOC slowdown would reduce the global warming threshold beyond which any of those four elements (including the AMOC itself) could be expected to tip, as opposed to thresholds established from studying those elements in isolation.[104]

A 2021 assessment of the economic impact of climate tipping points found that while tipping points in general would likely increase the social cost of carbon by about 25%, with a 10% chance of tipping points more than doubling it, AMOC slowdown is likely to do the opposite and reduce the social cost of carbon by about −1.4%, since it would act to counteract the effects of warming in Europe, which is more developed and thus represents a larger fraction of the global GDP than the regions which would be impacted negatively by the slowdown.[105] The following year, this finding, and the broader findings of the study, were severely criticized by a group of scientists including Steve Keen and Timothy Lenton, who considered those findings to be a severe underestimate.[106] The authors have responded to this criticism by noting that their paper should be treated as the starting point in economic assessment of tipping points rather than the final word, and since most of the literature included in their meta-analysis lacks the ability to estimate nonmarket climate damages, their numbers are likely to be underestimates.[107]

Impacts of a shutdown Edit

 
Modelled 21st century warming under the "intermediate" global warming scenario (top). The potential collapse of the subpolar gyre in this scenario (middle). The collapse of the entire Atlantic Meriditional Overturning Circulation (bottom).

The possibility that the AMOC is a bistable system (which is either "on" or "off") and could collapse suddenly has been a topic of scientific discussion for a long time.[108][109] In 2004, The Guardian publicized the findings of a report commissioned by Pentagon defence adviser Andrew Marshall, which suggested that the average annual temperature in Europe would drop by 6 Fahrenheit between 2010 and 2020 as the result of an abrupt AMOC shutdown.[110]

In general, a shutdown of the thermohaline circulation (THC) caused by global warming would trigger cooling in the North Atlantic, Europe, and North America.[111][112] This would particularly affect areas such as the British Isles, France and the Nordic countries, which are warmed by the North Atlantic drift.[113][114] Major consequences, apart from regional cooling, could also include an increase in major floods and storms, a collapse of plankton stocks, warming or rainfall changes in the tropics or Alaska and Antarctica, more frequent and intense El Niño events due to associated shutdowns of the Kuroshio, Leeuwin, and East Australian Currents that are connected to the same thermohaline circulation as the Gulf Stream, or an oceanic anoxic eventoxygen (O
2
)
below surface levels of the stagnant oceans becomes completely depleted – a probable cause of past mass extinction events.[81]

In 2002, a study had suggested that an AMOC shutdown may be able to trigger the type of abrupt massive temperature shifts which occurred during the last glacial period: a series of Dansgaard-Oeschger events – rapid climate fluctuations – may be attributed to freshwater forcing at high latitude interrupting the THC. 2002 model runs in which the THC is forced to shut down do show cooling – locally up to 8 °C (14 °F).[115] A 2017 review concluded that there is strong evidence for past changes in the strength and structure of the AMOC during abrupt climate events such as the Younger Dryas and many of the Heinrich events.[116]

A 2015 study led by James Hansen found that the shutdown or substantial slowdown of the AMOC, besides possibly contributing to extreme end-Eemian events, will cause a more general increase of severe weather. Additional surface cooling from ice melt increases surface and lower tropospheric temperature gradients, and causes in model simulations a large increase of mid-latitude eddy energy throughout the midlatitude troposphere. This in turn leads to an increase of baroclinicity produced by stronger temperature gradients, which provides energy for more severe weather events. This includes winter and near-winter cyclonic storms colloquially known as "superstorms", which generate near-hurricane-force winds and often large amounts of snowfall. These results imply that strong cooling in the North Atlantic from AMOC shutdown potentially increases seasonal mean wind speed of the northeasterlies by as much as 10–20% relative to preindustrial conditions. Because wind power dissipation is proportional to the cube of wind speed, this translates into an increase of storm power dissipation by a factor ~1.4–2,. However, the simulated changes refer to seasonal mean winds averaged over large grid-boxes, not individual storms.[12]

In 2017, a study evaluated the effects of a shutdown on El Niño–Southern Oscillation (ENSO), but found no overall impact, with divergent atmospheric processes cancelling each other out.[117] In 2021, a study using a Community Earth System Model suggested that an AMOC slowdown could nevertheless increase the strength of El Niño–Southern Oscillation and thus amplify climate extremes, especially if another Meridional Overturning Circulation develops in the Pacific Ocean in response to AMOC slowdown.[118] In contrast, a 2022 study showed that an AMOC collapse is likely to accelerate the Pacific trade winds and Walker circulation, while weakening Indian and South Atlantic subtropical highs.[119] The next study from the same team showed that the result of those altered atmospheric patterns is a ~30% reduction in ENSO variability and a ~95% reduction in the frequency of extreme El Niño events. Unlike today, El Niño events become more frequent in the central rather than eastern Pacific El Niño events.[120] At the same time, this would essentially make a La Nina state dominant across the globe, likely leading to more frequent extreme rainfall over eastern Australia and worse droughts and bushfire seasons over southwestern United States.[121]

In 2020, a study had assessed the impact of an AMOC collapse on farming and food production in Great Britain.[122] It estimated that AMOC collapse would reverse the impact of global warming in Great Britain and cause an average temperature drop of 3.4 °C. Moreover, it would lower rainfall during the growing season by around <123mm, which would in turn reduce the land area suitable for arable farming from the 32% to 7%. The net value of British farming would decline by around £346 million per year, or over 10%.[11]

A 2021 study used a simplified modelling approach to evaluate the impact of a shutdown on the Amazon rainforest and its hypothesized dieback and transition to a savannah state in some climate change scenarios. It suggested that a shutdown would enhance rainfall over the southern Amazon due to the shift of an Intertropical Convergence Zone and thus would help to counter the dieback and potentially stabilize at least the southern part of the rainforest.[123]

Projections Edit

The research around the future strength of the AMOC is shown below in chronological order. It is primarily based on Atmosphere-Ocean General Circulation Models projections, although large reviews like the IPCC reports are also informed by the present-day observations and historical reconstructions, which allows them to take a wider range of possibilities into account and assign likelihood to the events not explicitly covered by the models.

Around 2001, the IPCC Third Assessment Report projected high confidence that the THC would tend to weaken rather than stop, and that the warming effects would outweigh the cooling, even over Europe.[124]

When the IPCC Fifth Assessment Report was published in 2014, a rapid transition of the AMOC was considered very unlikely, and this assessment was offered at a high confidence level.[125] That assessment had several limitations, such a reported bias of CMIP models towards AMOC stability,[16] and the insufficient analysis of the impacts on circulation caused by Greenland ice sheet meltwater intrusion.

In 2016, a study aimed to redress this shortcoming by adding Greenland ice sheet melt estimates to the projections from eight state-of-the-art climate models. It found that by 2090–2100, the AMOC would weaken by around 18% (with a range of potential weakening between 3% and 34%) under the "intermediate" Representative Concentration Pathway 4.5, while it would weaken by 37% (with a range between 15% and 65%) under Representative Concentration Pathway 8.5, which presents a scenario of continually increasing emissions. When the two scenarios are extended past 2100, AMOC stabilized under RCP 4.5, but continues to decline under RCP 8.5, with an average decline of 74% by 2290–2300 and a 44% likelihood of an outright collapse.[14]

In 2017, another study applied bias correction to Community Climate System Model and simulated an idealized scenario where CO2 concentrations abruptly double from 1990 levels and remain stable afterwards: according to the authors, such concentrations would result in a warming approximately between RCP 4.5 and RCP 6.0. The AMOC remained stable in a standard model, but collapsed after 300 years of simulation in a bias-corrected model.[13] In 2020, a study ran simulations of RCP 4.5 and RCP 8.5 between 2005 and 2250 in a Community Earth System Model integrated with an advanced ocean physics module which allowed for a more realistic representation of Antarctic ice sheet meltwater. Freshwater input was between 4 and 8 times higher in the modified RCP 4.5 scenario compared to the control run (an increase from 0.1 to 0.4–0.8 sverdrup), and 5 to 10 times stronger in the modified RCP 8.5 scenario (from 0.2 to an average of 1 sverdrup, with the peak values over 2 sverdrup around 2125 due to the collapse of the Ross Ice Shelf). In both RCP 4.5 simulations, AMOC declines from its current strength of 24 sverdrup to 19 sverdrup by 2100: after 2200, it begins to recover in the control simulation but stays at 19 sverdrup in the modified simulation. Under both RCP 8.5 simulations, there's a near-collapse of the current as it declines to 8 sverdrup past 2100 and stays at that level until the end of the simulation period: in the modified simulation, it takes 35 years longer to reach 8 sverdrup than in the control run.[126]

Another study published in 2020 analyzed how the AMOC would be impacted by temperature stabilizing at 1.5 degrees, 2 degrees (the two Paris Agreement goals, both well below the warming under of RCP 4.5) or 3 degrees by 2100 (slightly above the expected warming by 2100 under RCP 4.5). In all three cases, the AMOC declines for an additional 5–10 years after the temperature rise ceases, but it does not come close to collapse, and recovers its strength after about 150 years.[15]

In 2021, the IPCC Sixth Assessment Report again assessed that the AMOC is very likely to decline within the 21st century, and expressed high confidence that changes to it would be reversible within centuries if the warming was reversed.[7]: 19  Unlike the Fifth Assessment Report, it had only expressed medium confidence rather than high confidence in AMOC avoiding a collapse before the end of the century. This reduction in confidence was likely influenced by several review studies drawing attention to the circulation stability bias within general circulation models,[127][128] as well as simplified ocean modelling studies suggesting that the AMOC may be more vulnerable to abrupt change than what the larger-scale models suggest.[17]

In 2022, a study performed modelling experiments with three climate models participating in Aerosol and Chemistry Model Intercomparison Project, and it found that very aggressive mitigation of air pollution like particulates and ground-level ozone could weaken AMOC circulation by 10% by the end of the century if it happened on its own, due to the reduction in climate-cooling stratospheric sulfur aerosols. The authors recommended pairing air pollution mitigation with the mitigation of methane emissions to avoid this outcome, as both methane (a strong warming agent) and sulfate aerosols (a cooling agent) are similarly short-lived in the atmosphere, and a simultaneous reduction of both would cancel out their effects.[129]

In 2022, an extensive assessment of all potential climate tipping points identified 16 plausible climate tipping points, including a collapse of the AMOC. It suggested that a collapse would most likely be triggered by 4 degrees Celsius of global warming, but that there's enough uncertainty to suggest it could be triggered at warming levels as low as 1.4 degrees, or as high as 8 degrees. Likewise, it estimates that once AMOC collapse is triggered, it would most likely take place over 50 years, but the entire range is between 15 and 300 years. Finally, it concludes that this collapse would lower global temperatures by around 0.5 degrees Celsius, while regional temperatures in Europe would go down by between 4 and 10 degrees Celsius.[130][131] That assessment also treated the collapse of the Northern Subpolar Gyre as a potential separate tipping point, which could occur at between 1.1 degrees and 3.8 degrees of warming (although this is only simulated by a fraction of climate models). The most likely figure is 1.8 degrees, and once triggered, the collapse of the gyre would most likely take 10 years from start to end, with a range between 5 and 50 years. The loss of this convection is estimated to lower the global temperature by 0.5 degrees, while the average temperature in Europe decreases by around 3 degrees. There are also substantial impacts on regional precipitation.

In July 2023, a paper from a pair of University of Copenhagen researchers suggested that AMOC collapse would most likely happen around 2057, with the 95% confidence range between 2025 - 2095.[19] However, it relied on a lower-complexity model, and its findings have been very controversial amongst the rest of the scientific community. While some have described this research as "worrisome" and a "valuable contribution" to existing literature even while cautioning its results could apply to a slowdown as much as to a complete collapse, others questioned the accuracy and relevance of proxy data chosen as the basis for the paper, with one scientist saying that the projection had "feet of clay" as the result.[20]

Society and culture Edit

In popular culture Edit

The film The Day After Tomorrow and the British TV Series Ice both explore exaggerated scenarios related to the AMOC shutdown.

An Inconvenient Truth includes reference to the potential shutdown of the AMOC and its impact on temperatures in Europe if ice sheets were to melt and cause elevated freshwater flows in the North Atlantic.

Kim Stanley Robinson's science-fiction novel Fifty Degrees Below, a volume in his Science in the Capital series, depicts a shutdown of thermohaline circulation and mankind's efforts to counteract it by adding great quantities of salt to the ocean.

In Ian Douglas' Star Corpsman novels, an AMOC shutdown triggers an early glacial maximum, covering most of Canada and northern Europe in ice sheets by the mid-22nd century.

See also Edit

References Edit

  1. ^ a b c d e Buckley, Martha W.; Marshall, John (2016). "Observations, inferences, and mechanisms of the Atlantic Meridional Overturning Circulation: A review". Reviews of Geophysics. 54 (1): 5–63. Bibcode:2016RvGeo..54....5B. doi:10.1002/2015RG000493. ISSN 8755-1209. S2CID 54013534.
  2. ^ a b Lozier, M. S.; Li, F.; Bacon, S.; Bahr, F.; Bower, A. S.; Cunningham, S. A.; de Jong, M. F.; de Steur, L.; deYoung, B.; Fischer, J.; Gary, S. F. (2019). "A sea change in our view of overturning in the subpolar North Atlantic". Science. 363 (6426): 516–521. Bibcode:2019Sci...363..516L. doi:10.1126/science.aau6592. ISSN 0036-8075. PMID 30705189. S2CID 59567598.
  3. ^ a b Stefan Rahmstorf; Jason E. Box; Georg Feulner; Michael E. Mann; Alexander Robinson; Scott Rutherford; Erik J. Schaffernicht (2015). "Exceptional twentieth-century slowdown in Atlantic Ocean overturning circulation" (PDF). Nature. 5 (5): 475–480. Bibcode:2015NatCC...5..475R. doi:10.1038/nclimate2554.
  4. ^ a b Caesar, L.; McCarthy, G.D.; Thornalley, D. J. R.; Cahill, N.; Rahmstorf, S. (25 February 2021). "Current Atlantic Meridional Overturning Circulation weakest in last millennium". Nature Geoscience. 14 (3): 118–120. Bibcode:2021NatGe..14..118C. doi:10.1038/s41561-021-00699-z. S2CID 232052381. Retrieved 3 October 2022.
  5. ^ a b c Latif, Mojib; Sun, Jing; Visbeck, Martin; Bordbar (25 April 2022). "Natural variability has dominated Atlantic Meridional Overturning Circulation since 1900". Nature Climate Change. 12 (5): 455–460. Bibcode:2022NatCC..12..455L. doi:10.1038/s41558-022-01342-4. S2CID 248385988.
  6. ^ a b Kilbourne, Kelly Halimeda; et, al. (17 February 2022). "Atlantic circulation change still uncertain". Nature Geoscience. 15 (3): 165–167. Bibcode:2022NatGe..15..165K. doi:10.1038/s41561-022-00896-4. S2CID 246901665. Retrieved 3 October 2022.
  7. ^ a b IPCC, 2019: Summary for Policymakers. In: IPCC Special Report on the Ocean and Cryosphere in a Changing Climate [H.-O. Pörtner, D.C. Roberts, V. Masson-Delmotte, P. Zhai, M. Tignor, E. Poloczanska, K. Mintenbeck, A. Alegría, M.  Nicolai, A. Okem, J. Petzold, B. Rama, N.M. Weyer (eds.)]. Cambridge University Press, Cambridge, UK and New York, NY, USA. doi:10.1017/9781009157964.001.
  8. ^ Lenton, T. M.; Held, H.; Kriegler, E.; Hall, J. W.; Lucht, W.; Rahmstorf, S.; Schellnhuber, H. J. (2008). "Inaugural Article: Tipping elements in the Earth's climate system". Proceedings of the National Academy of Sciences. 105 (6): 1786–1793. Bibcode:2008PNAS..105.1786L. doi:10.1073/pnas.0705414105. PMC 2538841. PMID 18258748.
  9. ^ a b Schmittner, Andreas (31 March 2005). "Industrial-era decline in subarctic Atlantic productivity". Nature. 434 (7033): 628–633. doi:10.1038/nature03476. PMID 15800620. S2CID 2751408.
  10. ^ a b "Explainer: Nine 'tipping points' that could be triggered by climate change". Carbon Brief. 10 February 2020. Retrieved 4 September 2021.
  11. ^ a b "Atlantic circulation collapse could cut British crop farming". Phys.org. 13 January 2020. Retrieved 3 October 2022.
  12. ^ a b Hansen, J.; Sato, M.; Hearty, P.; Ruedy, R.; Kelley, M.; et al. (23 July 2015). "Ice melt, sea level rise and superstorms: evidence from paleoclimate data, climate modeling, and modern observations that 2 °C global warming is highly dangerous" (PDF). Atmospheric Chemistry and Physics Discussions. 15 (14): 20059–20179. Bibcode:2015ACPD...1520059H. doi:10.5194/acpd-15-20059-2015.
  13. ^ a b c Liu, Wei; Xie, Shang-Ping; Liu, Zhengyu; Zhu, Jiang (4 January 2017). "Overlooked possibility of a collapsed Atlantic Meridional Overturning Circulation in warming climate". Science Advances. 3 (1): e1601666. Bibcode:2017SciA....3E1666L. doi:10.1126/sciadv.1601666. PMC 5217057. PMID 28070560.
  14. ^ a b Bakker P, Schmittner A, Lenaerts JT, Abe-Ouchi A, Bi D, van den Broeke MR, Chan WL, Hu A, Beadling RL, Marsland SJ, Mernild SH, Saenko OA, Swingedouw D, Sullivan A, Yin J (11 November 2016). "Fate of the Atlantic Meridional Overturning Circulation: Strong decline under continued warming and Greenland melting". Geophysical Research Letters. 43 (23): 12, 252–12, 260. Bibcode:2016GeoRL..4312252B. doi:10.1002/2016GL070457. hdl:10150/622754. S2CID 133069692.
  15. ^ a b Sigmond, Michael; Fyfe, John C.; Saenko, Oleg A.; Swart, Neil C. (1 June 2020). "Ongoing AMOC and related sea-level and temperature changes after achieving the Paris targets". Nature Climate Change. 10 (7): 672–677. Bibcode:2020NatCC..10..672S. doi:10.1038/s41558-020-0786-0. S2CID 219175812.
  16. ^ a b Valdes, Paul (2011). "Built for stability". Nature Geoscience. 4 (7): 414–416. Bibcode:2011NatGe...4..414V. doi:10.1038/ngeo1200. ISSN 1752-0908.
  17. ^ a b Lohmann, Johannes; Ditlevsen, Peter D. (2 March 2021). "Risk of tipping the overturning circulation due to increasing rates of ice melt". Proceedings of the National Academy of Sciences. 118 (9): e2017989118. Bibcode:2021PNAS..11817989L. doi:10.1073/pnas.2017989118. ISSN 0027-8424. PMC 7936283. PMID 33619095.
  18. ^ a b c d Boers, Niklas (August 2021). "Observation-based early-warning signals for a collapse of the Atlantic Meridional Overturning Circulation". Nature Climate Change. 11 (8): 680–688. Bibcode:2021NatCC..11..680B. doi:10.1038/s41558-021-01097-4. S2CID 236930519. Retrieved 5 August 2021.
  19. ^ a b Ditlevsen, Peter; Ditlevsen, Susanne (25 July 2023). "Warning of a forthcoming collapse of the Atlantic meridional overturning circulation". Nature Communications. 14 (1): 4254. doi:10.1038/s41467-023-39810-w. ISSN 2041-1723. PMC 10368695. PMID 37491344.
  20. ^ a b "expert reaction to paper warning of a collapse of the Atlantic meridional overturning circulation". Science Media Centre. 25 July 2023. Retrieved 11 August 2023.
  21. ^ a b He, Feng; Clark, Peter U. (7 April 2022). "Freshwater forcing of the Atlantic Meridional Overturning Circulation revisited". Nature Climate Change. 12 (5): 449–454. Bibcode:2022NatCC..12..449H. doi:10.1038/s41558-022-01328-2. S2CID 248004571.
  22. ^ a b Kim, Soong-Ki; Kim, Hyo-Jeong; Dijkstra, Henk A.; An, Soon-Il (11 February 2022). "Slow and soft passage through tipping point of the Atlantic Meridional Overturning Circulation in a changing climate". npj Climate and Atmospheric Science. 5 (13). doi:10.1038/s41612-022-00236-8. S2CID 246705201.
  23. ^ Goddard, Paul B.; Sun, Jing; Griffies, Stephen M.; Zhang, Shaoqing (24 February 2015). "An extreme event of sea-level rise along the Northeast coast of North America in 2009–2010". Nature Communications. 6: 6346. Bibcode:2015NatCo...6.6346G. doi:10.1038/ncomms7346. PMID 25710720.
  24. ^ Bryden, Harry L.; Imawaki, Shiro (2001). "Ocean heat transport". International Geophysics. 77: 455–474. doi:10.1016/S0074-6142(01)80134-0. Retrieved 3 October 2022.
  25. ^ Rossby, T. (1 November 1996). "The North Atlantic Current and surrounding waters: At the crossroads". Reviews of Geophysics. 34 (4): 463–481. Bibcode:1996RvGeo..34..463R. doi:10.1029/96RG02214. Retrieved 3 October 2022.
  26. ^ Seager, Richard (2006). "The Source of Europe's Mild Climate: The notion that the Gulf Stream is responsible for keeping Europe anomalously warm turns out to be a myth". American Scientist. 94 (4): 334–341. Bibcode:1996RvGeo..34..463R. doi:10.1029/96RG02214. JSTOR 27858802. Retrieved 3 October 2022.
  27. ^ Rhines, Peter; Häkkinen, Sirpa; Josey, Simon A. (2008). "Is oceanic heat transport significant in the climate system?". Arctic–Subarctic Ocean Fluxes: 87–109. doi:10.1007/978-1-4020-6774-7_5. ISBN 978-1-4020-6773-0. Retrieved 3 October 2022.
  28. ^ a b Chen, Xianyao; Tung, Ka-Kit (18 July 2018). "Global surface warming enhanced by weak Atlantic overturning circulation". Nature. 559 (7714): 387–391. Bibcode:2018Natur.559..387C. doi:10.1038/s41586-018-0320-y. PMID 30022132. S2CID 49865284. Retrieved 3 October 2022.
  29. ^ a b c Morrison, Adele K.; Frölicher, Thomas L.; Sarmiento, Jorge L. (January 2015). "Upwelling in the Southern Ocean". Physics Today. 68 (1): 27. Bibcode:2015PhT....68a..27M. doi:10.1063/PT.3.2654. Retrieved 3 October 2022.
  30. ^ Gruber, Nicolas; Keeling, Charles D.; Bates, Nicholas R. (20 December 2002). "Interannual variability in the North Atlantic Ocean carbon sink". Science. 298 (5602): 2374–2378. Bibcode:2002Sci...298.2374G. doi:10.1126/science.1077077. PMID 12493911. S2CID 6469504. Retrieved 3 October 2022.
  31. ^ Canadell, J.G.; Monteiro, P.M.S.; Costa, M.H.; Cotrim da Cunha, L.; Cox, P.M.; Eliseev, A.V.; Henson, S.; Ishii, M.; Jaccard, S.; Koven, C.; Lohila, A. (2021). Masson-Delmotte, V.; Zhai, P.; Piran, A.; Connors, S.L.; Péan, C.; Berger, S.; Caud, N.; Chen, Y.; Goldfarb, L. (eds.). "Global Carbon and Other Biogeochemical Cycles and Feedbacks" (PDF). Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. 2021: 673–816. Bibcode:2021AGUFM.U13B..05K. doi:10.1017/9781009157896.007. ISBN 9781009157896.
  32. ^ "Salinity and Brine". NSIDC.
  33. ^ Mooney, Chris (30 September 2015). "Everything you need to know about the surprisingly cold 'blob' in the North Atlantic ocean". The Washington Post.
  34. ^ Gierz, Paul (31 August 2015). "Response of Atlantic Overturning to future warming in a coupled atmosphere-ocean-ice sheet model". Geophysical Research Letters. 42 (16): 6811–6818. Bibcode:2015GeoRL..42.6811G. doi:10.1002/2015GL065276.
  35. ^ Turrell, B. The Big Chill Transcript of discussion on BBC 2, 13 November 2003
  36. ^ Lund, DC; Lynch-Stieglitz, J; Curry, WB (November 2006). "Gulf Stream density structure and transport during the past millennium" (PDF). Nature. 444 (7119): 601–4. Bibcode:2006Natur.444..601L. doi:10.1038/nature05277. PMID 17136090. S2CID 4431695.
  37. ^ a b Marshall, John, and Friedrich Schott. "Open-ocean convection: Observations, theory, and models." Reviews of Geophysics 37.1 (1999): 1–64.
  38. ^ Haine, Thomas; Böning, Claus; Brandt, Peter; Fischer, Jürgen; Funk, Andreas; Kieke, Dagmar; Kvaleberg, Erik; Rhein, Monika; Visbeck, Martin (2008). "North Atlantic Deep Water Formation in the Labrador Sea, Recirculation Through the Subpolar Gyre, and Discharge to the Subtropics". Arctic-Subarctic Ocean Fluxes: Defining the Role of the Northern Seas in Climate. pp. 653–701. doi:10.1007/978-1-4020-6774-7_28. ISBN 978-1-4020-6773-0.
  39. ^ Huang, Yiyi; Dong, Xiquan; Bailey, David A.; Holland, Marika M.; Xi, Baike; DuVivier, Alice K.; Kay, Jennifer E.; Landrum, Laura L.; Deng, Yi (19 June 2019). "Thicker Clouds and Accelerated Arctic Sea Ice Decline: The Atmosphere‐Sea Ice Interactions in Spring". Geophysical Research Letters. 46 (12): 6980–6989. Bibcode:2019GeoRL..46.6980H. doi:10.1029/2019gl082791. hdl:10150/634665. ISSN 0094-8276. S2CID 189968828.
  40. ^ Yadav, Juhi; Kumar, Avinash; Mohan, Rahul (21 May 2020). "Dramatic decline of Arctic sea ice linked to global warming". Natural Hazards. 103 (2): 2617–2621. doi:10.1007/s11069-020-04064-y. ISSN 0921-030X. S2CID 218762126.
  41. ^ Overland, James E.; Wang, Muyin (25 September 2012). "A sea ice free summer Arctic within 30 years: An update from CMIP5 models". Geophysical Research Letters. 39 (18). Bibcode:2012GeoRL..3918501W. doi:10.1029/2012GL052868. S2CID 9338828.
  42. ^ Stroeve, Julienne C.; Kattsov, Vladimir; Barrett, Andrew; Serreze, Mark; Pavlova, Tatiana; Holland, Marika; Meier, Walter N. (25 August 2012). "Trends in Arctic sea ice extent from CMIP5, CMIP3 and observations". Geophysical Research Letters. 39 (16). Bibcode:2012GeoRL..3916502S. doi:10.1029/2012GL052676. S2CID 55953929.
  43. ^ Senftleben, Daniel; Lauer, Axel; Karpechko, Alexey (15 February 2020). "Constraining Uncertainties in CMIP5 Projections of September Arctic Sea Ice Extent with Observations". Journal of Climate. 33 (4): 1487–1503. Bibcode:2020JCli...33.1487S. doi:10.1175/jcli-d-19-0075.1. ISSN 0894-8755. S2CID 210273007.
  44. ^ Docquier, David; Koenigk, Torben (15 July 2021). "Observation-based selection of climate models projects Arctic ice-free summers around 2035". Communications Earth & Environment. 2 (1): 144. Bibcode:2021ComEE...2..144D. doi:10.1038/s43247-021-00214-7. S2CID 235826846.
  45. ^ Yashayaev, Igor; Loder, John W. (10 January 2009). "Enhanced production of Labrador Sea water in 2008". Geophysical Research Letters. 36 (1). Bibcode:2009GeoRL..36.1606Y. doi:10.1029/2008GL036162. S2CID 56353963. Retrieved 3 October 2022.
  46. ^ Rhein, Monika; Kieke, Dagmar; Hüttl-Kabus, Sabine; Roessler, Achim; Mertens, Christian; Meissner, Robert; Klein, Birgit; Böning, Claus W.; Yashayaev, Igor (10 January 2009). "Deep water formation, the subpolar gyre, and the meridional overturning circulation in the subpolar North Atlantic". Deep Sea Research Part II: Topical Studies in Oceanography. 58 (17–18): 1819–1832. Bibcode:2009GeoRL..36.1606Y. doi:10.1029/2008GL036162. S2CID 56353963. Retrieved 3 October 2022.
  47. ^ Whitehead, J. A. (11 August 1998). "Topographic control of oceanic flows in deep passages and straits". Reviews of Geophysics. 36 (3): 423–440. Bibcode:1998RvGeo..36..423W. doi:10.1029/98RG01014. S2CID 129629709. Retrieved 3 October 2022.
  48. ^ Hansen, Bogi; Turrell, William R.; Østerhus, Svein (21 June 2001). "Decreasing overflow from the Nordic seas into the Atlantic Ocean through the Faroe Bank channel since 1950". Nature. 411 (6840): 927–930. doi:10.1038/35082034. PMID 11418852. S2CID 4419549. Retrieved 3 October 2022.
  49. ^ Häkkinen, Sirpa; Rhines, Peter B. (16 April 2009). "Shifting surface currents in the northern North Atlantic Ocean". Journal of Geophysical Research: Oceans. 114 (C4). Bibcode:2009JGRC..114.4005H. doi:10.1029/2008JC004883.
  50. ^ Boessenkool, K. P.; Hall, I. R.; Elderfield, H.; Yashayaev, Igor (14 July 2007). "North Atlantic climate and deep-ocean flow speed changes during the last 230 years". Geophysical Research Letters. 34 (13). Bibcode:2007GeoRL..3413614B. doi:10.1029/2007GL030285. S2CID 13857911.
  51. ^ Moffa-Sánchez, Paola; Hall, Ian R. (23 November 2017). "North Atlantic variability and its links to European climate over the last 3000 years". Nature Communications. 8 (1): 1726. Bibcode:2017NatCo...8.1726M. doi:10.1038/s41467-017-01884-8. PMC 5700112. PMID 29167464.
  52. ^ Hillaire-Marcel, C.; de Vernal, A.; Bilodeau, G.; Weaver, A. J (26 April 2001). "Absence of deep-water formation in the Labrador Sea during the last interglacial period". Nature. 410 (6832): 1073–1077. doi:10.1038/35074059. PMID 11323666. S2CID 205016579.
  53. ^ Born, Andreas; Levermann, Anders (25 June 2010). "The 8.2 ka event: Abrupt transition of the subpolar gyre toward a modern North Atlantic circulation". Geochemistry, Geophysics, Geosystems. 11 (6). Bibcode:2010GGG....11.6011B. doi:10.1029/2009GC003024. S2CID 16132704. Retrieved 3 October 2022.
  54. ^ a b Fox-Kemper, B., H.T. Hewitt, C. Xiao, G. Aðalgeirsdóttir, S.S. Drijfhout, T.L. Edwards, N.R. Golledge, M. Hemer, R.E. Kopp, G.  Krinner, A. Mix, D. Notz, S. Nowicki, I.S. Nurhati, L. Ruiz, J.-B. Sallée, A.B.A. Slangen, and Y. Yu, 2021: Chapter 9: Ocean, Cryosphere and Sea Level Change. In Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Masson-Delmotte, V., P. Zhai, A. Pirani, S.L.  Connors, C. Péan, S. Berger, N. Caud, Y. Chen, L. Goldfarb, M.I. Gomis, M. Huang, K. Leitzell, E. Lonnoy, J.B.R. Matthews, T.K. Maycock, T. Waterfield, O. Yelekçi, R. Yu, and B. Zhou (eds.)]. Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA, pp. 1211–1362, doi:10.1017/9781009157896.011.
  55. ^ Pickart, Robert S.; Spall, Michael A. (1 September 2007). "Impact of Labrador Sea Convection on the North Atlantic Meridional Overturning Circulation". Journal of Physical Oceanography. 37 (9): 2207–2227. Bibcode:2007JPO....37.2207P. doi:10.1175/JPO3178.1. hdl:1912/4158. ISSN 0022-3670.
  56. ^ Haine, Thomas; Böning, Claus; Brandt, Peter; Fischer, Jürgen; Funk, Andreas; Kieke, Dagmar; Kvaleberg, Erik; Rhein, Monika; Visbeck, Martin (2008), Dickson, Robert R.; Meincke, Jens; Rhines, Peter (eds.), "North Atlantic Deep Water Formation in the Labrador Sea, Recirculation Through the Subpolar Gyre, and Discharge to the Subtropics", Arctic–Subarctic Ocean Fluxes: Defining the Role of the Northern Seas in Climate, Dordrecht: Springer Netherlands, pp. 653–701, doi:10.1007/978-1-4020-6774-7_28, ISBN 978-1-4020-6774-7, retrieved 23 May 2022
  57. ^ Prange, M.; Schulz, M. (3 September 2004). "A coastal upwelling seesaw in the Atlantic Ocean as a result of the closure of the Central American Seaway". Geophysical Research Letters. 31 (17). Bibcode:2007GeoRL..3413614B. doi:10.1029/2007GL030285. S2CID 13857911.
  58. ^ Wang, Li-Chiao; Fei-Fei, Jing; Wu, Chau-Ron; Hsu, Huang-Hsiung (2 March 2017). "Dynamics of upwelling annual cycle in the equatorial Atlantic Ocean". Geophysical Research Letters. 44 (8): 3737–3743. Bibcode:2017GeoRL..44.3737W. doi:10.1002/2017GL072588. S2CID 132601314.
  59. ^ Talley, Lynne D. (2 October 2015). "Closure of the global overturning circulation through the Indian, Pacific, and Southern Oceans: Schematics and transports". Oceanography. 26 (1): 80–97. doi:10.5670/oceanog.2013.07. Retrieved 3 October 2022.
  60. ^ DeVries, Tim; Primeau, François (1 December 2011). "Dynamically and observationally constrained estimates of water-mass distributions and ages in the global ocean". Journal of Physical Oceanography. 41 (12): 2381–2401. Bibcode:2011JPO....41.2381D. doi:10.1175/JPO-D-10-05011.1. S2CID 42020235. Retrieved 3 October 2022.
  61. ^ Mikaloff-Fletcher, S.E. (11 September 2015). "An increasing carbon sink?". Science. 349 (6253): 1165. Bibcode:2015Sci...349.1165M. doi:10.1126/science.aad0912. PMID 26359388. S2CID 8677082. Retrieved 3 October 2022.
  62. ^ Landschützer, Peter; et al. (11 September 2015). "The reinvigoration of the Southern Ocean carbon sink". Science. 349 (6253): 1221–1224. Bibcode:2015Sci...349.1221L. doi:10.1126/science.aab2620. PMID 26359401. S2CID 10636635. Retrieved 3 October 2022.
  63. ^ Marshall, John; Speer, Kevin (26 February 2012). "Closure of the meridional overturning circulation through Southern Ocean upwelling". Nature Geoscience. 5 (3): 171–180. Bibcode:2012NatGe...5..171M. doi:10.1038/ngeo1391. Retrieved 3 October 2022.
  64. ^ Mihai Dima; Gerrit Lohmann (2010). "Evidence for Two Distinct Modes of Large-Scale Ocean Circulation Changes over the Last Century" (PDF). Journal of Climate. 23 (1): 5–16. Bibcode:2010JCli...23....5D. doi:10.1175/2009JCLI2867.1.
  65. ^ Rahmstorf, Stefan; Box, Jason E.; Feulner, Georg; Mann, Michael E.; Robinson, Alexander; Rutherford, Scott; Schaffernicht, Erik J. (2015). "Exceptional twentieth-century slowdown in Atlantic Ocean overturning circulation" (PDF). Nature Climate Change. 5 (5): 475–480. Bibcode:2015NatCC...5..475R. doi:10.1038/nclimate2554. ISSN 1758-678X.   PDF in UNEP Document Repository 12 July 2019 at the Wayback Machine
  66. ^ Caesar, L.; Rahmsdorf, S.; Robinson, A.; Feulner, G.; Saba, V. (11 April 2018). "Observed fingerprint of a weakening Atlantic Ocean overturning circulation". Nature. 556 (7700): 191–196. Bibcode:2018Natur.556..191C. doi:10.1038/s41586-018-0006-5. PMID 29643485. S2CID 4781781. Retrieved 3 October 2022.
  67. ^ Thornalley, David JR; et al. (11 April 2018). "Anomalously weak Labrador Sea convection and Atlantic overturning during the past 150 years". Nature. 556 (7700): 227–230. Bibcode:2018Natur.556..227T. doi:10.1038/s41586-018-0007-4. PMID 29643484. S2CID 4771341. Retrieved 3 October 2022.
  68. ^ a b c Harvey, Fiona (26 February 2021). "Atlantic Ocean circulation at weakest in a millennium, say scientists". The Guardian. Retrieved 27 February 2021.
  69. ^ Caesar, L.; McCarthy, G.D.; Thornalley, D. J. R.; Cahill, N.; Rahmstorf, S. (17 February 2022). "Reply to: Atlantic circulation change still uncertain". Nature Geoscience. 15 (3): 168–170. Bibcode:2022NatGe..15..168C. doi:10.1038/s41561-022-00897-3. S2CID 246901654. Retrieved 3 October 2022.
  70. ^ a b Worthington, Emma L.; Moat, Ben I.; Smeed, David A.; Mecking, Jennifer V.; Marsh, Robert; McCarthy, Gerard (15 February 2021). "A 30-year reconstruction of the Atlantic meridional overturning circulation shows no decline". Ocean Science. 17 (1): 285–299. Bibcode:2021OcSci..17..285W. doi:10.5194/os-17-285-2021.
  71. ^ Jackson, Laura C.; Biastoch, Arne; Buckley, Martha W.; Desbruyères, Damien G.; Frajka-Williams, Eleanor; Moat, Ben; Robson, Jon (1 March 2022). "The evolution of the North Atlantic Meridional Overturning Circulation since 1980". Nature Reviews Earth & Environment. 3 (4): 241–254. Bibcode:2022NRvEE...3..241J. doi:10.1038/s43017-022-00263-2. S2CID 247160367.
  72. ^ Smeed, D.A.; et al. (29 January 2018). "The North Atlantic Ocean Is in a State of Reduced Overturning". Geophysical Research Letters. 45 (3): 1527–1533. Bibcode:2018GeoRL..45.1527S. doi:10.1002/2017GL076350. S2CID 52088897.
  73. ^ a b c Srokosz, M. A.; Bryden, H. L. (19 June 2015). "Observing the Atlantic Meridional Overturning Circulation yields a decade of inevitable surprises". Science. 348 (6241): 3737–3743. doi:10.1126/science.1255575. PMID 26089521. S2CID 22060669. Retrieved 3 October 2022.
  74. ^ Roberts, C. D.; Jackson, L.; McNeall, D. (31 March 2014). "Is the 2004–2012 reduction of the Atlantic meridional overturning circulation significant?". Geophysical Research Letters. 41 (9): 3204–3210. Bibcode:2014GeoRL..41.3204R. doi:10.1002/2014GL059473. S2CID 129713110.
  75. ^ Fu, Yao; Li, Feili; Karstensen, Johannes; Wang, Chunzai (27 November 2020). "A stable Atlantic Meridional Overturning Circulation in a changing North Atlantic Ocean since the 1990s". Science Advances. 6 (48). Bibcode:2020SciA....6.7836F. doi:10.1126/sciadv.abc7836. PMC 7695472. PMID 33246958.
  76. ^ Satellites record weakening North Atlantic Current. NASA, 15 April 2004.
  77. ^ Leake, Jonathan (8 May 2005). "Britain faces big chill as ocean current slows". The Sunday Times.
  78. ^ Gulf Stream slowdown? RealClimate.org, 26 May 2005.
  79. ^ F. Pearce. Failing ocean current raises fears of mini ice age. NewScientist, 30 November 2005
  80. ^ Quadfasel D (December 2005). "Oceanography: The Atlantic heat conveyor slows". Nature. 438 (7068): 565–6. Bibcode:2005Natur.438..565Q. doi:10.1038/438565a. PMID 16319866. S2CID 4406389.
  81. ^ a b Schiermeier, Quirin (2007). "Ocean circulation noisy, not stalling". Nature. 448 (7156): 844–5. Bibcode:2007Natur.448..844S. doi:10.1038/448844b. PMID 17713489.
  82. ^ Schiermeier, Quirin (2007). "Climate change: A sea change". Nature. 439 (7074): 256–60. Bibcode:2006Natur.439..256S. doi:10.1038/439256a. PMID 16421539. S2CID 4431161. (subscription required); see also "Atlantic circulation change summary". RealClimate.org. 19 January 2006.
  83. ^ Våge, Kjetil; Pickart, Robert S.; Thierry, Virginie; Reverdin, Gilles; Lee, Craig M.; Petrie, Brian; Agnew, Tom A.; Wong, Amy; Ribergaard, Mads H. (2009). "Surprising return of deep convection to the subpolar North Atlantic Ocean in winter 2007–2008". Nature Geoscience. 2 (1): 67–72. Bibcode:2009NatGe...2...67V. doi:10.1038/ngeo382.
  84. ^ dos Santos, Raquel A. Lopes; et al. (15 November 2001). "Glacial–interglacial variability in Atlantic meridional overturning circulation and thermocline adjustments in the tropical North Atlantic". Earth and Planetary Science Letters. 300 (3–4): 407–414. doi:10.1016/j.epsl.2010.10.030. Retrieved 3 October 2022.
  85. ^ Bond, Gerard; et, al. (1 December 2010). "Persistent solar influence on North Atlantic climate during the Holocene". Science. 294 (5549): 2130–2136. doi:10.1126/science.1065680. PMID 11739949. S2CID 38179371. Retrieved 3 October 2022.
  86. ^ Ninnemann, Ulysses S.; Thornalley, David J. R. (2016). "Recent natural variability of the Iceland Scotland Overflows on decadal to millennial timescales: Clues from the ooze". US CLIVAR Variations. 14 (3): 1–8. Retrieved 3 October 2022.
  87. ^ Stommel, Henry (May 1961). "Thermohaline convection with two stable regimes of flow". Tellus. 13 (2): 224–230. doi:10.1111/j.2153-3490.1961.tb00079.x. Retrieved 3 October 2022.
  88. ^ Michel, Simon L. L.; Swingedouw, Didier; Ortega, Pablo; Gastineau, Guillaume; Mignot, Juliette; McCarthy, Gerard; Khodri, Myriam (2 September 2022). "Early warning signal for a tipping point suggested by a millennial Atlantic Multidecadal Variability reconstruction". Nature Communications. 13 (1): 5176. Bibcode:2022NatCo..13.5176M. doi:10.1038/s41467-022-32704-3. PMC 9440003. PMID 36056010.
  89. ^ Dijkstra, Henk A. (28 June 2008). "Characterization of the multiple equilibria regime in a global ocean model". Tellus A. 59 (5): 695–705. doi:10.1111/j.1600-0870.2007.00267.x. S2CID 94737971.
  90. ^ Hofmann, Matthias; Rahmstorf, Stefan (8 December 2009). "On the stability of the Atlantic meridional overturning circulation". Proceedings of the National Academy of Sciences. 106 (49): 20584–20589. doi:10.1073/pnas.0909146106. PMC 2791639. PMID 19897722.
  91. ^ Rahmstorf, Stefan (12 September 2002). "Ocean circulation and climate during the past 120,000 years". Nature. 419 (6903): 207–214. Bibcode:2002Natur.419..207R. doi:10.1038/nature01090. PMID 12226675. S2CID 3136307. Retrieved 3 October 2022.
  92. ^ Drijfhout, Sybren S.; Weber, Susanne L.; van der Swaluw, Eric (26 October 2010). "The stability of the MOC as diagnosed from model projections for pre-industrial, present and future climates". Climate Dynamics. 37 (7–8): 1575–1586. doi:10.1007/s00382-010-0930-z. S2CID 17003970. Retrieved 3 October 2022.
  93. ^ University of South Florida (22 January 2016). "Melting Greenland ice sheet may affect global ocean circulation, future climate". Phys.org.
  94. ^ Hansen, James; Sato, Makiko (2015). . Archived from the original on 23 September 2015.
  95. ^ Osman, Matthew B.; Das, Sarah B.; Trusel, Luke D.; Evans, Matthew J.; Fischer, Hubertus; Grieman, Mackenzie M.; Kipfstuhl, Sepp; McConnell, Joseph R.; Saltzman, Eric S. (6 May 2019). "Decline of the marine ecosystem caused by a reduction in the Atlantic overturning circulation". Nature. 569 (7757): 551–555. doi:10.1038/s41586-019-1181-8. PMID 31061499. S2CID 146118196.
  96. ^ Yin, Jianjun & Griffies, Stephen (25 March 2015). . CLIVAR. Archived from the original on 18 May 2015.
  97. ^ Yamamoto, A.; Abe-Ouchi, A.; Shigemitsu, M.; Oka, A.; Takahashi, K.; Ohgaito, R.; Yamanaka, Y. (5 October 2015). "Global deep ocean oxygenation by enhanced ventilation in the Southern Ocean under long-term global warming". Global Biogeochemical Cycles. 29 (10): 1801–1815. Bibcode:2015GBioC..29.1801Y. doi:10.1002/2015GB005181. S2CID 129242813.
  98. ^ Claret, Mariona; Galbraith, Eric D.; Palter, Jaime B.; Bianchi, Daniele; Fennel, Katja; Gilbert, Denis; Dunne, John P. (17 September 2018). "Rapid coastal deoxygenation due to ocean circulation shift in the northwest Atlantic". Nature Climate Change. 8 (10): 868–872. Bibcode:2018NatCC...8..868C. doi:10.1038/s41558-018-0263-1. PMC 6218011. PMID 30416585.
  99. ^ Zhu, Chenyu; Liu, Zhengyu (14 September 2020). "Weakening Atlantic overturning circulation causes South Atlantic salinity pile-up". Nature Climate Change. 10 (11): 998–1003. Bibcode:2020NatCC..10..998Z. doi:10.1038/s41558-020-0897-7. S2CID 221674578.
  100. ^ Mooney, Chris (1 February 2016). "Why the U.S. East Coast could be a major 'hotspot' for rising seas". The Washington Post.
  101. ^ Karmalkar, Ambarish V.; Horton, Radley M. (23 September 2021). "Drivers of exceptional coastal warming in the northeastern United States". Nature Climate Change. 11 (10): 854–860. Bibcode:2021NatCC..11..854K. doi:10.1038/s41558-021-01159-7. S2CID 237611075.
  102. ^ Krajick, Kevin (23 September 2021). "Why the U.S. Northeast Coast Is a Global Warming Hot Spot". Columbia Climate School. Retrieved 23 March 2023.
  103. ^ Liu, Wei; Fedorov, Alexey V.; Xie, Shang-Ping; Hu, Shineng (26 June 2020). "Climate impacts of a weakened Atlantic Meridional Overturning Circulation in a warming climate". Science Advances. 6 (26): eaaz4876. Bibcode:2020SciA....6.4876L. doi:10.1126/sciadv.aaz4876. PMC 7319730. PMID 32637596.
  104. ^ Wunderling, Nico; Donges, Jonathan F.; Kurths, Jürgen; Winkelmann, Ricarda (3 June 2021). "Interacting tipping elements increase risk of climate domino effects under global warming". Earth System Dynamics. 12 (2): 601–619. Bibcode:2021ESD....12..601W. doi:10.5194/esd-12-601-2021. ISSN 2190-4979. S2CID 236247596. from the original on 4 June 2021. Retrieved 4 June 2021.
  105. ^ Dietz, Simon; Rising, James; Stoerk, Thomas; Wagner, Gernot (24 August 2021). "Economic impacts of tipping points in the climate system". Proceedings of the National Academy of Sciences. 118 (34): e2103081118. Bibcode:2021PNAS..11803081D. doi:10.1073/pnas.2103081118. PMC 8403967. PMID 34400500.
  106. ^ Keen, Steve; Lenton, Timothy M.; Garrett, Timothy J.; Rae, James W. B.; Hanley, Brian P.; Grasselli, Matheus (19 May 2022). "Estimates of economic and environmental damages from tipping points cannot be reconciled with the scientific literature". Proceedings of the National Academy of Sciences. 119 (21): e2117308119. Bibcode:2022PNAS..11917308K. doi:10.1073/pnas.2117308119. PMC 9173761. PMID 35588449.
  107. ^ Dietz, Simon; Rising, James; Stoerk, Thomas; Wagner, Gernot (19 May 2022). "Reply to Keen et al.: Dietz et al. modeling of climate tipping points is informative even if estimates are a probable lower bound". Proceedings of the National Academy of Sciences. 119 (21): e2201191119. Bibcode:2022PNAS..11901191D. doi:10.1073/pnas.2201191119. PMC 9173815. PMID 35588452.
  108. ^ Hawkins, E.; Smith, R. S.; Allison, L. C.; Gregory, J. M.; Woollings, T. J.; Pohlmann, H.; De Cuevas, B. (2011). "Bistability of the Atlantic overturning circulation in a global climate model and links to ocean freshwater transport". Geophysical Research Letters. 38 (10): n/a. Bibcode:2011GeoRL..3810605H. doi:10.1029/2011GL047208. S2CID 970991.
  109. ^ Knutti, Reto; Stocker, Thomas F. (15 January 2002). "Limited predictability of the future thermohaline circulation close to an instability threshold". Journal of Climate. 15 (2): 179–186. Bibcode:2002JCli...15..179K. doi:10.1175/1520-0442(2002)015<0179:LPOTFT>2.0.CO;2. S2CID 7353330. Retrieved 3 October 2022.
  110. ^ "Key findings of the Pentagon". The Guardian. 22 February 2004. Retrieved 2 October 2022.
  111. ^ University Of Illinois at Urbana-Champaign (20 December 2004). "Shutdown Of Circulation Pattern Could Be Disastrous, Researchers Say". ScienceDaily.
  112. ^ Link, P. Michael; Tol, Richard S. J. (1 September 2004). "Possible economic impacts of a shutdown of the thermohaline circulation: an application of *FUND*". Portuguese Economic Journal. 3 (2): 99–114. CiteSeerX 10.1.1.175.5994. doi:10.1007/s10258-004-0033-z. hdl:10400.5/15493. ISSN 1617-9838. S2CID 16837488.
  113. ^ "Weather Facts: North Atlantic Drift (Gulf Stream) | weatheronline.co.uk". www.weatheronline.co.uk.
  114. ^ "The North Atlantic Drift Current". oceancurrents.rsmas.miami.edu.
  115. ^ Vellinga, M.; Wood, R.A. (2002). (PDF). Climatic Change. 54 (3): 251–267. doi:10.1023/A:1016168827653. S2CID 153075940. Archived from the original (PDF) on 6 September 2006.
  116. ^ Jean Lynch-Stieglitz (2017). "The Atlantic Meridional Overturning Circulation and Abrupt Climate Change". Annual Review of Marine Science. 9: 83–104. Bibcode:2017ARMS....9...83L. doi:10.1146/annurev-marine-010816-060415. PMID 27814029.
  117. ^ Williamson, Mark S.; Collins, Mat; Drijfhout, Sybren S.; Kahana, Ron; Mecking, Jennifer V.; Lenton, Timothy M. (17 June 2017). "Effect of AMOC collapse on ENSO in a high resolution general circulation model". Climate Dynamics. 50 (7–8): 2537–2552. doi:10.1007/s00382-017-3756-0. S2CID 55707315.
  118. ^ Molina, Maria J.; Hu, Aixue; Meehl, Gerald A. (22 November 2021). "Response of Global SSTs and ENSO to the Atlantic and Pacific Meridional Overturning Circulations". Journal of Climate. 35 (1): 49–72. doi:10.1175/JCLI-D-21-0172.1. OSTI 1845078. S2CID 244228477. Retrieved 3 October 2022.
  119. ^ Orihuela-Pinto, Bryam; England, Matthew H.; Taschetto, Andréa S. (6 June 2022). "Interbasin and interhemispheric impacts of a collapsed Atlantic Overturning Circulation". Nature Climate Change. 12 (6): 558–565. Bibcode:2022NatCC..12..558O. doi:10.1038/s41558-022-01380-y. S2CID 249401296. Retrieved 3 October 2022.
  120. ^ Orihuela-Pinto, Bryam; Santoso, Agus; England, Matthew H.; Taschetto, Andréa S. (19 July 2022). "Reduced ENSO Variability due to a Collapsed Atlantic Meridional Overturning Circulation". Journal of Climate. 35 (16): 5307–5320. Bibcode:2022JCli...35.5307O. doi:10.1175/JCLI-D-21-0293.1. S2CID 250720455. Retrieved 3 October 2022.
  121. ^ "A huge Atlantic ocean current is slowing down. If it collapses, La Niña could become the norm for Australia". The Conversation. 6 June 2022. Retrieved 3 October 2022.
  122. ^ Ritchie, Paul D. L.; et, al. (13 January 2020). "Shifts in national land use and food production in Great Britain after a climate tipping point". Nature Food. 1: 76–83. doi:10.1038/s43016-019-0011-3. hdl:10871/39731. S2CID 214269716. Retrieved 3 October 2022.
  123. ^ Ciemer, Catrin; Winkelmann, Ricarda; Kurths, Jürgen; Boers, Niklas (28 June 2021). "Impact of an AMOC weakening on the stability of the southern Amazon rainforest". The European Physical Journal Special Topics. 230 (14–15): 3065–3073. Bibcode:2021EPJST.230.3065C. doi:10.1140/epjs/s11734-021-00186-x. S2CID 237865150.
  124. ^ IPCC TAR WG1 (2001). "9.3.4.3 Thermohaline circulation changes". In Houghton, J.T.; Ding, Y.; Griggs, D.J.; Noguer, M.; van der Linden, P.J.; Dai, X.; Maskell, K.; Johnson, C.A. (eds.). Climate Change 2001: The Scientific Basis. Contribution of Working Group I to the Third Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press. ISBN 978-0-521-80767-8. (pb: 0-521-01495-6)
  125. ^ (PDF). IPCC. p. Table 12.4. Archived from the original (PDF) on 24 August 2015.
  126. ^ Sadai, Shaina; Condron, Alan; DeConto, Robert; Pollard, David (23 September 2020). "Future climate response to Antarctic Ice Sheet melt caused by anthropogenic warming". Science Advances. 6 (39). Bibcode:2020SciA....6.1169S. doi:10.1126/sciadv.aaz1169. PMC 7531873. PMID 32967838.
  127. ^ Mecking, J.V.; Drijfhout, S.S.; Jackson, L.C.; Andrews, M.B. (1 January 2017). "The effect of model bias on Atlantic freshwater transport and implications for AMOC bi-stability". Tellus A: Dynamic Meteorology and Oceanography. 69 (1): 1299910. Bibcode:2017TellA..6999910M. doi:10.1080/16000870.2017.1299910. S2CID 133294706.
  128. ^ Weijer, W.; Cheng, W.; Drijfhout, S. S.; Fedorov, A. V.; Hu, A.; Jackson, L. C.; Liu, W.; McDonagh, E. L.; Mecking, J. V.; Zhang, J. (2019). "Stability of the Atlantic Meridional Overturning Circulation: A Review and Synthesis". Journal of Geophysical Research: Oceans. 124 (8): 5336–5375. Bibcode:2019JGRC..124.5336W. doi:10.1029/2019JC015083. ISSN 2169-9275. S2CID 199807871.
  129. ^ Hassan, Taufiq; Allen, Robert J.; et al. (27 June 2022). "Air quality improvements are projected to weaken the Atlantic meridional overturning circulation through radiative forcing effects". Communications Earth & Environment. 3 (3): 149. Bibcode:2022ComEE...3..149H. doi:10.1038/s43247-022-00476-9. S2CID 250077615.
  130. ^ Armstrong McKay, David; Abrams, Jesse; Winkelmann, Ricarda; Sakschewski, Boris; Loriani, Sina; Fetzer, Ingo; Cornell, Sarah; Rockström, Johan; Staal, Arie; Lenton, Timothy (9 September 2022). "Exceeding 1.5°C global warming could trigger multiple climate tipping points". Science. 377 (6611): eabn7950. doi:10.1126/science.abn7950. hdl:10871/131584. ISSN 0036-8075. PMID 36074831. S2CID 252161375.
  131. ^ Armstrong McKay, David (9 September 2022). "Exceeding 1.5°C global warming could trigger multiple climate tipping points – paper explainer". climatetippingpoints.info. Retrieved 2 October 2022.

External links Edit

  • Project THOR University of Hamburg project to study the thermohaline circulation
  • "An Abrupt Climate Change Scenario and Its Implications for United States National Security" (2003 study)
  • (1999 study)
  • Why is there a thermohaline circulation in the Atlantic but not the Pacific? (2005 technical report)
  • Original article at the Encyclopedia of Earth

atlantic, meridional, overturning, circulation, amoc, redirects, here, other, uses, amoc, disambiguation, amoc, part, global, thermohaline, circulation, oceans, zonally, integrated, component, surface, deep, currents, atlantic, ocean, characterized, northward,. AMOC redirects here For other uses see AMOC disambiguation The Atlantic meridional overturning circulation AMOC is part of a global thermohaline circulation in the oceans and is the zonally integrated component of surface and deep currents in the Atlantic Ocean It is characterized by a northward flow of warm salty water in the upper layers of the Atlantic and a southward flow of colder deep waters These limbs are linked by regions of overturning in the Nordic and Labrador Seas and the Southern Ocean although the extent of overturning in the Labrador Sea is disputed 1 2 The AMOC is an important component of the Earth s climate system and is a result of both atmospheric and thermohaline drivers Topographic map of the Nordic Seas and subpolar basins with surface currents solid curves and deep currents dashed curves that form a portion of the Atlantic meridional overturning circulation Colors of curves indicate approximate temperatures Climate change has the potential to weaken the AMOC through increases in ocean heat content and elevated freshwater flows from the melting ice sheets Oceanographic reconstructions generally suggest that the AMOC is already weaker than it was before the Industrial Revolution 3 4 although there is a robust debate over the role of climate change versus the circulation s century scale and millennial scale variability 5 6 Climate models consistently project that the AMOC would weaken further over the 21st century 7 19 which would affect average temperature over areas like Scandinavia and Britain that are warmed by the North Atlantic drift 8 as well as accelerate sea level rise around North America and reduce primary production in the North Atlantic 9 Severe weakening of the AMOC has the potential to cause an outright collapse of the circulation which would not be easily reversible and thus constitute one of the tipping points in the climate system 10 A shutdown would have far greater impacts than a slowdown on both the marine and some terrestrial ecosystems it would lower the average temperature and precipitation in Europe slashing the region s agricultural output 11 and may have a substantial effect on extreme weather events 12 Earth system models used in Coupled Model Intercomparison Project indicate that shutdown is only likely after high levels of warming are sustained well after 2100 13 14 15 but they have been criticized by some researchers for what they saw as excessive stability 16 and a number of lower complexity studies argue that a collapse can happen considerably earlier 17 18 One of those lower complexity projections suggests that AMOC collapse could happen around 2057 19 but many scientists are skeptical of the claim 20 On the other hand paleoceanographic research suggests that the AMOC may be even more stable than what is predicted by most models 21 22 Contents 1 Overall structure 2 Effects on climate 2 1 Thermohaline circulation and fresh water 3 Regions of overturning 3 1 Convection and return flow in the Nordic Seas 3 2 Convection and entrainment in the Labrador Sea 3 3 Atlantic upwelling 3 4 Southern Ocean upwelling 4 Trends 4 1 Reconstructions 4 2 Observations 4 2 1 2010 and earlier 5 Slowdown or possible shutdown of the thermohaline circulation 5 1 AMOC stability 5 1 1 Multiple equilibria versus single equilibrium 5 2 Impacts of a slowdown 5 3 Impacts of a shutdown 6 Projections 7 Society and culture 7 1 In popular culture 8 See also 9 References 10 External linksOverall structure Edit nbsp AMOC in relation to the global thermohaline circulation animation The Atlantic meridional overturning circulation AMOC is part of a global thermohaline circulation in the oceans and is the zonally integrated component of surface and deep currents in the Atlantic Ocean The general thermohaline circulation is a pattern of water flow through the world s oceans Warm water flows along the surface until it reaches one of a few special spots near Greenland or Antarctica There the water sinks and then crawls across the bottom of the ocean miles kilometers deep over hundreds of years gradually rising in the Pacific and Indian oceans Northward surface flow transports a substantial amount of heat energy from the tropics and Southern Hemisphere toward the North Atlantic where the heat is lost to the atmosphere due to the strong temperature gradient Upon losing its heat the water becomes denser and sinks This densification links the warm surface limb with the cold deep return limb at regions of convection in the Nordic and Labrador Seas The limbs are also linked in regions of upwelling where a divergence of surface waters causes Ekman suction and an upward flux of deep water citation needed AMOC consists of upper and lower cells The upper cell consists of northward surface flow as well as southward return flow of North Atlantic Deep Water NADW The lower cell represents northward flow of dense Antarctic Bottom Water AABW this bathes the abyssal ocean 1 AMOC exerts a major control on North Atlantic sea level particularly along the Northeast Coast of North America Exceptional AMOC weakening during the winter of 2009 10 has been implicated in a damaging 13 cm sea level rise along the New York coastline 23 There may be two stable states of the AMOC a strong circulation as seen over recent millennia and a weak circulation mode as suggested by atmosphere ocean coupled general circulation models and Earth systems models of intermediate complexity 18 A number of Earth system models do not identify this bistability however 18 Effects on climate EditThe net northward heat transport in the Atlantic is unique among global oceans and is responsible for the relative warmth of the Northern Hemisphere 1 AMOC carries up to 25 of the northward global atmosphere ocean heat transport in the northern hemisphere 24 This is generally thought to ameliorate the climate of Northwest Europe although this effect is the subject of debate 25 26 27 As well as acting as a heat pump and high latitude heat sink 28 29 AMOC is the largest carbon sink in the Northern Hemisphere sequestering approximately 0 7 Pg 0 7 Gt C year 30 This sequestration has significant implications for evolution of anthropogenic global warming especially with respect to the recent and projected future decline in AMOC vigor 31 Thermohaline circulation and fresh water Edit nbsp The red end of the spectrum indicates slowing in this presentation of the trend of velocities derived from NASA Pathfinder altimeter data from May 1992 to June 2002 Source NASA Further information Thermohaline circulation Heat is transported from the equator polewards mostly by the atmosphere but also by ocean currents with warm water near the surface and cold water at deeper levels The best known segment of this circulation is the Gulf Stream a wind driven gyre which transports warm water from the Caribbean northwards A northwards branch of the Gulf Stream the North Atlantic Drift is part of the thermohaline circulation THC transporting warmth further north to the North Atlantic where its effect in warming the atmosphere contributes to warming Europe citation needed The evaporation of ocean water in the North Atlantic increases the salinity of the water as well as cooling it both actions increasing the density of water at the surface Formation of sea ice further increases the salinity and density because salt is ejected into the ocean when sea ice forms 32 This dense water then sinks and the circulation stream continues in a southerly direction However the Atlantic Meridional Overturning Circulation AMOC is driven by ocean temperature and salinity differences But freshwater decreases ocean water salinity and through this process prevents colder waters sinking This mechanism possibly caused the cold ocean surface temperature anomaly currently observed near Greenland Cold blob North Atlantic 33 Global warming could lead to an increase in freshwater in the northern oceans by melting glaciers in Greenland and by increasing precipitation especially through Siberian rivers 34 35 Studies of the Florida Current suggest that the Gulf Stream weakens with cooling being weakest by 10 during the Little Ice Age 36 Regions of overturning EditConvection and return flow in the Nordic Seas Edit Low air temperatures at high latitudes cause substantial sea air heat flux driving a density increase and convection in the water column Open ocean convection occurs in deep plumes and is particularly strong in winter when the sea air temperature difference is largest 37 Of the 6 sverdrup Sv of dense water that flows southward over the GSR Greenland Scotland Ridge 3 Sv does so via the Denmark Strait forming Denmark Strait Overflow Water DSOW 0 5 1 Sv flows over the Iceland Faroe ridge and the remaining 2 2 5 Sv returns through the Faroe Shetland Channel these two flows form Iceland Scotland Overflow Water ISOW The majority of flow over the Faroe Shetland ridge flows through the Faroe Bank Channel and soon joins that which flowed over the Iceland Faroe ridge to flow southward at depth along the Eastern flank of the Reykjanes Ridge As ISOW overflows the GSR Greenland Scotland Ridge it turbulently entrains intermediate density waters such as Sub Polar Mode water and Labrador Sea Water This grouping of water masses then moves geostrophically southward along the East flank of Reykjanes Ridge through the Charlie Gibbs Fracture Zone and then northward to join DSOW These waters are sometimes referred to as Nordic Seas Overflow Water NSOW NSOW flows cyclonically following the surface route of the SPG sub polar gyre around the Labrador Sea and further entrains Labrador Sea Water LSW 38 Convection is known to be suppressed at these high latitudes by sea ice cover Floating sea ice caps the surface reducing the ability for heat to move from the sea to the air This in turn reduces convection and deep return flow from the region The summer Arctic sea ice cover has undergone dramatic retreat since satellite records began in 1979 amounting to a loss of almost 30 of the September ice cover in 39 years 39 40 Climate model simulations suggest that rapid and sustained September Arctic ice loss is likely in future 21st century climate projections 41 42 43 44 Convection and entrainment in the Labrador Sea Edit See also North Atlantic Current Characteristically fresh LSW is formed at intermediate depths by deep convection in the central Labrador Sea particularly during winter storms 37 This convection is not deep enough to penetrate into the NSOW layer which forms the deep waters of the Labrador Sea LSW joins NSOW to move southward out of the Labrador Sea while NSOW easily passes under the NAC at the North West Corner some LSW is retained This diversion and retention by the SPG explains its presence and entrainment near the GSR Greenland Scotland Ridge overflows Most of the diverted LSW however splits off before the CGFZ Charlie Gibbs Fracture Zone and remains in the western SPG LSW production is highly dependent on sea air heat flux and yearly production typically ranges from 3 9 Sv 45 46 ISOW is produced in proportion to the density gradient across the Iceland Scotland Ridge and as such is sensitive to LSW production which affects the downstream density 47 48 More indirectly increased LSW production is associated with a strengthened SPG and hypothesized to be anti correlated with ISOW 49 50 51 This interplay confounds any simple extension of a reduction in individual overflow waters to a reduction in AMOC LSW production is understood to have been minimal prior to the 8 2 ka event 52 with the SPG thought to have existed before in a weakened non convective state 53 There is debate about the extent to which convection in the Labrador Sea plays a role in AMOC circulation particularly in the connection between Labrador sea variability and AMOC variability 54 Observational studies have been inconclusive about whether this connection exists 1 New observations with the OSNAP array show little contribution from the Labrador Sea to overturning and hydrographic observations from ships dating back to 1990 show similar results 2 55 Nevertheless older estimates of LSW formation using different techniques suggest larger overturning 56 Atlantic upwelling Edit For reasons of conservation of mass the global ocean system must upwell an equal volume of water to that downwelled Upwelling in the Atlantic itself occurs mostly due to coastal and equatorial upwelling mechanisms Coastal upwelling occurs as a result of Ekman transport along the interface between land and a wind driven current In the Atlantic this particularly occurs around the Canary Current and Benguela Current Upwelling in these two regions has been modelled to be in antiphase an effect known as upwelling see saw 57 Equatorial upwelling generally occurs due to atmospheric forcing and divergence due to the opposing direction of the Coriolis force either side of the equator The Atlantic features more complex mechanisms such as migration of the thermocline particularly in the Eastern Atlantic 58 Southern Ocean upwelling Edit North Atlantic Deep Water is primarily upwelled at the southern end of the Atlantic transect in the Southern Ocean 29 This upwelling comprises the majority of upwelling normally associated with AMOC and links it with the global circulation 1 On a global scale observations suggest 80 of deepwater upwells in the Southern Ocean 59 This upwelling supplies large quantities of nutrients to the surface which supports biological activity Surface supply of nutrients is critical to the ocean s functioning as a carbon sink on long timescales Furthermore upwelled water has low concentrations of dissolved carbon as the water is typically 1000 years old and has not been sensitive to anthropogenic CO2 increases in the atmosphere 60 Because of its low carbon concentration this upwelling functions as a carbon sink Variability in the carbon sink over the observational period has been closely studied and debated 61 The size of the sink is understood to have decreased until 2002 and then increased until 2012 62 After upwelling the water is understood to take one of two pathways water surfacing near to sea ice generally forms dense bottomwater and is committed to AMOC s lower cell water surfacing at lower latitudes moves further northward due to Ekman transport and is committed to the upper cell 29 63 Trends EditReconstructions Edit Climate reconstructions generally support the hypothesis that the AMOC is already weaker now than it was in the early 20th century For instance a 2010 statistical analysis found an ongoing weakening of the AMOC since the late 1930s with an abrupt shift of a North Atlantic overturning cell around 1970 64 Climate scientists Michael Mann of Penn State and Stefan Rahmstorf from the Potsdam Institute for Climate Impact Research suggested that the observed cold pattern during years of temperature records is a sign that the Atlantic Ocean s Meridional overturning circulation AMOC may be weakening They published their findings in 2015 and concluded that the AMOC circulation was slowing throughout the 20th century and that the weakness it demonstrated after 1975 was unprecedented over the last millennium They suggested that even though the AMOC had experienced partial recovery after 1975 future Greenland ice sheet melt would be likely to weaken it further still 3 Another 2015 study suggested that the AMOC has weakened by 15 20 in 200 years 65 In 2018 another reconstruction suggested a weakening of around 15 since the mid twentieth century 66 However all these findings were challenged by 2022 research which indicated that between 1900 and 2019 a climate change induced trend did not begin to emerge until 1980 and it is still faint relative to the circulation s natural variability 5 Some studies attempt to go deeper into the preindustrial past In 2018 one such paper suggested that the last 150 years of AMOC showed exceptional weakness when compared to the previous 1500 years and it indicated a discrepancy in the modeled timing of AMOC decline after the Little Ice Age 67 In February 2021 a study published in Nature Geoscience 4 reported that the preceding millennium had seen an unprecedented weakening of the AMOC an indication that the change was caused by human actions 68 Its co author said that AMOC had already slowed by about 15 with impacts now being seen In 20 to 30 years it is likely to weaken further and that will inevitably influence our weather so we would see an increase in storms and heatwaves in Europe and sea level rises on the east coast of the US 68 In February 2022 Nature Geoscience published a Matters Arising commentary article co authored by 17 scientists which disputed those findings and argued that the long term AMOC trend remains uncertain 6 The journal had also published a response from the authors of 2021 study to Matters Arising article where they defended their findings 69 In February 2021 a study had reconstructed the past 30 years of AMOC variability and found no evidence of decline 70 In August 2021 a study published in Nature Climate Change showed significant changes in eight independent AMOC indices and suggested that they could indicate an almost complete loss of stability However while it drew on over a century of ocean temperature and salinity data it was forced to omit all data from 35 years before 1900 and after 1980 to maintain consistent records of all eight indicators 18 In April 2022 another study published in Nature Climate Change used nearly 120 years of data between 1900 and 2019 and found no change between 1900 and 1980 with a single sverdrup reduction in AMOC strength not emerging until 1980 a variation which remains within range of natural variability 5 A March 2022 review article concluded that while there may be a long term weakening of the AMOC caused by global warming it remains difficult to detect when analyzing its evolution since 1980 as that time frame presents both periods of weakening and strengthening and the magnitude of either change is uncertain in range between 5 and 25 The review concluded with a call for more sensitive and longer term research 71 Observations Edit nbsp A 2021 comparison of the post 2004 RAPID observations with the 1980 2004 reconstructed AMOC trend Direct observations of the strength of the AMOC have been available only since 2004 from the RAPID array an in situ mooring array at 26 N in the Atlantic leaving only indirect evidence of the previous AMOC behavior 72 68 While climate models predict a weakening of AMOC under global warming scenarios they often struggle to match observations or reconstructions of the current In particular observed decline in the period 2004 2014 was of a factor 10 higher than that predicted by climate models participating in Phase 5 of the Coupled Model Intercomparison Project CMIP5 however some scientists attributed this to a larger than anticipated interdecadal variability of the circulation rather than a climate forced trend suggesting that the AMOC would recover from it in only a few years 73 74 In February 2021 a study indicated that the AMOC did in fact recover from that decline and found no evidence of an overall AMOC decline over the past 30 years 70 Likewise a Science Advances study published in 2020 found no significant change in the AMOC circulation relative to 1990s in spite of the substantial changes in the North Atlantic Ocean over the same period 75 2010 and earlier Edit In April 2004 the hypothesis that the Gulf Stream is switching off received a boost when a retrospective analysis of U S satellite data seemed to show a slowing of the North Atlantic Gyre the northern swirl of the Gulf Stream 76 In May 2005 Peter Wadhams reported in The Times London about the results of investigations in a submarine under the Arctic ice sheet measuring the giant chimneys of cold dense water in which the cold dense water normally sinks down to the sea bed and is replaced by warm water forming one of the engines of the North Atlantic Drift He and his team found the chimneys to have virtually disappeared Normally there are seven to twelve giant columns but Wadhams found only two giant columns both extremely weak 77 78 In 2005 a 30 reduction in the warm currents that carry water north from the Gulf Stream was observed from the last such measurement in 1992 The authors noted uncertainties in the measurements 79 Following media discussions Detlef Quadfasel pointed out that the uncertainty of the estimates of Bryden et al is high but says other factors and observations do support their results and implications based on palaeoclimate records show drops of air temperature up to 10 C within decades linked to abrupt switches of ocean circulation when a certain threshold is reached He concluded that further observations and modelling are crucial for providing early warning of a possible devastating breakdown of the circulation 80 In response Quirin Schiermeier concluded that natural variation was the culprit for the observations but highlighted possible implications 81 82 In 2008 Vage et al reported the return of deep convection to the subpolar gyre in both the Labrador and Irminger seas in the winter of 2007 2008 employing profiling float data from the Argo program to document deep mixing and a variety of in situ satellite and reanalysis data to set the context for the phenomenon This might have a lot to do with the observations of variations in cold water chimney behaviour 83 Slowdown or possible shutdown of the thermohaline circulation Edit nbsp A summary of the path of the thermohaline circulation Blue paths represent deep water currents while red paths represent surface currents nbsp An overview of the global thermohaline circulation It shows how there is a northward surface flow in the Atlantic Ocean which sinks and reverses direction in the Arctic The freshening of the Arctic surface waters by meltwater could lead to a tipping point This would have large effects on the strength and direction of the AMOC with serious consequences for nature and human society The slowdown or shutdown of the thermohaline circulation is a hypothesized effect of climate change on a major ocean circulation The Gulf Stream is part of this circulation and is part of the reason why northern Europe is warmer than it would normally be Edinburgh has the same latitude as Moscow The Thermohaline Circulation influences the climate all over the world The impacts of the decline and potential shutdown of the AMOC could include losses in agricultural output ecosystem changes and the triggering of other climate tipping points 10 Other likely impacts of AMOC decline include reduced precipitation in mid latitudes changing patterns of strong precipitation in the tropics and Europe and strengthening storms that follow the North Atlantic track Finally a decline would also be accompanied by strong sea level rise along the eastern North American coast 54 AMOC stability Edit Atlantic overturning is not a static feature of global circulation but rather a sensitive function of temperature and salinity distributions as well as atmospheric forcings Paleoceanographic reconstructions of AMOC vigour and configuration have revealed significant variations over geologic time 84 85 complementing variation observed on shorter scales 86 73 Reconstructions of a shutdown or Heinrich mode of the North Atlantic have fuelled concerns about a future collapse of the overturning circulation due to global climate change The physics of a shutdown would be underpinned by the Stommel Bifurcation where increased freshwater forcing or warmer surface waters would lead to a sudden reduction in overturning from which the forcing must be substantially reduced before restart is possible 87 In 2022 a study suggested that the strongly increasing memory of the past multidecadal variations in the system s circulation could act as an early warning indicator of a tipping point 88 An AMOC shutdown would be fuelled by two positive feedbacks the accumulation of both freshwater and heat in areas of downwelling AMOC exports freshwater from the North Atlantic and a reduction in overturning would freshen waters and inhibit downwelling 89 Similar to its export of freshwater AMOC also partitions heat in the deep ocean in a global warming regime it is possible that a weakened AMOC would lead to increasing global temperatures and further stratification and slowdown 28 However this effect would be tempered by a concomitant reduction in warm water transport to the North Atlantic under a weakened AMOC a negative feedback on the system Moreover a paleoceanographic reconstruction from 2022 found only a limited impact from massive freshwater forcing of the final Holocene deglaciation 11 700 6 000 years ago when the sea level rise amounted to around 50 metres It suggested that most models overestimate the impact of freshwater forcing on AMOC 21 To complicate the issue of positive and negative feedbacks on temperature and salinity the wind driven component of AMOC is still not fully constrained A relatively larger role of atmospheric forcing would lead to less dependency on the thermohaline factors listed above and would render AMOC less vulnerable to temperature and salinity changes under global warming 90 Multiple equilibria versus single equilibrium Edit Further information Multiple equilibria in the Atlantic meridional overturning circulation As well as paleoceanographic reconstruction the mechanism and likelihood of collapse has been investigated using climate models Earth Models of Intermediate Complexity EMICs have historically predicted a modern AMOC to have multiple equilibria characterised as warm cold and shutdown modes 91 This is in contrast to more comprehensive models which bias towards a stable AMOC characterised by a single equilibrium However doubt is cast upon this stability by a modelled northward freshwater flux which is at odds with observations 73 92 An unphysical northward flux in models acts as a negative feedback on overturning and falsely biases towards stability 13 On the other hand it was also suggested that the stationary freshwater forcing used in the classic EMICs is too simplistic and a 2022 study which modified a Stommel s Bifurcation EMIC to use more realistic transient freshwater flux found that this change delayed tipping behavior in the model by over 1000 years The study suggested that this simulation is more consistent with the reconstructions of AMOC response to Meltwater pulse 1A when a similarly long delay was observed 22 Impacts of a slowdown Edit See also Cold blob North Atlantic Don Chambers from the University of South Florida College of Marine Science mentioned The major effect of a slowing AMOC is expected to be cooler winters and summers around the North Atlantic and small regional increases in sea level on the North American coast 93 James Hansen and Makiko Sato stated AMOC slowdown that causes cooling 1 C and perhaps affects weather patterns is very different from an AMOC shutdown that cools the North Atlantic several degrees Celsius the latter would have dramatic effects on storms and be irreversible on the century time scale 94 A 2005 paper suggested that a severe AMOC slowdown would collapse North Atlantic plankton counts to less than half of their pre disruption biomass due to the increased stratification and the severe drop in nutrient exchange amongst the ocean layers 9 In 2019 a study suggested that the observed 10 decline in the phytoplankton productivity in the North Atlantic may provide evidence for this hypothesis 95 Downturn of the Atlantic meridional overturning circulation has been tied to extreme regional sea level rise 96 A 2015 paper simulated global ocean changes under AMOC slowdown and collapse scenarios and found that it would greatly decrease dissolved oxygen content in the North Atlantic even as it would slightly increase globally due to greater increases across the other oceans 97 In 2018 AMOC slowdown was also tied to increasing coastal deoxygenation 98 In 2020 it was linked to increasing salinity in the South Atlantic 99 A study published in 2016 found further evidence for a considerable impact of a slowdown on sea level rise around the U S East Coast The study confirms earlier research findings which identified the region as a hotspot for rising seas with a potential to divert 3 4 times in the rate of rise compared to the global average The researchers attribute the possible increase to an ocean circulation mechanism called deep water formation which is reduced due to AMOC slow down leading to more warmer water pockets below the surface Additionally the study noted Our results suggest that higher carbon emission rates also contribute to increased sea level rise in this region compared to the global average 100 In 2021 another paper had also suggested that the slowdown had played a role in the northeastern coast of the United States ending up as one of the fastest warming regions of North America 101 102 In 2020 a study evaluated the effects of projected AMOC weakening in the 21st century under the Representative Concentration Pathway 8 5 which portrays a future of continually increasing emissions In this scenario a weakened AMOC would also slow down Arctic sea ice decline and delay the emergence of an ice free Arctic by around 6 years as well as preventing over 50 of sea ice loss on the edges of Labrador Sea Greenland Sea Barents Sea and Sea of Okhotsk in the years 2061 2080 It also found a southward displacement of Intertropical Convergence Zone with the associated rainfall increases to the north of it over the tropical Atlantic Ocean and decreases to the south but cautioned that those trends would be dwarved by the far larger changes in precipitation associated with RCP 8 5 Finally it found that this slowdown would further deepen Icelandic Low and Aleutian Low due to the displacement of westerly jets 103 nbsp A proposed tipping cascade where the AMOC would mediate a connection between the other tipping elements In 2021 a conceptual network model was developed connecting the AMOC Greenland ice sheet West Antarctic Ice Sheet and the Amazon rainforest all well known climate tipping points through a set of simplified equations It suggested that while changes to AMOC are unlikely to trigger tipping behaviour in those other elements of the climate system on their own any other climate element transitioning towards tipping would also affect the others through a connection mediated by the AMOC slowdown potentially initiating a tipping cascade across multi century timescales Consequently AMOC slowdown would reduce the global warming threshold beyond which any of those four elements including the AMOC itself could be expected to tip as opposed to thresholds established from studying those elements in isolation 104 A 2021 assessment of the economic impact of climate tipping points found that while tipping points in general would likely increase the social cost of carbon by about 25 with a 10 chance of tipping points more than doubling it AMOC slowdown is likely to do the opposite and reduce the social cost of carbon by about 1 4 since it would act to counteract the effects of warming in Europe which is more developed and thus represents a larger fraction of the global GDP than the regions which would be impacted negatively by the slowdown 105 The following year this finding and the broader findings of the study were severely criticized by a group of scientists including Steve Keen and Timothy Lenton who considered those findings to be a severe underestimate 106 The authors have responded to this criticism by noting that their paper should be treated as the starting point in economic assessment of tipping points rather than the final word and since most of the literature included in their meta analysis lacks the ability to estimate nonmarket climate damages their numbers are likely to be underestimates 107 Impacts of a shutdown Edit See also Abrupt climate change nbsp Modelled 21st century warming under the intermediate global warming scenario top The potential collapse of the subpolar gyre in this scenario middle The collapse of the entire Atlantic Meriditional Overturning Circulation bottom The possibility that the AMOC is a bistable system which is either on or off and could collapse suddenly has been a topic of scientific discussion for a long time 108 109 In 2004 The Guardian publicized the findings of a report commissioned by Pentagon defence adviser Andrew Marshall which suggested that the average annual temperature in Europe would drop by 6 Fahrenheit between 2010 and 2020 as the result of an abrupt AMOC shutdown 110 In general a shutdown of the thermohaline circulation THC caused by global warming would trigger cooling in the North Atlantic Europe and North America 111 112 This would particularly affect areas such as the British Isles France and the Nordic countries which are warmed by the North Atlantic drift 113 114 Major consequences apart from regional cooling could also include an increase in major floods and storms a collapse of plankton stocks warming or rainfall changes in the tropics or Alaska and Antarctica more frequent and intense El Nino events due to associated shutdowns of the Kuroshio Leeuwin and East Australian Currents that are connected to the same thermohaline circulation as the Gulf Stream or an oceanic anoxic event oxygen O2 below surface levels of the stagnant oceans becomes completely depleted a probable cause of past mass extinction events 81 In 2002 a study had suggested that an AMOC shutdown may be able to trigger the type of abrupt massive temperature shifts which occurred during the last glacial period a series of Dansgaard Oeschger events rapid climate fluctuations may be attributed to freshwater forcing at high latitude interrupting the THC 2002 model runs in which the THC is forced to shut down do show cooling locally up to 8 C 14 F 115 A 2017 review concluded that there is strong evidence for past changes in the strength and structure of the AMOC during abrupt climate events such as the Younger Dryas and many of the Heinrich events 116 A 2015 study led by James Hansen found that the shutdown or substantial slowdown of the AMOC besides possibly contributing to extreme end Eemian events will cause a more general increase of severe weather Additional surface cooling from ice melt increases surface and lower tropospheric temperature gradients and causes in model simulations a large increase of mid latitude eddy energy throughout the midlatitude troposphere This in turn leads to an increase of baroclinicity produced by stronger temperature gradients which provides energy for more severe weather events This includes winter and near winter cyclonic storms colloquially known as superstorms which generate near hurricane force winds and often large amounts of snowfall These results imply that strong cooling in the North Atlantic from AMOC shutdown potentially increases seasonal mean wind speed of the northeasterlies by as much as 10 20 relative to preindustrial conditions Because wind power dissipation is proportional to the cube of wind speed this translates into an increase of storm power dissipation by a factor 1 4 2 However the simulated changes refer to seasonal mean winds averaged over large grid boxes not individual storms 12 In 2017 a study evaluated the effects of a shutdown on El Nino Southern Oscillation ENSO but found no overall impact with divergent atmospheric processes cancelling each other out 117 In 2021 a study using a Community Earth System Model suggested that an AMOC slowdown could nevertheless increase the strength of El Nino Southern Oscillation and thus amplify climate extremes especially if another Meridional Overturning Circulation develops in the Pacific Ocean in response to AMOC slowdown 118 In contrast a 2022 study showed that an AMOC collapse is likely to accelerate the Pacific trade winds and Walker circulation while weakening Indian and South Atlantic subtropical highs 119 The next study from the same team showed that the result of those altered atmospheric patterns is a 30 reduction in ENSO variability and a 95 reduction in the frequency of extreme El Nino events Unlike today El Nino events become more frequent in the central rather than eastern Pacific El Nino events 120 At the same time this would essentially make a La Nina state dominant across the globe likely leading to more frequent extreme rainfall over eastern Australia and worse droughts and bushfire seasons over southwestern United States 121 In 2020 a study had assessed the impact of an AMOC collapse on farming and food production in Great Britain 122 It estimated that AMOC collapse would reverse the impact of global warming in Great Britain and cause an average temperature drop of 3 4 C Moreover it would lower rainfall during the growing season by around lt 123mm which would in turn reduce the land area suitable for arable farming from the 32 to 7 The net value of British farming would decline by around 346 million per year or over 10 11 A 2021 study used a simplified modelling approach to evaluate the impact of a shutdown on the Amazon rainforest and its hypothesized dieback and transition to a savannah state in some climate change scenarios It suggested that a shutdown would enhance rainfall over the southern Amazon due to the shift of an Intertropical Convergence Zone and thus would help to counter the dieback and potentially stabilize at least the southern part of the rainforest 123 Projections EditThe research around the future strength of the AMOC is shown below in chronological order It is primarily based on Atmosphere Ocean General Circulation Models projections although large reviews like the IPCC reports are also informed by the present day observations and historical reconstructions which allows them to take a wider range of possibilities into account and assign likelihood to the events not explicitly covered by the models Around 2001 the IPCC Third Assessment Report projected high confidence that the THC would tend to weaken rather than stop and that the warming effects would outweigh the cooling even over Europe 124 When the IPCC Fifth Assessment Report was published in 2014 a rapid transition of the AMOC was considered very unlikely and this assessment was offered at a high confidence level 125 That assessment had several limitations such a reported bias of CMIP models towards AMOC stability 16 and the insufficient analysis of the impacts on circulation caused by Greenland ice sheet meltwater intrusion In 2016 a study aimed to redress this shortcoming by adding Greenland ice sheet melt estimates to the projections from eight state of the art climate models It found that by 2090 2100 the AMOC would weaken by around 18 with a range of potential weakening between 3 and 34 under the intermediate Representative Concentration Pathway 4 5 while it would weaken by 37 with a range between 15 and 65 under Representative Concentration Pathway 8 5 which presents a scenario of continually increasing emissions When the two scenarios are extended past 2100 AMOC stabilized under RCP 4 5 but continues to decline under RCP 8 5 with an average decline of 74 by 2290 2300 and a 44 likelihood of an outright collapse 14 In 2017 another study applied bias correction to Community Climate System Model and simulated an idealized scenario where CO2 concentrations abruptly double from 1990 levels and remain stable afterwards according to the authors such concentrations would result in a warming approximately between RCP 4 5 and RCP 6 0 The AMOC remained stable in a standard model but collapsed after 300 years of simulation in a bias corrected model 13 In 2020 a study ran simulations of RCP 4 5 and RCP 8 5 between 2005 and 2250 in a Community Earth System Model integrated with an advanced ocean physics module which allowed for a more realistic representation of Antarctic ice sheet meltwater Freshwater input was between 4 and 8 times higher in the modified RCP 4 5 scenario compared to the control run an increase from 0 1 to 0 4 0 8 sverdrup and 5 to 10 times stronger in the modified RCP 8 5 scenario from 0 2 to an average of 1 sverdrup with the peak values over 2 sverdrup around 2125 due to the collapse of the Ross Ice Shelf In both RCP 4 5 simulations AMOC declines from its current strength of 24 sverdrup to 19 sverdrup by 2100 after 2200 it begins to recover in the control simulation but stays at 19 sverdrup in the modified simulation Under both RCP 8 5 simulations there s a near collapse of the current as it declines to 8 sverdrup past 2100 and stays at that level until the end of the simulation period in the modified simulation it takes 35 years longer to reach 8 sverdrup than in the control run 126 Another study published in 2020 analyzed how the AMOC would be impacted by temperature stabilizing at 1 5 degrees 2 degrees the two Paris Agreement goals both well below the warming under of RCP 4 5 or 3 degrees by 2100 slightly above the expected warming by 2100 under RCP 4 5 In all three cases the AMOC declines for an additional 5 10 years after the temperature rise ceases but it does not come close to collapse and recovers its strength after about 150 years 15 In 2021 the IPCC Sixth Assessment Report again assessed that the AMOC is very likely to decline within the 21st century and expressed high confidence that changes to it would be reversible within centuries if the warming was reversed 7 19 Unlike the Fifth Assessment Report it had only expressed medium confidence rather than high confidence in AMOC avoiding a collapse before the end of the century This reduction in confidence was likely influenced by several review studies drawing attention to the circulation stability bias within general circulation models 127 128 as well as simplified ocean modelling studies suggesting that the AMOC may be more vulnerable to abrupt change than what the larger scale models suggest 17 In 2022 a study performed modelling experiments with three climate models participating in Aerosol and Chemistry Model Intercomparison Project and it found that very aggressive mitigation of air pollution like particulates and ground level ozone could weaken AMOC circulation by 10 by the end of the century if it happened on its own due to the reduction in climate cooling stratospheric sulfur aerosols The authors recommended pairing air pollution mitigation with the mitigation of methane emissions to avoid this outcome as both methane a strong warming agent and sulfate aerosols a cooling agent are similarly short lived in the atmosphere and a simultaneous reduction of both would cancel out their effects 129 In 2022 an extensive assessment of all potential climate tipping points identified 16 plausible climate tipping points including a collapse of the AMOC It suggested that a collapse would most likely be triggered by 4 degrees Celsius of global warming but that there s enough uncertainty to suggest it could be triggered at warming levels as low as 1 4 degrees or as high as 8 degrees Likewise it estimates that once AMOC collapse is triggered it would most likely take place over 50 years but the entire range is between 15 and 300 years Finally it concludes that this collapse would lower global temperatures by around 0 5 degrees Celsius while regional temperatures in Europe would go down by between 4 and 10 degrees Celsius 130 131 That assessment also treated the collapse of the Northern Subpolar Gyre as a potential separate tipping point which could occur at between 1 1 degrees and 3 8 degrees of warming although this is only simulated by a fraction of climate models The most likely figure is 1 8 degrees and once triggered the collapse of the gyre would most likely take 10 years from start to end with a range between 5 and 50 years The loss of this convection is estimated to lower the global temperature by 0 5 degrees while the average temperature in Europe decreases by around 3 degrees There are also substantial impacts on regional precipitation In July 2023 a paper from a pair of University of Copenhagen researchers suggested that AMOC collapse would most likely happen around 2057 with the 95 confidence range between 2025 2095 19 However it relied on a lower complexity model and its findings have been very controversial amongst the rest of the scientific community While some have described this research as worrisome and a valuable contribution to existing literature even while cautioning its results could apply to a slowdown as much as to a complete collapse others questioned the accuracy and relevance of proxy data chosen as the basis for the paper with one scientist saying that the projection had feet of clay as the result 20 Society and culture EditIn popular culture Edit The film The Day After Tomorrow and the British TV Series Ice both explore exaggerated scenarios related to the AMOC shutdown An Inconvenient Truth includes reference to the potential shutdown of the AMOC and its impact on temperatures in Europe if ice sheets were to melt and cause elevated freshwater flows in the North Atlantic Kim Stanley Robinson s science fiction novel Fifty Degrees Below a volume in his Science in the Capital series depicts a shutdown of thermohaline circulation and mankind s efforts to counteract it by adding great quantities of salt to the ocean In Ian Douglas Star Corpsman novels an AMOC shutdown triggers an early glacial maximum covering most of Canada and northern Europe in ice sheets by the mid 22nd century See also Edit nbsp Climate change portal nbsp Earth sciences portal nbsp Oceans portal8 2 kiloyear event Climate security Cold blob Loop Current of the Gulf of Mexico Anoxic event Pacific decadal oscillation Paleosalinity changes in which are thought to slow down the THC West Greenland Current Younger DryasReferences Edit a b c d e Buckley Martha W Marshall John 2016 Observations inferences and mechanisms of the Atlantic Meridional Overturning Circulation A review Reviews of Geophysics 54 1 5 63 Bibcode 2016RvGeo 54 5B doi 10 1002 2015RG000493 ISSN 8755 1209 S2CID 54013534 a b Lozier M S Li F Bacon S Bahr F Bower A S Cunningham S A de Jong M F de Steur L deYoung B Fischer J Gary S F 2019 A sea change in our view of overturning in the subpolar North Atlantic Science 363 6426 516 521 Bibcode 2019Sci 363 516L doi 10 1126 science aau6592 ISSN 0036 8075 PMID 30705189 S2CID 59567598 a b Stefan Rahmstorf Jason E Box Georg Feulner Michael E Mann Alexander Robinson Scott Rutherford Erik J Schaffernicht 2015 Exceptional twentieth century slowdown in Atlantic Ocean overturning circulation PDF Nature 5 5 475 480 Bibcode 2015NatCC 5 475R doi 10 1038 nclimate2554 a b Caesar L McCarthy G D Thornalley D J R Cahill N Rahmstorf S 25 February 2021 Current Atlantic Meridional Overturning Circulation weakest in last millennium Nature Geoscience 14 3 118 120 Bibcode 2021NatGe 14 118C doi 10 1038 s41561 021 00699 z S2CID 232052381 Retrieved 3 October 2022 a b c Latif Mojib Sun Jing Visbeck Martin Bordbar 25 April 2022 Natural variability has dominated Atlantic Meridional Overturning Circulation since 1900 Nature Climate Change 12 5 455 460 Bibcode 2022NatCC 12 455L doi 10 1038 s41558 022 01342 4 S2CID 248385988 a b Kilbourne Kelly Halimeda et al 17 February 2022 Atlantic circulation change still uncertain Nature Geoscience 15 3 165 167 Bibcode 2022NatGe 15 165K doi 10 1038 s41561 022 00896 4 S2CID 246901665 Retrieved 3 October 2022 a b IPCC 2019 Summary for Policymakers In IPCC Special Report on the Ocean and Cryosphere in a Changing Climate H O Portner D C Roberts V Masson Delmotte P Zhai M Tignor E Poloczanska K Mintenbeck A Alegria M Nicolai A Okem J Petzold B Rama N M Weyer eds Cambridge University Press Cambridge UK and New York NY USA doi 10 1017 9781009157964 001 Lenton T M Held H Kriegler E Hall J W Lucht W Rahmstorf S Schellnhuber H J 2008 Inaugural Article Tipping elements in the Earth s climate system Proceedings of the National Academy of Sciences 105 6 1786 1793 Bibcode 2008PNAS 105 1786L doi 10 1073 pnas 0705414105 PMC 2538841 PMID 18258748 a b Schmittner Andreas 31 March 2005 Industrial era decline in subarctic Atlantic productivity Nature 434 7033 628 633 doi 10 1038 nature03476 PMID 15800620 S2CID 2751408 a b Explainer Nine tipping points that could be triggered by climate change Carbon Brief 10 February 2020 Retrieved 4 September 2021 a b Atlantic circulation collapse could cut British crop farming Phys org 13 January 2020 Retrieved 3 October 2022 a b Hansen J Sato M Hearty P Ruedy R Kelley M et al 23 July 2015 Ice melt sea level rise and superstorms evidence from paleoclimate data climate modeling and modern observations that 2 C global warming is highly dangerous PDF Atmospheric Chemistry and Physics Discussions 15 14 20059 20179 Bibcode 2015ACPD 1520059H doi 10 5194 acpd 15 20059 2015 a b c Liu Wei Xie Shang Ping Liu Zhengyu Zhu Jiang 4 January 2017 Overlooked possibility of a collapsed Atlantic Meridional Overturning Circulation in warming climate Science Advances 3 1 e1601666 Bibcode 2017SciA 3E1666L doi 10 1126 sciadv 1601666 PMC 5217057 PMID 28070560 a b Bakker P Schmittner A Lenaerts JT Abe Ouchi A Bi D van den Broeke MR Chan WL Hu A Beadling RL Marsland SJ Mernild SH Saenko OA Swingedouw D Sullivan A Yin J 11 November 2016 Fate of the Atlantic Meridional Overturning Circulation Strong decline under continued warming and Greenland melting Geophysical Research Letters 43 23 12 252 12 260 Bibcode 2016GeoRL 4312252B doi 10 1002 2016GL070457 hdl 10150 622754 S2CID 133069692 a b Sigmond Michael Fyfe John C Saenko Oleg A Swart Neil C 1 June 2020 Ongoing AMOC and related sea level and temperature changes after achieving the Paris targets Nature Climate Change 10 7 672 677 Bibcode 2020NatCC 10 672S doi 10 1038 s41558 020 0786 0 S2CID 219175812 a b Valdes Paul 2011 Built for stability Nature Geoscience 4 7 414 416 Bibcode 2011NatGe 4 414V doi 10 1038 ngeo1200 ISSN 1752 0908 a b Lohmann Johannes Ditlevsen Peter D 2 March 2021 Risk of tipping the overturning circulation due to increasing rates of ice melt Proceedings of the National Academy of Sciences 118 9 e2017989118 Bibcode 2021PNAS 11817989L doi 10 1073 pnas 2017989118 ISSN 0027 8424 PMC 7936283 PMID 33619095 a b c d Boers Niklas August 2021 Observation based early warning signals for a collapse of the Atlantic Meridional Overturning Circulation Nature Climate Change 11 8 680 688 Bibcode 2021NatCC 11 680B doi 10 1038 s41558 021 01097 4 S2CID 236930519 Retrieved 5 August 2021 a b Ditlevsen Peter Ditlevsen Susanne 25 July 2023 Warning of a forthcoming collapse of the Atlantic meridional overturning circulation Nature Communications 14 1 4254 doi 10 1038 s41467 023 39810 w ISSN 2041 1723 PMC 10368695 PMID 37491344 a b expert reaction to paper warning of a collapse of the Atlantic meridional overturning circulation Science Media Centre 25 July 2023 Retrieved 11 August 2023 a b He Feng Clark Peter U 7 April 2022 Freshwater forcing of the Atlantic Meridional Overturning Circulation revisited Nature Climate Change 12 5 449 454 Bibcode 2022NatCC 12 449H doi 10 1038 s41558 022 01328 2 S2CID 248004571 a b Kim Soong Ki Kim Hyo Jeong Dijkstra Henk A An Soon Il 11 February 2022 Slow and soft passage through tipping point of the Atlantic Meridional Overturning Circulation in a changing climate npj Climate and Atmospheric Science 5 13 doi 10 1038 s41612 022 00236 8 S2CID 246705201 Goddard Paul B Sun Jing Griffies Stephen M Zhang Shaoqing 24 February 2015 An extreme event of sea level rise along the Northeast coast of North America in 2009 2010 Nature Communications 6 6346 Bibcode 2015NatCo 6 6346G doi 10 1038 ncomms7346 PMID 25710720 Bryden Harry L Imawaki Shiro 2001 Ocean heat transport International Geophysics 77 455 474 doi 10 1016 S0074 6142 01 80134 0 Retrieved 3 October 2022 Rossby T 1 November 1996 The North Atlantic Current and surrounding waters At the crossroads Reviews of Geophysics 34 4 463 481 Bibcode 1996RvGeo 34 463R doi 10 1029 96RG02214 Retrieved 3 October 2022 Seager Richard 2006 The Source of Europe s Mild Climate The notion that the Gulf Stream is responsible for keeping Europe anomalously warm turns out to be a myth American Scientist 94 4 334 341 Bibcode 1996RvGeo 34 463R doi 10 1029 96RG02214 JSTOR 27858802 Retrieved 3 October 2022 Rhines Peter Hakkinen Sirpa Josey Simon A 2008 Is oceanic heat transport significant in the climate system Arctic Subarctic Ocean Fluxes 87 109 doi 10 1007 978 1 4020 6774 7 5 ISBN 978 1 4020 6773 0 Retrieved 3 October 2022 a b Chen Xianyao Tung Ka Kit 18 July 2018 Global surface warming enhanced by weak Atlantic overturning circulation Nature 559 7714 387 391 Bibcode 2018Natur 559 387C doi 10 1038 s41586 018 0320 y PMID 30022132 S2CID 49865284 Retrieved 3 October 2022 a b c Morrison Adele K Frolicher Thomas L Sarmiento Jorge L January 2015 Upwelling in the Southern Ocean Physics Today 68 1 27 Bibcode 2015PhT 68a 27M doi 10 1063 PT 3 2654 Retrieved 3 October 2022 Gruber Nicolas Keeling Charles D Bates Nicholas R 20 December 2002 Interannual variability in the North Atlantic Ocean carbon sink Science 298 5602 2374 2378 Bibcode 2002Sci 298 2374G doi 10 1126 science 1077077 PMID 12493911 S2CID 6469504 Retrieved 3 October 2022 Canadell J G Monteiro P M S Costa M H Cotrim da Cunha L Cox P M Eliseev A V Henson S Ishii M Jaccard S Koven C Lohila A 2021 Masson Delmotte V Zhai P Piran A Connors S L Pean C Berger S Caud N Chen Y Goldfarb L eds Global Carbon and Other Biogeochemical Cycles and Feedbacks PDF Climate Change 2021 The Physical Science Basis Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change 2021 673 816 Bibcode 2021AGUFM U13B 05K doi 10 1017 9781009157896 007 ISBN 9781009157896 Salinity and Brine NSIDC Mooney Chris 30 September 2015 Everything you need to know about the surprisingly cold blob in the North Atlantic ocean The Washington Post Gierz Paul 31 August 2015 Response of Atlantic Overturning to future warming in a coupled atmosphere ocean ice sheet model Geophysical Research Letters 42 16 6811 6818 Bibcode 2015GeoRL 42 6811G doi 10 1002 2015GL065276 Turrell B The Big Chill Transcript of discussion on BBC 2 13 November 2003 Lund DC Lynch Stieglitz J Curry WB November 2006 Gulf Stream density structure and transport during the past millennium PDF Nature 444 7119 601 4 Bibcode 2006Natur 444 601L doi 10 1038 nature05277 PMID 17136090 S2CID 4431695 a b Marshall John and Friedrich Schott Open ocean convection Observations theory and models Reviews of Geophysics 37 1 1999 1 64 Haine Thomas Boning Claus Brandt Peter Fischer Jurgen Funk Andreas Kieke Dagmar Kvaleberg Erik Rhein Monika Visbeck Martin 2008 North Atlantic Deep Water Formation in the Labrador Sea Recirculation Through the Subpolar Gyre and Discharge to the Subtropics Arctic Subarctic Ocean Fluxes Defining the Role of the Northern Seas in Climate pp 653 701 doi 10 1007 978 1 4020 6774 7 28 ISBN 978 1 4020 6773 0 Huang Yiyi Dong Xiquan Bailey David A Holland Marika M Xi Baike DuVivier Alice K Kay Jennifer E Landrum Laura L Deng Yi 19 June 2019 Thicker Clouds and Accelerated Arctic Sea Ice Decline The Atmosphere Sea Ice Interactions in Spring Geophysical Research Letters 46 12 6980 6989 Bibcode 2019GeoRL 46 6980H doi 10 1029 2019gl082791 hdl 10150 634665 ISSN 0094 8276 S2CID 189968828 Yadav Juhi Kumar Avinash Mohan Rahul 21 May 2020 Dramatic decline of Arctic sea ice linked to global warming Natural Hazards 103 2 2617 2621 doi 10 1007 s11069 020 04064 y ISSN 0921 030X S2CID 218762126 Overland James E Wang Muyin 25 September 2012 A sea ice free summer Arctic within 30 years An update from CMIP5 models Geophysical Research Letters 39 18 Bibcode 2012GeoRL 3918501W doi 10 1029 2012GL052868 S2CID 9338828 Stroeve Julienne C Kattsov Vladimir Barrett Andrew Serreze Mark Pavlova Tatiana Holland Marika Meier Walter N 25 August 2012 Trends in Arctic sea ice extent from CMIP5 CMIP3 and observations Geophysical Research Letters 39 16 Bibcode 2012GeoRL 3916502S doi 10 1029 2012GL052676 S2CID 55953929 Senftleben Daniel Lauer Axel Karpechko Alexey 15 February 2020 Constraining Uncertainties in CMIP5 Projections of September Arctic Sea Ice Extent with Observations Journal of Climate 33 4 1487 1503 Bibcode 2020JCli 33 1487S doi 10 1175 jcli d 19 0075 1 ISSN 0894 8755 S2CID 210273007 Docquier David Koenigk Torben 15 July 2021 Observation based selection of climate models projects Arctic ice free summers around 2035 Communications Earth amp Environment 2 1 144 Bibcode 2021ComEE 2 144D doi 10 1038 s43247 021 00214 7 S2CID 235826846 Yashayaev Igor Loder John W 10 January 2009 Enhanced production of Labrador Sea water in 2008 Geophysical Research Letters 36 1 Bibcode 2009GeoRL 36 1606Y doi 10 1029 2008GL036162 S2CID 56353963 Retrieved 3 October 2022 Rhein Monika Kieke Dagmar Huttl Kabus Sabine Roessler Achim Mertens Christian Meissner Robert Klein Birgit Boning Claus W Yashayaev Igor 10 January 2009 Deep water formation the subpolar gyre and the meridional overturning circulation in the subpolar North Atlantic Deep Sea Research Part II Topical Studies in Oceanography 58 17 18 1819 1832 Bibcode 2009GeoRL 36 1606Y doi 10 1029 2008GL036162 S2CID 56353963 Retrieved 3 October 2022 Whitehead J A 11 August 1998 Topographic control of oceanic flows in deep passages and straits Reviews of Geophysics 36 3 423 440 Bibcode 1998RvGeo 36 423W doi 10 1029 98RG01014 S2CID 129629709 Retrieved 3 October 2022 Hansen Bogi Turrell William R Osterhus Svein 21 June 2001 Decreasing overflow from the Nordic seas into the Atlantic Ocean through the Faroe Bank channel since 1950 Nature 411 6840 927 930 doi 10 1038 35082034 PMID 11418852 S2CID 4419549 Retrieved 3 October 2022 Hakkinen Sirpa Rhines Peter B 16 April 2009 Shifting surface currents in the northern North Atlantic Ocean Journal of Geophysical Research Oceans 114 C4 Bibcode 2009JGRC 114 4005H doi 10 1029 2008JC004883 Boessenkool K P Hall I R Elderfield H Yashayaev Igor 14 July 2007 North Atlantic climate and deep ocean flow speed changes during the last 230 years Geophysical Research Letters 34 13 Bibcode 2007GeoRL 3413614B doi 10 1029 2007GL030285 S2CID 13857911 Moffa Sanchez Paola Hall Ian R 23 November 2017 North Atlantic variability and its links to European climate over the last 3000 years Nature Communications 8 1 1726 Bibcode 2017NatCo 8 1726M doi 10 1038 s41467 017 01884 8 PMC 5700112 PMID 29167464 Hillaire Marcel C de Vernal A Bilodeau G Weaver A J 26 April 2001 Absence of deep water formation in the Labrador Sea during the last interglacial period Nature 410 6832 1073 1077 doi 10 1038 35074059 PMID 11323666 S2CID 205016579 Born Andreas Levermann Anders 25 June 2010 The 8 2 ka event Abrupt transition of the subpolar gyre toward a modern North Atlantic circulation Geochemistry Geophysics Geosystems 11 6 Bibcode 2010GGG 11 6011B doi 10 1029 2009GC003024 S2CID 16132704 Retrieved 3 October 2022 a b Fox Kemper B H T Hewitt C Xiao G Adalgeirsdottir S S Drijfhout T L Edwards N R Golledge M Hemer R E Kopp G Krinner A Mix D Notz S Nowicki I S Nurhati L Ruiz J B Sallee A B A Slangen and Y Yu 2021 Chapter 9 Ocean Cryosphere and Sea Level Change In Climate Change 2021 The Physical Science Basis Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change Masson Delmotte V P Zhai A Pirani S L Connors C Pean S Berger N Caud Y Chen L Goldfarb M I Gomis M Huang K Leitzell E Lonnoy J B R Matthews T K Maycock T Waterfield O Yelekci R Yu and B Zhou eds Cambridge University Press Cambridge United Kingdom and New York NY USA pp 1211 1362 doi 10 1017 9781009157896 011 Pickart Robert S Spall Michael A 1 September 2007 Impact of Labrador Sea Convection on the North Atlantic Meridional Overturning Circulation Journal of Physical Oceanography 37 9 2207 2227 Bibcode 2007JPO 37 2207P doi 10 1175 JPO3178 1 hdl 1912 4158 ISSN 0022 3670 Haine Thomas Boning Claus Brandt Peter Fischer Jurgen Funk Andreas Kieke Dagmar Kvaleberg Erik Rhein Monika Visbeck Martin 2008 Dickson Robert R Meincke Jens Rhines Peter eds North Atlantic Deep Water Formation in the Labrador Sea Recirculation Through the Subpolar Gyre and Discharge to the Subtropics Arctic Subarctic Ocean Fluxes Defining the Role of the Northern Seas in Climate Dordrecht Springer Netherlands pp 653 701 doi 10 1007 978 1 4020 6774 7 28 ISBN 978 1 4020 6774 7 retrieved 23 May 2022 Prange M Schulz M 3 September 2004 A coastal upwelling seesaw in the Atlantic Ocean as a result of the closure of the Central American Seaway Geophysical Research Letters 31 17 Bibcode 2007GeoRL 3413614B doi 10 1029 2007GL030285 S2CID 13857911 Wang Li Chiao Fei Fei Jing Wu Chau Ron Hsu Huang Hsiung 2 March 2017 Dynamics of upwelling annual cycle in the equatorial Atlantic Ocean Geophysical Research Letters 44 8 3737 3743 Bibcode 2017GeoRL 44 3737W doi 10 1002 2017GL072588 S2CID 132601314 Talley Lynne D 2 October 2015 Closure of the global overturning circulation through the Indian Pacific and Southern Oceans Schematics and transports Oceanography 26 1 80 97 doi 10 5670 oceanog 2013 07 Retrieved 3 October 2022 DeVries Tim Primeau Francois 1 December 2011 Dynamically and observationally constrained estimates of water mass distributions and ages in the global ocean Journal of Physical Oceanography 41 12 2381 2401 Bibcode 2011JPO 41 2381D doi 10 1175 JPO D 10 05011 1 S2CID 42020235 Retrieved 3 October 2022 Mikaloff Fletcher S E 11 September 2015 An increasing carbon sink Science 349 6253 1165 Bibcode 2015Sci 349 1165M doi 10 1126 science aad0912 PMID 26359388 S2CID 8677082 Retrieved 3 October 2022 Landschutzer Peter et al 11 September 2015 The reinvigoration of the Southern Ocean carbon sink Science 349 6253 1221 1224 Bibcode 2015Sci 349 1221L doi 10 1126 science aab2620 PMID 26359401 S2CID 10636635 Retrieved 3 October 2022 Marshall John Speer Kevin 26 February 2012 Closure of the meridional overturning circulation through Southern Ocean upwelling Nature Geoscience 5 3 171 180 Bibcode 2012NatGe 5 171M doi 10 1038 ngeo1391 Retrieved 3 October 2022 Mihai Dima Gerrit Lohmann 2010 Evidence for Two Distinct Modes of Large Scale Ocean Circulation Changes over the Last Century PDF Journal of Climate 23 1 5 16 Bibcode 2010JCli 23 5D doi 10 1175 2009JCLI2867 1 Rahmstorf Stefan Box Jason E Feulner Georg Mann Michael E Robinson Alexander Rutherford Scott Schaffernicht Erik J 2015 Exceptional twentieth century slowdown in Atlantic Ocean overturning circulation PDF Nature Climate Change 5 5 475 480 Bibcode 2015NatCC 5 475R doi 10 1038 nclimate2554 ISSN 1758 678X nbsp PDF in UNEP Document Repository Archived 12 July 2019 at the Wayback Machine Caesar L Rahmsdorf S Robinson A Feulner G Saba V 11 April 2018 Observed fingerprint of a weakening Atlantic Ocean overturning circulation Nature 556 7700 191 196 Bibcode 2018Natur 556 191C doi 10 1038 s41586 018 0006 5 PMID 29643485 S2CID 4781781 Retrieved 3 October 2022 Thornalley David JR et al 11 April 2018 Anomalously weak Labrador Sea convection and Atlantic overturning during the past 150 years Nature 556 7700 227 230 Bibcode 2018Natur 556 227T doi 10 1038 s41586 018 0007 4 PMID 29643484 S2CID 4771341 Retrieved 3 October 2022 a b c Harvey Fiona 26 February 2021 Atlantic Ocean circulation at weakest in a millennium say scientists The Guardian Retrieved 27 February 2021 Caesar L McCarthy G D Thornalley D J R Cahill N Rahmstorf S 17 February 2022 Reply to Atlantic circulation change still uncertain Nature Geoscience 15 3 168 170 Bibcode 2022NatGe 15 168C doi 10 1038 s41561 022 00897 3 S2CID 246901654 Retrieved 3 October 2022 a b Worthington Emma L Moat Ben I Smeed David A Mecking Jennifer V Marsh Robert McCarthy Gerard 15 February 2021 A 30 year reconstruction of the Atlantic meridional overturning circulation shows no decline Ocean Science 17 1 285 299 Bibcode 2021OcSci 17 285W doi 10 5194 os 17 285 2021 Jackson Laura C Biastoch Arne Buckley Martha W Desbruyeres Damien G Frajka Williams Eleanor Moat Ben Robson Jon 1 March 2022 The evolution of the North Atlantic Meridional Overturning Circulation since 1980 Nature Reviews Earth amp Environment 3 4 241 254 Bibcode 2022NRvEE 3 241J doi 10 1038 s43017 022 00263 2 S2CID 247160367 Smeed D A et al 29 January 2018 The North Atlantic Ocean Is in a State of Reduced Overturning Geophysical Research Letters 45 3 1527 1533 Bibcode 2018GeoRL 45 1527S doi 10 1002 2017GL076350 S2CID 52088897 a b c Srokosz M A Bryden H L 19 June 2015 Observing the Atlantic Meridional Overturning Circulation yields a decade of inevitable surprises Science 348 6241 3737 3743 doi 10 1126 science 1255575 PMID 26089521 S2CID 22060669 Retrieved 3 October 2022 Roberts C D Jackson L McNeall D 31 March 2014 Is the 2004 2012 reduction of the Atlantic meridional overturning circulation significant Geophysical Research Letters 41 9 3204 3210 Bibcode 2014GeoRL 41 3204R doi 10 1002 2014GL059473 S2CID 129713110 Fu Yao Li Feili Karstensen Johannes Wang Chunzai 27 November 2020 A stable Atlantic Meridional Overturning Circulation in a changing North Atlantic Ocean since the 1990s Science Advances 6 48 Bibcode 2020SciA 6 7836F doi 10 1126 sciadv abc7836 PMC 7695472 PMID 33246958 Satellites record weakening North Atlantic Current NASA 15 April 2004 Leake Jonathan 8 May 2005 Britain faces big chill as ocean current slows The Sunday Times Gulf Stream slowdown RealClimate org 26 May 2005 F Pearce Failing ocean current raises fears of mini ice age NewScientist 30 November 2005 Quadfasel D December 2005 Oceanography The Atlantic heat conveyor slows Nature 438 7068 565 6 Bibcode 2005Natur 438 565Q doi 10 1038 438565a PMID 16319866 S2CID 4406389 a b Schiermeier Quirin 2007 Ocean circulation noisy not stalling Nature 448 7156 844 5 Bibcode 2007Natur 448 844S doi 10 1038 448844b PMID 17713489 Schiermeier Quirin 2007 Climate change A sea change Nature 439 7074 256 60 Bibcode 2006Natur 439 256S doi 10 1038 439256a PMID 16421539 S2CID 4431161 subscription required see also Atlantic circulation change summary RealClimate org 19 January 2006 Vage Kjetil Pickart Robert S Thierry Virginie Reverdin Gilles Lee Craig M Petrie Brian Agnew Tom A Wong Amy Ribergaard Mads H 2009 Surprising return of deep convection to the subpolar North Atlantic Ocean in winter 2007 2008 Nature Geoscience 2 1 67 72 Bibcode 2009NatGe 2 67V doi 10 1038 ngeo382 dos Santos Raquel A Lopes et al 15 November 2001 Glacial interglacial variability in Atlantic meridional overturning circulation and thermocline adjustments in the tropical North Atlantic Earth and Planetary Science Letters 300 3 4 407 414 doi 10 1016 j epsl 2010 10 030 Retrieved 3 October 2022 Bond Gerard et al 1 December 2010 Persistent solar influence on North Atlantic climate during the Holocene Science 294 5549 2130 2136 doi 10 1126 science 1065680 PMID 11739949 S2CID 38179371 Retrieved 3 October 2022 Ninnemann Ulysses S Thornalley David J R 2016 Recent natural variability of the Iceland Scotland Overflows on decadal to millennial timescales Clues from the ooze US CLIVAR Variations 14 3 1 8 Retrieved 3 October 2022 Stommel Henry May 1961 Thermohaline convection with two stable regimes of flow Tellus 13 2 224 230 doi 10 1111 j 2153 3490 1961 tb00079 x Retrieved 3 October 2022 Michel Simon L L Swingedouw Didier Ortega Pablo Gastineau Guillaume Mignot Juliette McCarthy Gerard Khodri Myriam 2 September 2022 Early warning signal for a tipping point suggested by a millennial Atlantic Multidecadal Variability reconstruction Nature Communications 13 1 5176 Bibcode 2022NatCo 13 5176M doi 10 1038 s41467 022 32704 3 PMC 9440003 PMID 36056010 Dijkstra Henk A 28 June 2008 Characterization of the multiple equilibria regime in a global ocean model Tellus A 59 5 695 705 doi 10 1111 j 1600 0870 2007 00267 x S2CID 94737971 Hofmann Matthias Rahmstorf Stefan 8 December 2009 On the stability of the Atlantic meridional overturning circulation Proceedings of the National Academy of Sciences 106 49 20584 20589 doi 10 1073 pnas 0909146106 PMC 2791639 PMID 19897722 Rahmstorf Stefan 12 September 2002 Ocean circulation and climate during the past 120 000 years Nature 419 6903 207 214 Bibcode 2002Natur 419 207R doi 10 1038 nature01090 PMID 12226675 S2CID 3136307 Retrieved 3 October 2022 Drijfhout Sybren S Weber Susanne L van der Swaluw Eric 26 October 2010 The stability of the MOC as diagnosed from model projections for pre industrial present and future climates Climate Dynamics 37 7 8 1575 1586 doi 10 1007 s00382 010 0930 z S2CID 17003970 Retrieved 3 October 2022 University of South Florida 22 January 2016 Melting Greenland ice sheet may affect global ocean circulation future climate Phys org Hansen James Sato Makiko 2015 Predictions Implicit in Ice Melt Paper and Global Implications Archived from the original on 23 September 2015 Osman Matthew B Das Sarah B Trusel Luke D Evans Matthew J Fischer Hubertus Grieman Mackenzie M Kipfstuhl Sepp McConnell Joseph R Saltzman Eric S 6 May 2019 Decline of the marine ecosystem caused by a reduction in the Atlantic overturning circulation Nature 569 7757 551 555 doi 10 1038 s41586 019 1181 8 PMID 31061499 S2CID 146118196 Yin Jianjun amp Griffies Stephen 25 March 2015 Extreme sea level rise event linked to AMOC downturn CLIVAR Archived from the original on 18 May 2015 Yamamoto A Abe Ouchi A Shigemitsu M Oka A Takahashi K Ohgaito R Yamanaka Y 5 October 2015 Global deep ocean oxygenation by enhanced ventilation in the Southern Ocean under long term global warming Global Biogeochemical Cycles 29 10 1801 1815 Bibcode 2015GBioC 29 1801Y doi 10 1002 2015GB005181 S2CID 129242813 Claret Mariona Galbraith Eric D Palter Jaime B Bianchi Daniele Fennel Katja Gilbert Denis Dunne John P 17 September 2018 Rapid coastal deoxygenation due to ocean circulation shift in the northwest Atlantic Nature Climate Change 8 10 868 872 Bibcode 2018NatCC 8 868C doi 10 1038 s41558 018 0263 1 PMC 6218011 PMID 30416585 Zhu Chenyu Liu Zhengyu 14 September 2020 Weakening Atlantic overturning circulation causes South Atlantic salinity pile up Nature Climate Change 10 11 998 1003 Bibcode 2020NatCC 10 998Z doi 10 1038 s41558 020 0897 7 S2CID 221674578 Mooney Chris 1 February 2016 Why the U S East Coast could be a major hotspot for rising seas The Washington Post Karmalkar Ambarish V Horton Radley M 23 September 2021 Drivers of exceptional coastal warming in the northeastern United States Nature Climate Change 11 10 854 860 Bibcode 2021NatCC 11 854K doi 10 1038 s41558 021 01159 7 S2CID 237611075 Krajick Kevin 23 September 2021 Why the U S Northeast Coast Is a Global Warming Hot Spot Columbia Climate School Retrieved 23 March 2023 Liu Wei Fedorov Alexey V Xie Shang Ping Hu Shineng 26 June 2020 Climate impacts of a weakened Atlantic Meridional Overturning Circulation in a warming climate Science Advances 6 26 eaaz4876 Bibcode 2020SciA 6 4876L doi 10 1126 sciadv aaz4876 PMC 7319730 PMID 32637596 Wunderling Nico Donges Jonathan F Kurths Jurgen Winkelmann Ricarda 3 June 2021 Interacting tipping elements increase risk of climate domino effects under global warming Earth System Dynamics 12 2 601 619 Bibcode 2021ESD 12 601W doi 10 5194 esd 12 601 2021 ISSN 2190 4979 S2CID 236247596 Archived from the original on 4 June 2021 Retrieved 4 June 2021 Dietz Simon Rising James Stoerk Thomas Wagner Gernot 24 August 2021 Economic impacts of tipping points in the climate system Proceedings of the National Academy of Sciences 118 34 e2103081118 Bibcode 2021PNAS 11803081D doi 10 1073 pnas 2103081118 PMC 8403967 PMID 34400500 Keen Steve Lenton Timothy M Garrett Timothy J Rae James W B Hanley Brian P Grasselli Matheus 19 May 2022 Estimates of economic and environmental damages from tipping points cannot be reconciled with the scientific literature Proceedings of the National Academy of Sciences 119 21 e2117308119 Bibcode 2022PNAS 11917308K doi 10 1073 pnas 2117308119 PMC 9173761 PMID 35588449 Dietz Simon Rising James Stoerk Thomas Wagner Gernot 19 May 2022 Reply to Keen et al Dietz et al modeling of climate tipping points is informative even if estimates are a probable lower bound Proceedings of the National Academy of Sciences 119 21 e2201191119 Bibcode 2022PNAS 11901191D doi 10 1073 pnas 2201191119 PMC 9173815 PMID 35588452 Hawkins E Smith R S Allison L C Gregory J M Woollings T J Pohlmann H De Cuevas B 2011 Bistability of the Atlantic overturning circulation in a global climate model and links to ocean freshwater transport Geophysical Research Letters 38 10 n a Bibcode 2011GeoRL 3810605H doi 10 1029 2011GL047208 S2CID 970991 Knutti Reto Stocker Thomas F 15 January 2002 Limited predictability of the future thermohaline circulation close to an instability threshold Journal of Climate 15 2 179 186 Bibcode 2002JCli 15 179K doi 10 1175 1520 0442 2002 015 lt 0179 LPOTFT gt 2 0 CO 2 S2CID 7353330 Retrieved 3 October 2022 Key findings of the Pentagon The Guardian 22 February 2004 Retrieved 2 October 2022 University Of Illinois at Urbana Champaign 20 December 2004 Shutdown Of Circulation Pattern Could Be Disastrous Researchers Say ScienceDaily Link P Michael Tol Richard S J 1 September 2004 Possible economic impacts of a shutdown of the thermohaline circulation an application of FUND Portuguese Economic Journal 3 2 99 114 CiteSeerX 10 1 1 175 5994 doi 10 1007 s10258 004 0033 z hdl 10400 5 15493 ISSN 1617 9838 S2CID 16837488 Weather Facts North Atlantic Drift Gulf Stream weatheronline co uk www weatheronline co uk The North Atlantic Drift Current oceancurrents rsmas miami edu Vellinga M Wood R A 2002 Global climatic impacts of a collapse of the Atlantic thermohaline circulation PDF Climatic Change 54 3 251 267 doi 10 1023 A 1016168827653 S2CID 153075940 Archived from the original PDF on 6 September 2006 Jean Lynch Stieglitz 2017 The Atlantic Meridional Overturning Circulation and Abrupt Climate Change Annual Review of Marine Science 9 83 104 Bibcode 2017ARMS 9 83L doi 10 1146 annurev marine 010816 060415 PMID 27814029 Williamson Mark S Collins Mat Drijfhout Sybren S Kahana Ron Mecking Jennifer V Lenton Timothy M 17 June 2017 Effect of AMOC collapse on ENSO in a high resolution general circulation model Climate Dynamics 50 7 8 2537 2552 doi 10 1007 s00382 017 3756 0 S2CID 55707315 Molina Maria J Hu Aixue Meehl Gerald A 22 November 2021 Response of Global SSTs and ENSO to the Atlantic and Pacific Meridional Overturning Circulations Journal of Climate 35 1 49 72 doi 10 1175 JCLI D 21 0172 1 OSTI 1845078 S2CID 244228477 Retrieved 3 October 2022 Orihuela Pinto Bryam England Matthew H Taschetto Andrea S 6 June 2022 Interbasin and interhemispheric impacts of a collapsed Atlantic Overturning Circulation Nature Climate Change 12 6 558 565 Bibcode 2022NatCC 12 558O doi 10 1038 s41558 022 01380 y S2CID 249401296 Retrieved 3 October 2022 Orihuela Pinto Bryam Santoso Agus England Matthew H Taschetto Andrea S 19 July 2022 Reduced ENSO Variability due to a Collapsed Atlantic Meridional Overturning Circulation Journal of Climate 35 16 5307 5320 Bibcode 2022JCli 35 5307O doi 10 1175 JCLI D 21 0293 1 S2CID 250720455 Retrieved 3 October 2022 A huge Atlantic ocean current is slowing down If it collapses La Nina could become the norm for Australia The Conversation 6 June 2022 Retrieved 3 October 2022 Ritchie Paul D L et al 13 January 2020 Shifts in national land use and food production in Great Britain after a climate tipping point Nature Food 1 76 83 doi 10 1038 s43016 019 0011 3 hdl 10871 39731 S2CID 214269716 Retrieved 3 October 2022 Ciemer Catrin Winkelmann Ricarda Kurths Jurgen Boers Niklas 28 June 2021 Impact of an AMOC weakening on the stability of the southern Amazon rainforest The European Physical Journal Special Topics 230 14 15 3065 3073 Bibcode 2021EPJST 230 3065C doi 10 1140 epjs s11734 021 00186 x S2CID 237865150 IPCC TAR WG1 2001 9 3 4 3 Thermohaline circulation changes In Houghton J T Ding Y Griggs D J Noguer M van der Linden P J Dai X Maskell K Johnson C A eds Climate Change 2001 The Scientific Basis Contribution of Working Group I to the Third Assessment Report of the Intergovernmental Panel on Climate Change Cambridge University Press ISBN 978 0 521 80767 8 pb 0 521 01495 6 IPCC AR5 WG1 PDF IPCC p Table 12 4 Archived from the original PDF on 24 August 2015 Sadai Shaina Condron Alan DeConto Robert Pollard David 23 September 2020 Future climate response to Antarctic Ice Sheet melt caused by anthropogenic warming Science Advances 6 39 Bibcode 2020SciA 6 1169S doi 10 1126 sciadv aaz1169 PMC 7531873 PMID 32967838 Mecking J V Drijfhout S S Jackson L C Andrews M B 1 January 2017 The effect of model bias on Atlantic freshwater transport and implications for AMOC bi stability Tellus A Dynamic Meteorology and Oceanography 69 1 1299910 Bibcode 2017TellA 6999910M doi 10 1080 16000870 2017 1299910 S2CID 133294706 Weijer W Cheng W Drijfhout S S Fedorov A V Hu A Jackson L C Liu W McDonagh E L Mecking J V Zhang J 2019 Stability of the Atlantic Meridional Overturning Circulation A Review and Synthesis Journal of Geophysical Research Oceans 124 8 5336 5375 Bibcode 2019JGRC 124 5336W doi 10 1029 2019JC015083 ISSN 2169 9275 S2CID 199807871 Hassan Taufiq Allen Robert J et al 27 June 2022 Air quality improvements are projected to weaken the Atlantic meridional overturning circulation through radiative forcing effects Communications Earth amp Environment 3 3 149 Bibcode 2022ComEE 3 149H doi 10 1038 s43247 022 00476 9 S2CID 250077615 Armstrong McKay David Abrams Jesse Winkelmann Ricarda Sakschewski Boris Loriani Sina Fetzer Ingo Cornell Sarah Rockstrom Johan Staal Arie Lenton Timothy 9 September 2022 Exceeding 1 5 C global warming could trigger multiple climate tipping points Science 377 6611 eabn7950 doi 10 1126 science abn7950 hdl 10871 131584 ISSN 0036 8075 PMID 36074831 S2CID 252161375 Armstrong McKay David 9 September 2022 Exceeding 1 5 C global warming could trigger multiple climate tipping points paper explainer climatetippingpoints info Retrieved 2 October 2022 External links EditProject THOR University of Hamburg project to study the thermohaline circulation An Abrupt Climate Change Scenario and Its Implications for United States National Security 2003 study What If the Conveyor Were to Shut Down Reflections on a Possible Outcome of the Great Global Experiment 1999 study Why is there a thermohaline circulation in the Atlantic but not the Pacific 2005 technical report Original article at the Encyclopedia of Earth Retrieved from https en wikipedia org w index php title Atlantic meridional overturning circulation amp oldid 1180291394, wikipedia, wiki, book, books, library,

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