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Wikipedia

Snow

Snow comprises individual ice crystals that grow while suspended in the atmosphere—usually within clouds—and then fall, accumulating on the ground where they undergo further changes.[2] It consists of frozen crystalline water throughout its life cycle, starting when, under suitable conditions, the ice crystals form in the atmosphere, increase to millimeter size, precipitate and accumulate on surfaces, then metamorphose in place, and ultimately melt, slide or sublimate away.

Snow
Norwegian train plowing through drifted snow
Physical properties
Density (ρ)0.1–0.8 g/cm3
Mechanical properties
Tensile strength (σt)1.5–3.5 kPa[1]
Compressive strength (σc)3–7 MPa[1]
Thermal properties
Melting temperature (Tm)0 °C
Thermal conductivity (k) For densities 0.1 to 0.5 g/cm30.05–0.7 W/(K·m)
Electrical properties
Dielectric constant (εr) For dry snow density 0.1 to 0.9 g/cm31–3.2
The physical properties of snow vary considerably from event to event, sample to sample, and over time.

Snowstorms organize and develop by feeding on sources of atmospheric moisture and cold air. Snowflakes nucleate around particles in the atmosphere by attracting supercooled water droplets, which freeze in hexagonal-shaped crystals. Snowflakes take on a variety of shapes, basic among these are platelets, needles, columns and rime. As snow accumulates into a snowpack, it may blow into drifts. Over time, accumulated snow metamorphoses, by sintering, sublimation and freeze-thaw. Where the climate is cold enough for year-to-year accumulation, a glacier may form. Otherwise, snow typically melts seasonally, causing runoff into streams and rivers and recharging groundwater.

Major snow-prone areas include the polar regions, the northernmost half of the Northern Hemisphere and mountainous regions worldwide with sufficient moisture and cold temperatures. In the Southern Hemisphere, snow is confined primarily to mountainous areas, apart from Antarctica.[3]

Snow affects such human activities as transportation: creating the need for keeping roadways, wings, and windows clear; agriculture: providing water to crops and safeguarding livestock; sports such as skiing, snowboarding, and snowmachine travel; and warfare. Snow affects ecosystems, as well, by providing an insulating layer during winter under which plants and animals are able to survive the cold.[1]

Precipitation

 
Worldwide occurrence of snowfall. Snow at reference above sea level (meters):
  Below 500: annually.
  Below 500: annually, but not in all of its territory.
  500: above annually, below occasionally.
  Above 500: annually.
  Above 2,000: annually.
  Any elevation: none.

Snow develops in clouds that themselves are part of a larger weather system. The physics of snow crystal development in clouds results from a complex set of variables that include moisture content and temperatures. The resulting shapes of the falling and fallen crystals can be classified into a number of basic shapes and combinations thereof. Occasionally, some plate-like, dendritic and stellar-shaped snowflakes can form under clear sky with a very cold temperature inversion present.[4]

Cloud formation

Snow clouds usually occur in the context of larger weather systems, the most important of which is the low-pressure area, which typically incorporate warm and cold fronts as part of their circulation. Two additional and locally productive sources of snow are lake-effect (also sea-effect) storms and elevation effects, especially in mountains.

Low-pressure areas

 
Extratropical cyclonic snowstorm, February 24, 2007—(Click for animation.)

Mid-latitude cyclones are low-pressure areas which are capable of producing anything from cloudiness and mild snow storms to heavy blizzards.[5] During a hemisphere's fall, winter, and spring, the atmosphere over continents can be cold enough through the depth of the troposphere to cause snowfall. In the Northern Hemisphere, the northern side of the low-pressure area produces the most snow.[6] For the southern mid-latitudes, the side of a cyclone that produces the most snow is the southern side.

Fronts

 
Frontal snowsquall moving toward Boston, Massachusetts

A cold front, the leading edge of a cooler mass of air, can produce frontal snowsqualls—an intense frontal convective line (similar to a rainband), when temperature is near freezing at the surface. The strong convection that develops has enough moisture to produce whiteout conditions at places which the line passes over as the wind causes intense blowing snow.[7] This type of snowsquall generally lasts less than 30 minutes at any point along its path, but the motion of the line can cover large distances. Frontal squalls may form a short distance ahead of the surface cold front or behind the cold front where there may be a deepening low-pressure system or a series of trough lines which act similar to a traditional cold frontal passage. In situations where squalls develop post-frontally, it is not unusual to have two or three linear squall bands pass in rapid succession separated only by 25 miles (40 kilometers), with each passing the same point roughly 30 minutes apart. In cases where there is a large amount of vertical growth and mixing, the squall may develop embedded cumulonimbus clouds resulting in lightning and thunder which is dubbed thundersnow.

A warm front can produce snow for a period as warm, moist air overrides below-freezing air and creates precipitation at the boundary. Often, snow transitions to rain in the warm sector behind the front.[7]

Lake and ocean effects

 
Cold northwesterly wind over Lake Superior and Lake Michigan creating lake-effect snowfall

Lake-effect snow is produced during cooler atmospheric conditions when a cold air mass moves across long expanses of warmer lake water, warming the lower layer of air which picks up water vapor from the lake, rises up through the colder air above, freezes, and is deposited on the leeward (downwind) shores.[8][9]

The same effect occurring over bodies of salt water is termed ocean-effect or bay-effect snow. The effect is enhanced when the moving air mass is uplifted by the orographic influence of higher elevations on the downwind shores. This uplifting can produce narrow but very intense bands of precipitation which may deposit at a rate of many inches of snow each hour, often resulting in a large amount of total snowfall.[10]

The areas affected by lake-effect snow are called snowbelts. These include areas east of the Great Lakes, the west coasts of northern Japan, the Kamchatka Peninsula in Russia, and areas near the Great Salt Lake, Black Sea, Caspian Sea, Baltic Sea, and parts of the northern Atlantic Ocean.[11]

Mountain effects

Orographic or relief snowfall is created when moist air is forced up the windward side of mountain ranges by a large-scale wind flow. The lifting of moist air up the side of a mountain range results in adiabatic cooling, and ultimately condensation and precipitation. Moisture is gradually removed from the air by this process, leaving drier and warmer air on the descending, or leeward, side.[12] The resulting enhanced snowfall,[13] along with the decrease in temperature with elevation,[14] combine to increase snow depth and seasonal persistence of snowpack in snow-prone areas.[1][15]

Mountain waves have also been found to help enhance precipitation amounts downwind of mountain ranges by enhancing the lift needed for condensation and precipitation.[16]

Cloud physics

 
Freshly fallen snowflakes

A snowflake consists of roughly 1019 water molecules which are added to its core at different rates and in different patterns depending on the changing temperature and humidity within the atmosphere that the snowflake falls through on its way to the ground. As a result, snowflakes differ from each other though they follow similar patterns.[17][18][19]

Snow crystals form when tiny supercooled cloud droplets (about 10 μm in diameter) freeze. These droplets are able to remain liquid at temperatures lower than −18 °C (0 °F), because to freeze, a few molecules in the droplet need to get together by chance to form an arrangement similar to that in an ice lattice. The droplet freezes around this "nucleus". In warmer clouds, an aerosol particle or "ice nucleus" must be present in (or in contact with) the droplet to act as a nucleus. Ice nuclei are very rare compared to cloud condensation nuclei on which liquid droplets form. Clays, desert dust, and biological particles can be nuclei.[20] Artificial nuclei include particles of silver iodide and dry ice, and these are used to stimulate precipitation in cloud seeding.[21]

Once a droplet has frozen, it grows in the supersaturated environment—one where air is saturated with respect to ice when the temperature is below the freezing point. The droplet then grows by diffusion of water molecules in the air (vapor) onto the ice crystal surface where they are collected. Because water droplets are so much more numerous than the ice crystals, the crystals are able to grow to hundreds of micrometers or millimeters in size at the expense of the water droplets by the Wegener–Bergeron–Findeisen process. These large crystals are an efficient source of precipitation, since they fall through the atmosphere due to their mass, and may collide and stick together in clusters, or aggregates. These aggregates are snowflakes, and are usually the type of ice particle that falls to the ground.[22] Although the ice is clear, scattering of light by the crystal facets and hollows/imperfections mean that the crystals often appear white in color due to diffuse reflection of the whole spectrum of light by the small ice particles.[23]

Classification of snowflakes

 
An early classification of snowflakes by Israel Perkins Warren[24]

Micrography of thousands of snowflakes from 1885 onward, starting with Wilson Alwyn Bentley, revealed the wide diversity of snowflakes within a classifiable set of patterns.[25] Closely matching snow crystals have been observed.[26]

Ukichiro Nakaya developed a crystal morphology diagram, relating crystal shapes to the temperature and moisture conditions under which they formed, which is summarized in the following table.[1]

Crystal structure morphology as a function of temperature and water saturation
Temperature range Saturation range Types of snow crystal
°C °F g/m3 oz/cu yd below saturation above saturation
0 to −3.5 32 to 26 0.0 to 0.5 0.000 to 0.013 Solid plates Thin plates

Dendrites

−3.5 to −10 26 to 14 0.5 to 1.2 0.013 to 0.032 Solid prisms

Hollow prisms

Hollow prisms

Needles

−10 to −22 14 to −8 1.2 to 1.4 0.032 to 0.038 Thin plates

Solid plates

Sectored plates

Dendrites

−22 to −40 −8 to −40 1.2 to 0.1 0.0324 to 0.0027 Thin plates

Solid plates

Columns

Prisms

Nakaya discovered that the shape is also a function of whether the prevalent moisture is above or below saturation. Forms below the saturation line tend more toward solid and compact while crystals formed in supersaturated air tend more toward lacy, delicate, and ornate. Many more complex growth patterns also form, which include side-planes, bullet-rosettes, and planar types, depending on the conditions and ice nuclei.[27][28][29] If a crystal has started forming in a column growth regime at around −5 °C (23 °F) and then falls into the warmer plate-like regime, plate or dendritic crystals sprout at the end of the column, producing so called "capped columns".[22]

Magono and Lee devised a classification of freshly formed snow crystals that includes 80 distinct shapes. They documented each with micrographs.[30]

Accumulation

 
An animation of seasonal snow changes, based on satellite imagery

Snow accumulates from a series of snow events, punctuated by freezing and thawing, over areas that are cold enough to retain snow seasonally or perennially. Major snow-prone areas include the Arctic and Antarctic, the Northern Hemisphere, and alpine regions. The liquid equivalent of snowfall may be evaluated using a snow gauge[31] or with a standard rain gauge, adjusted for winter by removal of a funnel and inner cylinder.[32] Both types of gauges melt the accumulated snow and report the amount of water collected.[33] At some automatic weather stations an ultrasonic snow depth sensor may be used to augment the precipitation gauge.[34]

Event

 
New York City during a 2016 blizzard, which produced local wind gusts up to 42 miles per hour (19 m/s) and dropped 27.5 inches (70 cm) of snow, breaking the city's one-day snowfall record

Snow flurry, snow shower, snow storm and blizzard describe snow events of progressively greater duration and intensity.[35] A blizzard is a weather condition involving snow and has varying definitions in different parts of the world. In the United States, a blizzard occurs when two conditions are met for a period of three hours or more: a sustained wind or frequent gusts to 35 miles per hour (16 m/s), and sufficient snow in the air to reduce visibility to less than 0.4 kilometers (0.25 mi).[36] In Canada and the United Kingdom, the criteria are similar.[37][38] While heavy snowfall often occurs during blizzard conditions, falling snow is not a requirement, as blowing snow can create a ground blizzard.[39]

Snowstorm intensity may be categorized by visibility and depth of accumulation.[40] Snowfall's intensity is determined by visibility, as follows:[41]

  • Light: visibility greater than 1 kilometer (0.6 mi)
  • Moderate: visibility restrictions between 0.5 and 1 kilometer (0.3 and 0.6 mi)
  • Heavy: visibility is less than 0.5 kilometers (0.3 mi)

Snowsqualls may deposit snow in bands that extend from bodies of water as lake-event weather or result from the passage of an upper-level front.[42][43][44]

The International Classification for Seasonal Snow on the Ground defines "height of new snow" as the depth of freshly fallen snow, in centimeters as measured with a ruler, that accumulated on a snowboard during an observation period of 24 hours, or other observation interval. After the measurement, the snow is cleared from the board and the board is placed flush with the snow surface to provide an accurate measurement at the end of the next interval.[4] Melting, compacting, blowing and drifting contribute to the difficulty of measuring snowfall.[45]

Distribution

 
Snow-covered trees in Kuusamo, Finland

Glaciers with their permanent snowpacks cover about 10% of the earth's surface, while seasonal snow covers about nine percent,[1] mostly in the Northern Hemisphere, where seasonal snow covers about 40 million square kilometres (15×10^6 sq mi), according to a 1987 estimate.[46] A 2007 estimate of snow cover over the Northern Hemisphere suggested that, on average, snow cover ranges from a minimum extent of 2 million square kilometres (0.77×10^6 sq mi) each August to a maximum extent of 45 million square kilometres (17×10^6 sq mi) each January or nearly half of the land surface in that hemisphere.[47][48] A study of Northern Hemisphere snow cover extent for the period 1972–2006 suggests a reduction of 0.5 million square kilometres (0.19×10^6 sq mi) over the 35-year period.[48]

Records

The following are world records regarding snowfall and snowflakes:

  • Highest seasonal total snowfall – The world record for the highest seasonal total snowfall was measured in the United States at Mt. Baker Ski Area, outside of the city of Bellingham, Washington during the 1998–1999 season. Mount Baker received 2,896 cm (95.01 ft) of snow,[49] thus surpassing the previous record holder, Mount Rainier, Washington, which during the 1971–1972 season received 2,850 cm (93.5 ft) of snow.[50]
  • Highest seasonal average annual snowfall – The world record for the highest average annual snowfall is 1,764 cm (57.87 ft),[51] measured in Sukayu Onsen, Japan for the period of 1981–2010.
  • Largest snowflake – According to Guinness World Records, the world's largest snowflake fell in January 1887 outside present-day Miles City, Montana. It measured 38 cm (15 in) in diameter.[52]

The cities (more than 100,000 inhabitants) with the highest annual snowfall are Aomori (792 cm), Sapporo (485 cm) and Toyama (363 cm) in Japan, followed by St. John's (332 cm) and Quebec City (315 cm) in Canada, and Syracuse, NY (325cm).[53]

Metamorphism

 
Fresh snow beginning to metamorphose: The surface shows wind packing and sastrugi. In the foreground are hoar frost crystals, formed by refrozen water vapor emerging to the cold surface.
 
Sastrugi formed during a blizzard just a few hours earlier.

According to the International Association of Cryospheric Sciences, snow metamorphism is "the transformation that the snow undergoes in the period from deposition to either melting or passage to glacial ice".[4] Starting as a powdery deposition, snow becomes more granular when it begins to compact under its own weight, be blown by the wind, sinter particles together and commence the cycle of melting and refreezing. Water vapor plays a role as it deposits ice crystals, known as hoar frost, during cold, still conditions.[54] During this transition, snow "is a highly porous, sintered material made up of a continuous ice structure and a continuously connected pore space, forming together the snow microstructure". Almost always near its melting temperature, a snowpack is continually transforming these properties wherein all three phases of water may coexist, including liquid water partially filling the pore space. After deposition, snow progresses on one of two paths that determine its fate, either by ablation (mostly by melting) from a snow fall or seasonal snowpack, or by transitioning from firn (multi-year snow) into glacier ice.[4]

Seasonal

Over the course of time, a snowpack may settle under its own weight until its density is approximately 30% of water. Increases in density above this initial compression occur primarily by melting and refreezing, caused by temperatures above freezing or by direct solar radiation. In colder climates, snow lies on the ground all winter. By late spring, snow densities typically reach a maximum of 50% of water.[55] Snow that persists into summer evolves into névé, granular snow, which has been partially melted, refrozen and compacted. Névé has a minimum density of 500 kilograms per cubic metre (31 lb/cu ft), which is roughly half of the density of liquid water.[56]

Firn

 
Firn—metamorphosed multi-year snow

Firn is snow that has persisted for multiple years and has been recrystallized into a substance denser than névé, yet less dense and hard than glacial ice. Firn resembles caked sugar and is very resistant to shovelling. Its density generally ranges from 550 kilograms per cubic metre (34 lb/cu ft) to 830 kilograms per cubic metre (52 lb/cu ft), and it can often be found underneath the snow that accumulates at the head of a glacier. The minimum altitude that firn accumulates on a glacier is called the firn limit, firn line or snowline.[1][57]

Movement

There are four main mechanisms for movement of deposited snow: drifting of unsintered snow, avalanches of accumulated snow on steep slopes, snowmelt during thaw conditions, and the movement of glaciers after snow has persisted for multiple years and metamorphosed into glacier ice.

Drifting

 
Snow drifts forming around downwind obstructions

When powdery snow drifts with the wind from the location where it originally fell,[58] forming deposits with a depth of several meters in isolated locations.[59] After attaching to hillsides, blown snow can evolve into a snow slab, which is an avalanche hazard on steep slopes.[60]

Avalanche

 
A powder snow avalanche

An avalanche (also called a snowslide or snowslip) is a rapid flow of snow down a sloping surface. Avalanches are typically triggered in a starting zone from a mechanical failure in the snowpack (slab avalanche) when the forces on the snow exceed its strength but sometimes only with gradually widening (loose snow avalanche). After initiation, avalanches usually accelerate rapidly and grow in mass and volume as they entrain more snow. If the avalanche moves fast enough some of the snow may mix with the air forming a powder snow avalanche, which is a type of gravity current. They occur in three major mechanisms:[60]

  • Slab avalanches occur in snow that has been deposited, or redeposited by wind. They have the characteristic appearance of a block (slab) of snow cut out from its surroundings by fractures. These account for most back-country fatalities.
  • Powder snow avalanches result from a deposition of fresh dry powder and generate a powder cloud, which overlies a dense avalanche. They can exceed speeds of 300 kilometers per hour (190 mph), and masses of 10,000,000 tonnes (9,800,000 long tons; 11,000,000 short tons); their flows can travel long distances along flat valley bottoms and even uphill for short distances.
  • Wet snow avalanches are a low-velocity suspension of snow and water, with the flow confined to the surface of the pathway.[60] The low speed of travel is due to the friction between the sliding surface of the pathway and the water saturated flow. Despite the low speed of travel (~10 to 40 kilometers per hour (6 to 25 mph)), wet snow avalanches are capable of generating powerful destructive forces, due to the large mass, and density.

Melting

 
Snowmelt-induced flooding of the Red River of the North in 1997

Many rivers originating in mountainous or high-latitude regions receive a significant portion of their flow from snowmelt. This often makes the river's flow highly seasonal resulting in periodic flooding[61] during the spring months and at least in dry mountainous regions like the mountain West of the US or most of Iran and Afghanistan, very low flow for the rest of the year. In contrast, if much of the melt is from glaciated or nearly glaciated areas, the melt continues through the warm season, with peak flows occurring in mid to late summer.[62]

Glaciers

Glaciers form where the accumulation of snow and ice exceeds ablation. The area in which an alpine glacier forms is called a cirque (corrie or cwm), a typically armchair-shaped geological feature, which collects snow and where the snowpack compacts under the weight of successive layers of accumulating snow, forming névé. Further crushing of the individual snow crystals and reduction of entrapped air in the snow turns it into glacial ice. This glacial ice will fill the cirque until it overflows through a geological weakness or an escape route, such as the gap between two mountains. When the mass of snow and ice is sufficiently thick, it begins to move due to a combination of surface slope, gravity and pressure. On steeper slopes, this can occur with as little as 15 m (50 ft) of snow-ice.[1]

Science

Scientists study snow at a wide variety of scales that include the physics of chemical bonds and clouds; the distribution, accumulation, metamorphosis, and ablation of snowpacks; and the contribution of snowmelt to river hydraulics and ground hydrology. In doing so, they employ a variety of instruments to observe and measure the phenomena studied. Their findings contribute to knowledge applied by engineers, who adapt vehicles and structures to snow, by agronomists, who address the availability of snowmelt to agriculture, and those, who design equipment for sporting activities on snow. Scientists develop and others employ snow classification systems that describe its physical properties at scales ranging from the individual crystal to the aggregated snowpack. A sub-specialty is avalanches, which are of concern to engineers and outdoors sports people, alike.

Snow science addresses how snow forms, its distribution, and processes affecting how snowpacks change over time. Scientists improve storm forecasting, study global snow cover and its effect on climate, glaciers, and water supplies around the world. The study includes physical properties of the material as it changes, bulk properties of in-place snow packs, and the aggregate properties of regions with snow cover. In doing so, they employ on-the-ground physical measurement techniques to establish ground truth and remote sensing techniques to develop understanding of snow-related processes over large areas.[63]

Measurement and classification

In the field snow scientists often excavate a snow pit within which to make basic measurements and observations. Observations can describe features caused by wind, water percolation, or snow unloading from trees. Water percolation into a snowpack can create flow fingers and ponding or flow along capillary barriers, which can refreeze into horizontal and vertical solid ice formations within the snowpack. Among the measurements of the properties of snowpacks that the International Classification for Seasonal Snow on the Ground includes are: snow height, snow water equivalent, snow strength, and extent of snow cover. Each has a designation with code and detailed description. The classification extends the prior classifications of Nakaya and his successors to related types of precipitation and are quoted in the following table:[4]

 
Snow pit on the surface of a glacier, profiling snow properties where the snow becomes increasingly dense with depth as it turns to ice
Frozen precipitation particles, related to snow crystals
Subclass Shape Physical process
Graupel Heavily rimed particles, spherical, conical, hexagonal or irregular in shape Heavy riming of particles by accretion of supercooled water droplets
Hail Laminar internal structure, translucent or milky glazed surface Growth by accretion of supercooled water, size: >5 mm
Ice pellets Transparent, mostly small spheroids Freezing of raindrops or refreezing of largely melted snow crystals or snowflakes (sleet). Graupel or snow pellets encased in thin ice layer (small hail). Size: both 5 mm
Rime Irregular deposits or longer cones and needles pointing into the wind Accretion of small, supercooled fog droplets frozen in place. Thin breakable crust forms on snow surface if process continues long enough.

All are formed in cloud, except for rime, which forms on objects exposed to supercooled moisture.

It also has a more extensive classification of deposited snow than those that pertain to airborne snow. The categories include both natural and man-made snow types, descriptions of snow crystals as they metamorphose and melt, the development of hoar frost in the snow pack and the formation of ice therein. Each such layer of a snowpack differs from the adjacent layers by one or more characteristics that describe its microstructure or density, which together define the snow type, and other physical properties. Thus, at any one time, the type and state of the snow forming a layer have to be defined because its physical and mechanical properties depend on them. Physical properties include microstructure, grain size and shape, snow density, liquid water content, and temperature.[4]

When it comes to measuring snow cover on the ground, typically three variables are measured: the snow cover extent (SCE) — the land area covered by snow, snow cover duration (SD) — how long a particular area is covered by snow, and the snow accumulation, often expressed as snow water equivalent (SWE), which expresses how much water the snow would be if it were all melted: this last one is a measurement of the volume of the snowpack.[64] To measure these variables a variety of techniques are used: surface observations, remote sensing, land surface models and reanalysis products. These techniques are often combined to form the most complete datasets.[64]

Satellite data

Remote sensing of snowpacks with satellites and other platforms typically includes multi-spectral collection of imagery.[65] Multi-faceted interpretation of the data obtained allows inferences about what is observed. The science behind these remote observations has been verified with ground-truth studies of the actual conditions.[1][66]

Satellite observations record a decrease in snow-covered areas since the 1960s, when satellite observations began. In some regions such as China, a trend of increasing snow cover was observed from 1978 to 2006. These changes are attributed to global climate change, which may lead to earlier melting and less coverage area. In some areas, snow depth increases because of higher temperatures in latitudes north of 40°. For the Northern Hemisphere as a whole the mean monthly snow-cover extent has been decreasing by 1.3% per decade.[67]

The most frequently used methods to map and measure snow extent, snow depth and snow water equivalent employ multiple inputs on the visible–infrared spectrum to deduce the presence and properties of snow. The National Snow and Ice Data Center (NSIDC) uses the reflectance of visible and infrared radiation to calculate a normalized difference snow index, which is a ratio of radiation parameters that can distinguish between clouds and snow. Other researchers have developed decision trees, employing the available data to make more accurate assessments. One challenge to this assessment is where snow cover is patchy, for example during periods of accumulation or ablation and also in forested areas. Cloud cover inhibits optical sensing of surface reflectance, which has led to other methods for estimating ground conditions underneath clouds. For hydrological models, it is important to have continuous information about the snow cover. Passive microwave sensors are especially valuable for temporal and spatial continuity because they can map the surface beneath clouds and in darkness. When combined with reflective measurements, passive microwave sensing greatly extends the inferences possible about the snowpack.[67]

Satellite measurements show that snow cover has been decreasing in many areas of the world since 1978.[64]

Models

 
Snowfall and snowmelt are parts of the Earth's water cycle.

Snow science often leads to predictive models that include snow deposition, snow melt, and snow hydrology—elements of the Earth's water cycle—which help describe global climate change.[1]

Global climate change models (GCMs) incorporate snow as a factor in their calculations. Some important aspects of snow cover include its albedo (reflectivity of incident radiation, including light) and insulating qualities, which slow the rate of seasonal melting of sea ice. As of 2011, the melt phase of GCM snow models were thought to perform poorly in regions with complex factors that regulate snow melt, such as vegetation cover and terrain. These models typically derive snow water equivalent (SWE) in some manner from satellite observations of snow cover.[1] The International Classification for Seasonal Snow on the Ground defines SWE as "the depth of water that would result if the mass of snow melted completely".[4]

Given the importance of snowmelt to agriculture, hydrological runoff models that include snow in their predictions address the phases of accumulating snowpack, melting processes, and distribution of the meltwater through stream networks and into the groundwater. Key to describing the melting processes are solar heat flux, ambient temperature, wind, and precipitation. Initial snowmelt models used a degree-day approach that emphasized the temperature difference between the air and the snowpack to compute snow water equivalent, SWE. More recent models use an energy balance approach that take into account the following factors to compute Qm, the energy available for melt. This requires measurement of an array of snowpack and environmental factors to compute six heat flow mechanisms that contribute to Qm.[1]

Effects on civilization

Snow routinely affects civilization in four major areas, transportation, agriculture, structures, and sports. Most transportation modes are impeded by snow on the travel surface. Agriculture often relies on snow as a source of seasonal moisture. Structures may fail under snow loads. Humans find a wide variety of recreational activities in snowy landscapes. It also affects the conduct of warfare.

Transportation

Snow affects the rights of way of highways, airfields and railroads. The snowplow is common to all workers, though roadways take anti-icing chemicals to prevent bonding of ice and airfields may not; railroads rely on abrasives for track traction.

Highway

 
Traffic stranded in a 2011 Chicago snowstorm.
 
Reduced visibility on Ontario Highway 401 in Toronto due to a snowsquall.

In the late 20th century, an estimated $2 billion was spent annually in North America on roadway winter maintenance, owing to snow and other winter weather events, according to a 1994 report by Kuemmel. The study surveyed the practices of jurisdictions within 44 US states and nine Canadian provinces. It assessed the policies, practices, and equipment used for winter maintenance. It found similar practices and progress to be prevalent in Europe.[68]

The dominant effect of snow on vehicle contact with the road is diminished friction. This can be improved with the use of snow tires, which have a tread designed to compact snow in a manner that enhances traction. The key to maintaining a roadway that can accommodate traffic during and after a snow event is an effective anti-icing program that employs both chemicals and plowing.[68] The Federal Highway Administration Manual of Practice for an Effective Anti-icing Program emphasizes "anti-icing" procedures that prevent the bonding of snow and ice to the road. Key aspects of the practice include: understanding anti-icing in light of the level of service to be achieved on a given roadway, the climatic conditions to be encountered, and the different roles of deicing, anti-icing, and abrasive materials and applications, and employing anti-icing "toolboxes", one for operations, one for decision-making and another for personnel. The elements to the toolboxes are:[69]

  • Operations – Addresses the application of solid and liquid chemicals, using various techniques, including prewetting of chloride-salts. It also addresses plowing capability, including types of snowplows and blades used.
  • Decision-making – Combines weather forecast information with road information to assess the upcoming needs for application of assets and the evaluation of treatment effectiveness with operations underway.
  • Personnel – Addresses training and deployment of staff to effectively execute the anti-icing program, using the appropriate materials, equipment and procedures.

The manual offers matrices that address different types of snow and the rate of snowfall to tailor applications appropriately and efficiently.

Snow fences, constructed upwind of roadways control snow drifting by causing windblown, drifting snow to accumulate in a desired place. They are also used on railways. Additionally, farmers and ranchers use snow fences to create drifts in basins for a ready supply of water in the spring.[70][71]

Aviation

 
Deicing an aircraft during a snow event

In order to keep airports open during winter storms, runways and taxiways require snow removal. Unlike roadways, where chloride chemical treatment is common to prevent snow from bonding to the pavement surface, such chemicals are typically banned from airports because of their strong corrosive effect on aluminum aircraft. Consequently, mechanical brushes are often used to complement the action of snow plows. Given the width of runways on airfields that handle large aircraft, vehicles with large plow blades, an echelon of plow vehicles or rotary snowplows are used to clear snow on runways and taxiways. Terminal aprons may require 6 hectares (15 acres) or more to be cleared.[72]

Properly equipped aircraft are able to fly through snowstorms under instrument flight rules. Prior to takeoff, during snowstorms they require deicing fluid to prevent accumulation and freezing of snow and other precipitation on wings and fuselages, which may compromise the safety of the aircraft and its occupants.[73] In flight, aircraft rely on a variety of mechanisms to avoid rime and other types of icing in clouds,[74] these include pulsing pneumatic boots, electro-thermal areas that generate heat, and fluid deicers that bleed onto the surface.[75]

Rail

Railroads have traditionally employed two types of snow plows for clearing track, the wedge plow, which casts snow to both sides, and the rotary snowplow, which is suited for addressing heavy snowfall and casting snow far to one side or the other. Prior to the invention of the rotary snowplow ca. 1865, it required multiple locomotives to drive a wedge plow through deep snow. Subsequent to clearing the track with such plows, a "flanger" is used to clear snow from between the rails that are below the reach of the other types of plow. Where icing may affect the steel-to-steel contact of locomotive wheels on track, abrasives (typically sand) have been used to provide traction on steeper uphills.[76]

Railroads employ snow sheds—structures that cover the track—to prevent the accumulation of heavy snow or avalanches to cover tracks in snowy mountainous areas, such as the Alps and the Rocky Mountains.[77]

Construction

Snow can be compacted to form a snow road and be part of a winter road route for vehicles to access isolated communities or construction projects during the winter.[78] Snow can also be used to provide the supporting structure and surface for a runway, as with the Phoenix Airfield in Antarctica. The snow-compacted runway is designed to withstand approximately 60 wheeled flights of heavy-lift military aircraft a year.[79]

Agriculture

 
Satellite view of the Indus River Basin, showing snow in the mountain ranges—including the Himalayas—which feed the Indus river and its tributaries, and agricultural areas in eastern Pakistan and northwestern India that draw on them for irrigation.

Snowfall can be beneficial to agriculture by serving as a thermal insulator, conserving the heat of the Earth and protecting crops from subfreezing weather. Some agricultural areas depend on an accumulation of snow during winter that will melt gradually in spring, providing water for crop growth, both directly and via runoff through streams and rivers, which supply irrigation canals.[1] The following are examples of rivers that rely on meltwater from glaciers or seasonal snowpack as an important part of their flow on which irrigation depends: the Ganges, many of whose tributaries rise in the Himalayas and which provide much irrigation in northeast India,[80] the Indus River, which rises in Tibet[81] and provides irrigation water to Pakistan from rapidly retreating Tibetan glaciers,[82] and the Colorado River, which receives much of its water from seasonal snowpack in the Rocky Mountains[83] and provides irrigation water to some 4 million acres (1.6 million hectares).[84]

Structures

 
Extreme snow accumulation on building roofs

Snow is an important consideration for loads on structures. To address these, European countries employ Eurocode 1: Actions on structures - Part 1-3: General actions - Snow loads.[85] In North America, ASCE Minimum Design Loads for Buildings and Other Structures gives guidance on snow loads.[86] Both standards employ methods that translate maximum expected ground snow loads onto design loads for roofs.

Roofs

 
Icings resulting from meltwater at the bottom of the snow pack on the roof, flowing and refreezing at the eave as icicles and from leaking into the wall via an ice dam.

Snow loads and icings are two principal issues for roofs. Snow loads are related to the climate in which a structure is sited. Icings are usually a result of the building or structure generating heat that melts the snow that is on it.

Snow loads – The Minimum Design Loads for Buildings and Other Structures gives guidance on how to translate the following factors into roof snow loads:[86]

  • Ground snow loads
  • Exposure of the roof
  • Thermal properties of the roof
  • Shape of the roof
  • Drifting
  • Importance of the building

It gives tables for ground snow loads by region and a methodology for computing ground snow loads that may vary with elevation from nearby, measured values. The Eurocode 1 uses similar methodologies, starting with ground snow loads that are tabulated for portions of Europe.[85]

Icings – Roofs must also be designed to avoid ice dams, which result from meltwater running under the snow on the roof and freezing at the eave. Ice dams on roofs form when accumulated snow on a sloping roof melts and flows down the roof, under the insulating blanket of snow, until it reaches below freezing temperature air, typically at the eaves. When the meltwater reaches the freezing air, ice accumulates, forming a dam, and snow that melts later cannot drain properly through the dam.[87] Ice dams may result in damaged building materials or in damage or injury when the ice dam falls off or from attempts to remove ice dams. The melting results from heat passing through the roof under the highly insulating layer of snow.[88][89]

Utility lines

In areas with trees, utility distribution lines on poles are less susceptible to snow loads than they are subject to damage from trees falling on them, felled by heavy, wet snow.[90] Elsewhere, snow can accrete on power lines as "sleeves" of rime ice. Engineers design for such loads, which are measured in kg/m (lb/ft) and power companies have forecasting systems that anticipate types of weather that may cause such accretions. Rime ice may be removed manually or by creating a sufficient short circuit in the affected segment of power lines to melt the accretions.[91][92]

Sports and recreation

 
Alpine skiing

Snow figures into many winter sports and forms of recreation, including skiing and sledding. Common examples include cross-country skiing, Alpine skiing, snowboarding, snowshoeing, and snowmobiling. The design of the equipment used, e.g. skis and snowboards, typically relies on the bearing strength of snow and contends with the coefficient of friction bearing on snow.

Skiing is by far the largest form of winter recreation. As of 1994, of the estimated 65–75 million skiers worldwide, there were approximately 55 million who engaged in Alpine skiing, the rest engaged in cross-country skiing. Approximately 30 million skiers (of all kinds) were in Europe, 15 million in the US, and 14 million in Japan. As of 1996, there were reportedly 4,500 ski areas, operating 26,000 ski lifts and enjoying 390 million skier visits per year. The preponderant region for downhill skiing was Europe, followed by Japan and the US.[93]

Increasingly, ski resorts are relying on snowmaking, the production of snow by forcing water and pressurized air through a snow gun on ski slopes.[94] Snowmaking is mainly used to supplement natural snow at ski resorts.[95] This allows them to improve the reliability of their snow cover and to extend their ski seasons from late autumn to early spring. The production of snow requires low temperatures. The threshold temperature for snowmaking increases as humidity decreases. Wet-bulb temperature is used as a metric since it takes air temperature and relative humidity into account. Snowmaking is a relatively expensive process in its energy consumption, thereby limiting its use.[96]

Ski wax enhances the ability of a ski (or other runner) to slide over snow by reducing its coefficient of friction, which depends on both the properties of the snow and the ski to result in an optimum amount of lubrication from melting the snow by friction with the ski—too little and the ski interacts with solid snow crystals, too much and capillary attraction of meltwater retards the ski. Before a ski can slide, it must overcome the maximum value static friction. Kinetic (or dynamic) friction occurs when the ski is moving over the snow.[97]

Warfare

Snow affects warfare conducted in winter, alpine environments or at high latitudes. The main factors are impaired visibility for acquiring targets during falling snow, enhanced visibility of targets against snowy backgrounds for targeting, and mobility for both mechanized and infantry troops. Snowfall can severely inhibit the logistics of supplying troops, as well. Snow can also provide cover and fortification against small-arms fire.[98] Noted winter warfare campaigns where snow and other factors affected the operations include:

  • The French invasion of Russia, where poor traction conditions for ill-shod horses made it difficult for supply wagons to keep up with troops.[99] That campaign was also strongly affected by cold, whereby the retreating army reached Neman River in December 1812 with only 10,000 of the 420,000 that had set out to invade Russia in June of the same year.[100]
  • The Winter War, an attempt by the Soviet Union to take territory in Finland in late 1939 demonstrated superior winter tactics of the Finnish Army, regarding over-snow mobility, camouflage, and use of the terrain.[101]
  • The Battle of the Bulge, a German counteroffensive during World War II, starting December 16, 1944, was marked by heavy snowstorms that hampered allied air support for ground troops, but also impaired German attempts to supply their front lines.[102] On the Eastern Front with the Nazi invasion of Russia in 1941, Operation Barbarossa, both Russian and German soldiers had to endure terrible conditions during the Russian winter. While use of ski infantry was common in the Red Army, Germany formed only one division for movement on skis.[101]
  • The Korean War which lasted from June 25, 1950, until an armistice on July 27, 1953, began when North Korea invaded South Korea. Much of the fighting occurred during winter conditions, involving snow,[103] notably during the Battle of Chosin Reservoir, which was a stark example of cold affecting military operations, especially vehicles and weapons.[104]

Effects on plants and animals

 
Algae, Chlamydomonas nivalis, that thrive in snow form red areas in the suncups on this snow surface

Plants and animals endemic to snowbound areas develop ways to adapt. Among the adaptive mechanisms for plants are freeze-adaptive chemistry,[105] dormancy, seasonal dieback, survival of seeds; and for animals are hibernation, insulation, anti-freeze chemistry, storing food, drawing on reserves from within the body, and clustering for mutual heat.[106]

Snow interacts with vegetation in two principal ways, vegetation can influence the deposition and retention of snow and, conversely, the presence of snow can affect the distribution and growth of vegetation. Tree branches, especially of conifers intercept falling snow and prevent accumulation on the ground. Snow suspended in trees ablates more rapidly than that on the ground, owing to its greater exposure to sun and air movement. Trees and other plants can also promote snow retention on the ground, which would otherwise be blown elsewhere or melted by the sun. Snow affects vegetation in several ways, the presence of stored water can promote growth, yet the annual onset of growth is dependent on the departure of the snowpack for those plants that are buried beneath it. Furthermore, avalanches and erosion from snowmelt can scour terrain of vegetation.[1]

 
Arctic fox, a predator of smaller animals that live beneath the snow

Snow supports a wide variety of animals both on the surface and beneath. Many invertebrates thrive in snow, including spiders, wasps, beetles, snow scorpionflys and springtails. Such arthropods are typically active at temperatures down to −5 °C (23 °F). Invertebrates fall into two groups, regarding surviving subfreezing temperatures: freezing resistant and those that avoid freezing because they are freeze-sensitive. The first group may be cold hardy owing to the ability to produce antifreeze agents in their body fluids that allows survival of long exposure to sub-freezing conditions. Some organisms fast during the winter, which expels freezing-sensitive contents from their digestive tracts. The ability to survive the absence of oxygen in ice is an additional survival mechanism.[106]

Small vertebrates are active beneath the snow. Among vertebrates, alpine salamanders are active in snow at temperatures as low as −8 °C (18 °F); they burrow to the surface in springtime and lay their eggs in melt ponds. Among mammals, those that remain active are typically smaller than 250 grams (8.8 oz). Omnivores are more likely to enter a torpor or be hibernators, whereas herbivores are more likely to maintain food caches beneath the snow. Voles store up to 3 kilograms (6.6 lb) of food and pikas up to 20 kilograms (44 lb). Voles also huddle in communal nests to benefit from one another's warmth. On the surface, wolves, coyotes, foxes, lynx, and weasels rely on these subsurface dwellers for food and often dive into the snowpack to find them.[106]

Outside of Earth

Extraterrestrial "snow" includes water-based precipitation, but also precipitation of other compounds prevalent on other planets and moons in the Solar System. Examples are:

See also

Lexicon

Notable snow events

Recreation

Related concepts

Science and scientists

Snow structures

References

  1. ^ a b c d e f g h i j k l m n Michael P. Bishop; Helgi Björnsson; Wilfried Haeberli; Johannes Oerlemans; John F. Shroder; Martyn Tranter (2011), Singh, Vijay P.; Singh, Pratap; Haritashya, Umesh K. (eds.), Encyclopedia of Snow, Ice and Glaciers, Springer Science & Business Media, p. 1253, ISBN 978-90-481-2641-5
  2. ^ Hobbs, Peter V. (2010). Ice Physics. Oxford: Oxford University Press. p. 856. ISBN 978-0199587711.
  3. ^ Rees, W. Gareth (2005). Remote Sensing of Snow and Ice. CRC Press. p. 312. ISBN 978-1-4200-2374-9.
  4. ^ a b c d e f g Fierz, C.; Armstrong, R.L.; Durand, Y.; Etchevers, P.; Greene, E.; et al. (2009), The International Classification for Seasonal Snow on the Ground (PDF), IHP-VII Technical Documents in Hydrology, vol. 83, Paris: UNESCO, p. 80, (PDF) from the original on September 29, 2016, retrieved November 25, 2016
  5. ^ DeCaria (December 7, 2005). . Department of Earth Sciences, Millersville University. Archived from the original on February 8, 2008. Retrieved June 21, 2009.
  6. ^ Tolme, Paul (December 2004). "Weather 101: How to track and bag the big storms". Ski Magazine. 69 (4): 126. ISSN 0037-6159.
  7. ^ a b Meteorological Service of Canada (September 8, 2010). "Snow". Winter Hazards. Environment Canada. from the original on June 11, 2011. Retrieved October 4, 2010.
  8. ^ "NOAA - National Oceanic and Atmospheric Administration - Monitoring & Understanding Our Changing Planet". from the original on January 2, 2015.
  9. ^ . Archived from the original on May 15, 2008.
  10. ^ Mass, Cliff (2008). The Weather of the Pacific Northwest. University of Washington Press. p. 60. ISBN 978-0-295-98847-4.
  11. ^ Thomas W. Schmidlin. Climatic Summary of Snowfall and Snow Depth in the Ohio Snowbelt at Chardon. April 8, 2008, at the Wayback Machine Retrieved on March 1, 2008.
  12. ^ Physical Geography. CHAPTER 8: Introduction to the Hydrosphere (e). Cloud Formation Processes. December 20, 2008, at the Wayback Machine Retrieved on January 1, 2009.
  13. ^ Stoelinga, Mark T.; Stewart, Ronald E.; Thompson, Gregory; Theriault, Julie M. (2012), "Micrographic processes within winter orographic cloud and precipitation systems", in Chow, Fotini K.; et al. (eds.), Mountain Weather Research and Forecasting: Recent Progress and Current Challenges, Springer Atmospheric Sciences, Springer Science & Business Media, p. 3, Bibcode:2013mwrf.book.....C, ISBN 978-94-007-4098-3
  14. ^ Mark Zachary Jacobson (2005). Fundamentals of Atmospheric Modeling (2nd ed.). Cambridge University Press. ISBN 978-0-521-83970-9.
  15. ^ P., Singh (2001). Snow and Glacier Hydrology. Water Science and Technology Library. Vol. 37. Springer Science & Business Media. p. 75. ISBN 978-0-7923-6767-3.
  16. ^ Gaffin, David M.; Parker, Stephen S.; Kirkwood, Paul D. (2003). "An Unexpectedly Heavy and Complex Snowfall Event across the Southern Appalachian Region". Weather and Forecasting. 18 (2): 224–235. Bibcode:2003WtFor..18..224G. doi:10.1175/1520-0434(2003)018<0224:AUHACS>2.0.CO;2.
  17. ^ John Roach (February 13, 2007). . National Geographic News. Archived from the original on January 9, 2010. Retrieved July 14, 2009.
  18. ^ Jon Nelson (September 26, 2008). "Origin of diversity in falling snow". Atmospheric Chemistry and Physics. 8 (18): 5669–5682. Bibcode:2008ACP.....8.5669N. doi:10.5194/acp-8-5669-2008.
  19. ^ Kenneth Libbrecht (Winter 2004–2005). (PDF). American Educator. Archived from the original (PDF) on November 28, 2008. Retrieved July 14, 2009.
  20. ^ Brent Q Christner; Cindy E Morris; Christine M Foreman; Rongman Cai; David C Sands (2008). "Ubiquity of Biological Ice Nucleators in Snowfall". Science. 319 (5867): 1214. Bibcode:2008Sci...319.1214C. CiteSeerX 10.1.1.395.4918. doi:10.1126/science.1149757. PMID 18309078. S2CID 39398426.
  21. ^ Glossary of Meteorology (2009). . American Meteorological Society. Archived from the original on March 15, 2012. Retrieved June 28, 2009.
  22. ^ a b M. Klesius (2007). "The Mystery of Snowflakes". National Geographic. 211 (1): 20. ISSN 0027-9358.
  23. ^ Jennifer E. Lawson (2001). Hands-on Science: Light, Physical Science (matter) – Chapter 5: The Colors of Light. Portage & Main Press. p. 39. ISBN 978-1-894110-63-1. Retrieved June 28, 2009.
  24. ^ Warren, Israel Perkins (1863). Snowflakes: a chapter from the book of nature. Boston: American Tract Society. p. 164. from the original on September 9, 2016. Retrieved November 25, 2016.
  25. ^ Chris V. Thangham (December 7, 2008). "No two snowflakes are alike". Digital Journal. from the original on December 28, 2009. Retrieved July 14, 2009.
  26. ^ Randolph E. Schmid (June 15, 1988). "Identical snowflakes cause flurry". The Boston Globe. Associated Press. from the original on June 24, 2011. Retrieved November 27, 2008. But there the two crystals were, side by side, on a glass slide exposed in a cloud on a research flight over Wausau, Wis.
  27. ^ Matthew Bailey; John Hallett (2004). "Growth rates and habits of ice crystals between −20 and −70C". Journal of the Atmospheric Sciences. 61 (5): 514–544. Bibcode:2004JAtS...61..514B. doi:10.1175/1520-0469(2004)061<0514:GRAHOI>2.0.CO;2.
  28. ^ Kenneth G. Libbrecht (October 23, 2006). "A Snowflake Primer". California Institute of Technology. from the original on July 10, 2009. Retrieved June 28, 2009.
  29. ^ Kenneth G. Libbrecht (January–February 2007). "The Formation of Snow Crystals". American Scientist. 95 (1): 52–59. doi:10.1511/2007.63.52.
  30. ^ Magono, Choji; Lee, Chung Woo (1966), "Meteorological Classification of Natural Snow Crystals", Journal of the Faculty of Science, 7 (Geophysics ed.), Hokkaido, 3 (4): 321–335, hdl:2115/8672
  31. ^ . On.ec.gc.ca. August 27, 2007. Archived from the original on September 28, 2011. Retrieved August 16, 2011.
  32. ^ National Weather Service Office, Northern Indiana (April 13, 2009). "8 Inch Non-Recording Standard Rain Gage". National Weather Service Central Region Headquarters. from the original on December 25, 2008. Retrieved January 2, 2009.
  33. ^ National Weather Service Office Binghamton, New York (2009). Raingauge Information. October 13, 2008, at the Wayback Machine Retrieved on January 2, 2009.
  34. ^ . On.ec.gc.ca. August 27, 2007. Archived from the original on September 28, 2011. Retrieved August 16, 2011.
  35. ^ Glossary of Meteorology (2009). . American Meteorological Society. Archived from the original on November 27, 2007. Retrieved June 28, 2009.
  36. ^ "National Weather Service Glossary". National Weather Service. 2009. from the original on May 9, 2009. Retrieved July 12, 2009.
  37. ^ . Winter Severe Weather. Environment Canada. September 4, 2002. Archived from the original on February 11, 2009. Retrieved July 12, 2009.
  38. ^ Met Office (November 19, 2008). . Archived from the original on December 29, 2010. Retrieved July 12, 2009.
  39. ^ National Weather Service Forecast Office, Flagstaff, Arizona (May 24, 2007). "Blizzards". National Weather Service Western Region Headquarters. from the original on January 15, 2009. Retrieved July 12, 2009.{{cite web}}: CS1 maint: multiple names: authors list (link)
  40. ^ National Oceanic and Atmospheric Administration (November 1991). . United States Department of Commerce. Archived from the original on June 8, 2009. Retrieved June 28, 2009.
  41. ^ Glossary of Meteorology (2009). . American Meteorological Society. Archived from the original on February 20, 2009. Retrieved June 28, 2009.
  42. ^ "NASA's storm-chasing planes fly through blizzards to improve snowfall forecasts". Popular Science. February 3, 2022. Retrieved March 9, 2023.
  43. ^ NOAA. "What causes bands of heavy snowfall?". weather.gov. US Department of Commerce. Retrieved March 9, 2023.
  44. ^ Coombs, Mitchel (November 28, 2022). "3D Weather: Science of snow bands". KECI. Retrieved March 9, 2023.
  45. ^ National Weather Service Forecast Office Northern Indiana (October 2004). "Snow Measurement Guidelines for National Weather Service Snow Spotters" (PDF). National Weather ServiceCentral Region Headquarters. (PDF) from the original on February 15, 2010.
  46. ^ Chang, A.T.C.; Foster, J.L.; Hall, D.K. (1987). "NIMBUS-7 SMMR derived global snow parameters". Annals of Glaciology. 9: 39–44. doi:10.1017/S0260305500200736.
  47. ^ Lemke, P.; et al. (2007), "Observations: Changes in snow, ice and frozen ground", in Solomon, S.; et al. (eds.), Climate Change 2007: The Physical Science Basis, New York: Cambridge Univ. Press, pp. 337–383
  48. ^ a b Déry, S. J; Brown, R. D. (2007), "Recent Northern Hemisphere snow cover extent trends and implications for the snow-albedo feedback", Geophysical Research Letters, 34 (L22504): L22504, Bibcode:2007GeoRL..3422504D, doi:10.1029/2007GL031474
  49. ^ "NOAA: Mt. Baker snowfall record sticks". USA Today. August 3, 1999. from the original on April 24, 2009. Retrieved June 30, 2009.
  50. ^ Mount Rainier National Park (April 14, 2006). . National Park Service. Archived from the original on February 21, 2007. Retrieved June 30, 2009.
  51. ^ "JMA" (in Japanese). JMA. from the original on June 18, 2013. Retrieved November 12, 2012.
  52. ^ William J. Broad (March 20, 2007). "Giant Snowflakes as Big as Frisbees? Could Be". New York Times. from the original on November 4, 2011. Retrieved July 12, 2009.
  53. ^ "Top 10 snowiest major cities around the world". Accuweather. Retrieved March 4, 2023.
  54. ^ David McClung & Peter Schaerer (2006). The Avalanche Handbook. The Mountaineers Books. pp. 49–51. ISBN 978-0-89886-809-8. Retrieved July 7, 2009.
  55. ^ California Data Exchange Center (2007). "Depth and Density". Department of Water Resources California. from the original on July 13, 2009. Retrieved July 8, 2009.
  56. ^ Glossary of Meteorology (2009). . American Meteorological Society. Archived from the original on August 24, 2007. Retrieved June 30, 2009.
  57. ^ Pidwirny, Michael; Jones, Scott (2014). "CHAPTER 10: Introduction to the Lithosphere—Glacial Processes". PhysicalGeography.net. University of British Columbia, Okanagan. Retrieved December 20, 2018.
  58. ^ Joy Haden (February 8, 2005). "CoCoRaHS in the Cold – Measuring in Snowy Weather" (PDF). Colorado Climate Center. (PDF) from the original on July 18, 2011. Retrieved July 12, 2009.
  59. ^ Caroline Gammel (February 2, 2009). . Telegraph Media Group. Archived from the original on February 5, 2009. Retrieved July 12, 2009.
  60. ^ a b c McClung, David and Shaerer, Peter: The Avalanche Handbook, The Mountaineers: 2006. ISBN 978-0-89886-809-8
  61. ^ Howard Perlman (May 13, 2009). . United States Geological Survey. Archived from the original on August 13, 2009. Retrieved July 7, 2009.
  62. ^ Randy Bowersox (June 20, 2002). "Hydrology of a Glacial Dominated System, Copper River, Alaska" (PDF). University of California-Davis. p. 2. (PDF) from the original on June 12, 2010. Retrieved July 8, 2009.
  63. ^ "All About Snow—Snow Science". National Snow and Ice Data Center. University of Colorado, Boulder. 2016. from the original on December 1, 2016. Retrieved November 30, 2016.
  64. ^ a b c Fox-Kemper, B.; Hewitt, H.T.; Xiao, C.; Aðalgeirsdóttir, G.; Drijfhout, S.S.; Edwards, T.L.; Golledge, N.R.; Hemer, M.; Kopp, R.E.; Krinner, G.; Mix, A. (2021). Masson-Delmotte, V.; Zhai, P.; Pirani, A.; Connors, S.L.; Péan, C.; Berger, S.; Caud, N.; Chen, Y.; Goldfarb, L. (eds.). "Ocean, Cryosphere and Sea Level Change" (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. Cambridge University Press, Cambridge, UK and New York, NY, US. 2021: 1283–1285. doi:10.1017/9781009157896.011. ISBN 9781009157896.
  65. ^ Hall, Dorothy K. (1985). Remote Sensing of Ice and Snow. Dordrecht: Springer Netherlands. ISBN 978-94-009-4842-6.
  66. ^ Hall, Dorothy K.; Box, J; Casey, K; Hook, S; Shuman, C; Steffen, K (October 15, 2008). "Comparison of satellite-derived and in-situ observations of ice and snow surface temperatures over Greenland". Remote Sensing of Environment. 112 (10): 3739–3749. Bibcode:2008RSEnv.112.3739H. doi:10.1016/j.rse.2008.05.007. hdl:2060/20080030345. S2CID 91180832.
  67. ^ a b Dietz, A.; Kuenzer, C.; Gessner, U.; Dech, S. (2012). "Remote Sensing of Snow – a Review of available methods". International Journal of Remote Sensing. 33 (13): 4094–4134. Bibcode:2012IJRS...33.4094D. doi:10.1080/01431161.2011.640964. S2CID 6756253.
  68. ^ a b David A. Kuemmel (1994). Managing roadway snow and ice control operations. Transportation Research Board. p. 10. ISBN 978-0-309-05666-3. Retrieved July 8, 2009.
  69. ^ Ketcham, Stephen A.; Minsk, L. David; et al. (June 1995). "Manual of Practice for an Effective Anti-icing Program: A Guide For Highway Winter Maintenance Personnel". fhwa.dot.gov. FHWA. from the original on December 1, 2016. Retrieved December 1, 2016. Highway anti-icing is the snow and ice control practice of preventing the formation or development of bonded snow and ice by timely applications of a chemical freezing-point depressant.
  70. ^ Jairell, R; Schmidt, R (1999), "133", Snow Management and Windbreaks (PDF), Range Beef Cow Symposium, University of Nebraska–Lincoln, p. 12, (PDF) from the original on May 7, 2016
  71. ^ ScienceDaily (February 6, 2009). "'SnowMan' Software Helps Keep Snow Drifts Off The Road". from the original on April 16, 2009. Retrieved July 12, 2009. {{cite journal}}: Cite journal requires |journal= (help)
  72. ^ John C., Becker; Esch, David C. (1996), "Road and airfield maintenance", in Vinson, Ted S.; Rooney, James W.; Haas, Wilbur H. (eds.), Roads and Airfields in Cold Regions: A State of the Practice Report, CERF Reports, ASCE Publications, p. 252, ISBN 978-0-7844-7412-9
  73. ^ Transport Canada, Ottawa, ON (2016). "TP 14052. Guidelines for Aircraft Ground-Icing Operations. Chapter 8. Fluids." May 27, 2014, at the Wayback Machine Retrieved May 14, 2016.
  74. ^ Wright, Tim (March 2004). "Electro-mechanical deicing". Air & Space Magazine. Smithsonian. Retrieved February 20, 2017.
  75. ^ Ells, Steve (2004). "Aircraft Deicing and Anti-icing Equipment" (PDF). Safety Advisor – Weather No. 2. Aircraft Owners and Pilots Association. (PDF) from the original on December 3, 2016. Retrieved December 1, 2016. Anti-icing equipment is turned on before entering icing conditions and is designed to prevent ice from forming. Deicing equipment is designed to remove ice after it begins to accumulate on the airframe.
  76. ^ Bianculli, Anthony J. (2001). The American Railroad in the Nineteenth Century – Cars. Trains and Technology. Vol. 2. Dover: University of Delaware Press. p. 170. ISBN 978-0-87413-730-9. Retrieved December 2, 2016.
  77. ^ FAO, Staff. "Avalanche and torrent control in the Spanish Pyrenees". National Forests Organization of Spain. Patrimonio Forestal del Estado. from the original on September 24, 2015. Retrieved December 1, 2016.
  78. ^ Abele, G., 1990. Snow roads and runways, U.S. Army Cold Regions Research and Engineering Laboratory, Monograph 90-3, Washington, D.C.
  79. ^ "A New Runway for McMurdo Station is Named". National Science Foundation. April 7, 2016. from the original on April 23, 2016.
  80. ^ Krishna Murti, C. R. (1991). The Ganga, a scientific study. Gaṅgā Pariyojanā Nideśālaya; India Environment Research Committee. Northern Book Centre. ISBN 978-8172110215. OCLC 853267663.
  81. ^ Albinia, Alice. (2008) Empires of the Indus: The Story of a River. First American Edition (20101) W. W. Norton & Company, New York. ISBN 978-0-393-33860-7.
  82. ^ "Global warming benefits to Tibet: Chinese official. Reported 18 August 2009". August 17, 2009. from the original on January 23, 2010. Retrieved December 4, 2012.
  83. ^ Kammerer, J.C. (May 1990). "Largest Rivers in the United States". U.S. Geological Survey. from the original on January 29, 2017. Retrieved July 2, 2010.
  84. ^ . U.S. Bureau of Reclamation. October 21, 2011. Archived from the original on October 30, 2011. Retrieved March 17, 2012.
  85. ^ a b Joint European Commission (2003), "General actions - Snow loads", Eurocode 1, EN 1991-1-3:2003 (Actions on structures - Part 1–3)
  86. ^ a b Committee on Minimum Design Loads for Buildings (2013), Minimum Design Loads for Buildings and Other Structures (PDF), American Society of Civil Engineers, p. 636, ISBN 9780784413227, (PDF) from the original on October 11, 2016, retrieved December 2, 2016
  87. ^ Paul Fisette, "Preventing Ice Dams", Roofing, flashing & waterproofing. Newtown, CT: Taunton Press, 2005. 54.
  88. ^ , Minnesota Department of Commerce, archived from the original on August 24, 2007
  89. ^ MacKinley, I.; Flood, R.; Heidrich, A. (2000), "Roof design in regions of snow and cold", in Hjorth-Hansen, E.; Holand, I.; Loset, S.; Norem, H. (eds.), Snow Engineering 2000: Recent Advances and Developments, Rotterdam: CRC Press, p. 470, ISBN 9789058091482
  90. ^ Technical staff (2015). . Duke Energy. Archived from the original on December 20, 2016. Retrieved December 6, 2016. Both snow and ice cause power outages primarily by weighing down tree limbs and power lines, causing them to break
  91. ^ Farzaneh, Masoud (2008), Atmospheric Icing of Power Networks, Springer Science & Business Media, p. 141, ISBN 9781402085314
  92. ^ Bonelli, P.; Lacavalla, M.; et al. (2011), "Wet snow hazard for power lines: a forecast and alert system applied in Italy", Natural Hazards and Earth System Sciences, 11 (9): 2419–2431, Bibcode:2011NHESS..11.2419B, doi:10.5194/nhess-11-2419-2011, S2CID 15569449
  93. ^ Hudson, Simon (2000). Snow Business: A Study of the International Ski Industry. Tourism (Cassell). Cengage Learning EMEA. p. 180. ISBN 9780304704712.
  94. ^ US patent 2676471, W. M. Pierce Jr., "Method for Making and Distributing Snow", issued December 14, 1950 
  95. ^ On This Day: March 25 April 12, 2011, at the Wayback Machine, BBC News, accessed December 20, 2006. "The first artificial snow was made two years later, in 1952, at Grossinger's resort in New York, USA. "
  96. ^ Jörgen Rogstam & Mattias Dahlberg (April 1, 2011), Energy usage for snowmaking (PDF), (PDF) from the original on February 1, 2014
  97. ^ Bhavikatti, S. S.; K. G. Rajashekarappa (1994). Engineering Mechanics. New Age International. p. 112. ISBN 978-81-224-0617-7. Retrieved October 21, 2007.
  98. ^ Chew, Allen F. (December 1981). (PDF). Leavenworth Papers. Fort Leavenworth, Kansas (5). ISSN 0195-3451. Archived from the original (PDF) on October 13, 2011. Retrieved December 10, 2016.
  99. ^ Professor Saul David (February 9, 2012). "Napoleon's failure: For the want of a winter horseshoe". BBC News magazine. from the original on February 9, 2012. Retrieved February 9, 2012.
  100. ^ The Wordsworth Pocket Encyclopedia, p. 17, Hertfordshire 1993.
  101. ^ a b Clemmesen, Michael H.; Faulkner, Marcus, eds. (2013). Northern European Overture to War, 1939–1941: From Memel to Barbarossa. Brill. p. 76. ISBN 978-90-04-24908-0.
  102. ^ Parker, Danny S. (1991), Battle of the Bulge: Hitler's Ardennes Offensive, 1944–1945, Combined Books, ISBN 978-0-938289-04-3
  103. ^ Halberstam, David (2007). The Coldest Winter: America and the Korean War. New York: Hyperion. ISBN 978-1-4013-0052-4.
  104. ^ Tilstra, Russell C. (2014). The Battle Rifle: Development and Use Since World War II. McFarland. p. 28. ISBN 978-1-4766-1564-6.
  105. ^ Gusta, Lawrence V.; Tanino, Karen K.; Wisniewski, Michael E. (2009). Plant Cold Hardiness: From the Laboratory to the Field. CABI. pp. 19–27. ISBN 978-1-84593-513-9.
  106. ^ a b c Jones, H. G. (2001). Snow Ecology: An Interdisciplinary Examination of Snow-Covered Ecosystems. Cambridge University Press. p. 248. ISBN 978-0-521-58483-8.
  107. ^ Anne Minard (July 2, 2009). . National Geographic News. Archived from the original on September 17, 2009.
  108. ^ Agustin Chicarro, Agustin (September 22, 2008). . Spaceref.com. European Space Agency. Archived from the original on March 7, 2023. Retrieved December 8, 2016. ...the temperature of the low-pressure system is often below the condensation point for carbon dioxide, so the gas condenses and falls from the sky as snow and builds up on the ground as frost.
  109. ^ Carolyn Jones Otten (2004). "'Heavy metal' snow on Venus is lead sulfide". Washington University in St Louis. from the original on April 15, 2008. Retrieved August 21, 2007.
  110. ^ Carolina Martinez (December 12, 2006). "Massive Mountain Range Imaged on Saturn's Moon Titan". NASA. from the original on March 4, 2016.

External links

  • United Nations Environment Programme: Global Outlook for Ice and Snow June 8, 2007, at the Wayback Machine
  • Institute of Low Temperature Science, Hokkaido University
  • Swiss Federal Institute for Forest, Snow and Landscape Research
  • National Snow and Ice Data Center of the United States
  • American Society of Civil Engineers ground snow loads interactive map for the continental US

snow, other, uses, disambiguation, fall, redirects, here, other, uses, fall, disambiguation, comprises, individual, crystals, that, grow, while, suspended, atmosphere, usually, within, clouds, then, fall, accumulating, ground, where, they, undergo, further, ch. For other uses see Snow disambiguation Snowfall redirects here For other uses see Snowfall disambiguation Snow comprises individual ice crystals that grow while suspended in the atmosphere usually within clouds and then fall accumulating on the ground where they undergo further changes 2 It consists of frozen crystalline water throughout its life cycle starting when under suitable conditions the ice crystals form in the atmosphere increase to millimeter size precipitate and accumulate on surfaces then metamorphose in place and ultimately melt slide or sublimate away SnowNorwegian train plowing through drifted snowPhysical propertiesDensity r 0 1 0 8 g cm3Mechanical propertiesTensile strength st 1 5 3 5 kPa 1 Compressive strength sc 3 7 MPa 1 Thermal propertiesMelting temperature Tm 0 CThermal conductivity k For densities 0 1 to 0 5 g cm30 05 0 7 W K m Electrical propertiesDielectric constant er For dry snow density 0 1 to 0 9 g cm31 3 2The physical properties of snow vary considerably from event to event sample to sample and over time Snowstorms organize and develop by feeding on sources of atmospheric moisture and cold air Snowflakes nucleate around particles in the atmosphere by attracting supercooled water droplets which freeze in hexagonal shaped crystals Snowflakes take on a variety of shapes basic among these are platelets needles columns and rime As snow accumulates into a snowpack it may blow into drifts Over time accumulated snow metamorphoses by sintering sublimation and freeze thaw Where the climate is cold enough for year to year accumulation a glacier may form Otherwise snow typically melts seasonally causing runoff into streams and rivers and recharging groundwater Major snow prone areas include the polar regions the northernmost half of the Northern Hemisphere and mountainous regions worldwide with sufficient moisture and cold temperatures In the Southern Hemisphere snow is confined primarily to mountainous areas apart from Antarctica 3 Snow affects such human activities as transportation creating the need for keeping roadways wings and windows clear agriculture providing water to crops and safeguarding livestock sports such as skiing snowboarding and snowmachine travel and warfare Snow affects ecosystems as well by providing an insulating layer during winter under which plants and animals are able to survive the cold 1 Contents 1 Precipitation 1 1 Cloud formation 1 1 1 Low pressure areas 1 1 2 Fronts 1 1 3 Lake and ocean effects 1 1 4 Mountain effects 1 2 Cloud physics 1 3 Classification of snowflakes 2 Accumulation 2 1 Event 2 2 Distribution 2 3 Records 3 Metamorphism 3 1 Seasonal 3 2 Firn 4 Movement 4 1 Drifting 4 2 Avalanche 4 3 Melting 4 4 Glaciers 5 Science 5 1 Measurement and classification 5 2 Satellite data 5 3 Models 6 Effects on civilization 6 1 Transportation 6 1 1 Highway 6 1 2 Aviation 6 1 3 Rail 6 1 4 Construction 6 2 Agriculture 6 3 Structures 6 3 1 Roofs 6 3 2 Utility lines 6 4 Sports and recreation 6 5 Warfare 7 Effects on plants and animals 8 Outside of Earth 9 See also 10 References 11 External linksPrecipitation nbsp Worldwide occurrence of snowfall Snow at reference above sea level meters Below 500 annually Below 500 annually but not in all of its territory 500 above annually below occasionally Above 500 annually Above 2 000 annually Any elevation none Snow develops in clouds that themselves are part of a larger weather system The physics of snow crystal development in clouds results from a complex set of variables that include moisture content and temperatures The resulting shapes of the falling and fallen crystals can be classified into a number of basic shapes and combinations thereof Occasionally some plate like dendritic and stellar shaped snowflakes can form under clear sky with a very cold temperature inversion present 4 Cloud formation Snow clouds usually occur in the context of larger weather systems the most important of which is the low pressure area which typically incorporate warm and cold fronts as part of their circulation Two additional and locally productive sources of snow are lake effect also sea effect storms and elevation effects especially in mountains Low pressure areas Main article Extratropical cyclone nbsp Extratropical cyclonic snowstorm February 24 2007 Click for animation Mid latitude cyclones are low pressure areas which are capable of producing anything from cloudiness and mild snow storms to heavy blizzards 5 During a hemisphere s fall winter and spring the atmosphere over continents can be cold enough through the depth of the troposphere to cause snowfall In the Northern Hemisphere the northern side of the low pressure area produces the most snow 6 For the southern mid latitudes the side of a cyclone that produces the most snow is the southern side Fronts Main article Weather front nbsp Frontal snowsquall moving toward Boston MassachusettsA cold front the leading edge of a cooler mass of air can produce frontal snowsqualls an intense frontal convective line similar to a rainband when temperature is near freezing at the surface The strong convection that develops has enough moisture to produce whiteout conditions at places which the line passes over as the wind causes intense blowing snow 7 This type of snowsquall generally lasts less than 30 minutes at any point along its path but the motion of the line can cover large distances Frontal squalls may form a short distance ahead of the surface cold front or behind the cold front where there may be a deepening low pressure system or a series of trough lines which act similar to a traditional cold frontal passage In situations where squalls develop post frontally it is not unusual to have two or three linear squall bands pass in rapid succession separated only by 25 miles 40 kilometers with each passing the same point roughly 30 minutes apart In cases where there is a large amount of vertical growth and mixing the squall may develop embedded cumulonimbus clouds resulting in lightning and thunder which is dubbed thundersnow A warm front can produce snow for a period as warm moist air overrides below freezing air and creates precipitation at the boundary Often snow transitions to rain in the warm sector behind the front 7 Lake and ocean effects Main article Lake effect snow nbsp Cold northwesterly wind over Lake Superior and Lake Michigan creating lake effect snowfallLake effect snow is produced during cooler atmospheric conditions when a cold air mass moves across long expanses of warmer lake water warming the lower layer of air which picks up water vapor from the lake rises up through the colder air above freezes and is deposited on the leeward downwind shores 8 9 The same effect occurring over bodies of salt water is termed ocean effect or bay effect snow The effect is enhanced when the moving air mass is uplifted by the orographic influence of higher elevations on the downwind shores This uplifting can produce narrow but very intense bands of precipitation which may deposit at a rate of many inches of snow each hour often resulting in a large amount of total snowfall 10 The areas affected by lake effect snow are called snowbelts These include areas east of the Great Lakes the west coasts of northern Japan the Kamchatka Peninsula in Russia and areas near the Great Salt Lake Black Sea Caspian Sea Baltic Sea and parts of the northern Atlantic Ocean 11 Mountain effects Main article Precipitation types Orographic Orographic or relief snowfall is created when moist air is forced up the windward side of mountain ranges by a large scale wind flow The lifting of moist air up the side of a mountain range results in adiabatic cooling and ultimately condensation and precipitation Moisture is gradually removed from the air by this process leaving drier and warmer air on the descending or leeward side 12 The resulting enhanced snowfall 13 along with the decrease in temperature with elevation 14 combine to increase snow depth and seasonal persistence of snowpack in snow prone areas 1 15 Mountain waves have also been found to help enhance precipitation amounts downwind of mountain ranges by enhancing the lift needed for condensation and precipitation 16 Cloud physics Main article Snowflake nbsp Freshly fallen snowflakesA snowflake consists of roughly 1019 water molecules which are added to its core at different rates and in different patterns depending on the changing temperature and humidity within the atmosphere that the snowflake falls through on its way to the ground As a result snowflakes differ from each other though they follow similar patterns 17 18 19 Snow crystals form when tiny supercooled cloud droplets about 10 mm in diameter freeze These droplets are able to remain liquid at temperatures lower than 18 C 0 F because to freeze a few molecules in the droplet need to get together by chance to form an arrangement similar to that in an ice lattice The droplet freezes around this nucleus In warmer clouds an aerosol particle or ice nucleus must be present in or in contact with the droplet to act as a nucleus Ice nuclei are very rare compared to cloud condensation nuclei on which liquid droplets form Clays desert dust and biological particles can be nuclei 20 Artificial nuclei include particles of silver iodide and dry ice and these are used to stimulate precipitation in cloud seeding 21 Once a droplet has frozen it grows in the supersaturated environment one where air is saturated with respect to ice when the temperature is below the freezing point The droplet then grows by diffusion of water molecules in the air vapor onto the ice crystal surface where they are collected Because water droplets are so much more numerous than the ice crystals the crystals are able to grow to hundreds of micrometers or millimeters in size at the expense of the water droplets by the Wegener Bergeron Findeisen process These large crystals are an efficient source of precipitation since they fall through the atmosphere due to their mass and may collide and stick together in clusters or aggregates These aggregates are snowflakes and are usually the type of ice particle that falls to the ground 22 Although the ice is clear scattering of light by the crystal facets and hollows imperfections mean that the crystals often appear white in color due to diffuse reflection of the whole spectrum of light by the small ice particles 23 Classification of snowflakes Main article Snowflake Classification nbsp An early classification of snowflakes by Israel Perkins Warren 24 Micrography of thousands of snowflakes from 1885 onward starting with Wilson Alwyn Bentley revealed the wide diversity of snowflakes within a classifiable set of patterns 25 Closely matching snow crystals have been observed 26 Ukichiro Nakaya developed a crystal morphology diagram relating crystal shapes to the temperature and moisture conditions under which they formed which is summarized in the following table 1 Crystal structure morphology as a function of temperature and water saturation Temperature range Saturation range Types of snow crystal C F g m3 oz cu yd below saturation above saturation0 to 3 5 32 to 26 0 0 to 0 5 0 000 to 0 013 Solid plates Thin plates Dendrites 3 5 to 10 26 to 14 0 5 to 1 2 0 013 to 0 032 Solid prisms Hollow prisms Hollow prisms Needles 10 to 22 14 to 8 1 2 to 1 4 0 032 to 0 038 Thin plates Solid plates Sectored plates Dendrites 22 to 40 8 to 40 1 2 to 0 1 0 0324 to 0 0027 Thin plates Solid plates Columns PrismsNakaya discovered that the shape is also a function of whether the prevalent moisture is above or below saturation Forms below the saturation line tend more toward solid and compact while crystals formed in supersaturated air tend more toward lacy delicate and ornate Many more complex growth patterns also form which include side planes bullet rosettes and planar types depending on the conditions and ice nuclei 27 28 29 If a crystal has started forming in a column growth regime at around 5 C 23 F and then falls into the warmer plate like regime plate or dendritic crystals sprout at the end of the column producing so called capped columns 22 Magono and Lee devised a classification of freshly formed snow crystals that includes 80 distinct shapes They documented each with micrographs 30 Accumulation nbsp An animation of seasonal snow changes based on satellite imagerySnow accumulates from a series of snow events punctuated by freezing and thawing over areas that are cold enough to retain snow seasonally or perennially Major snow prone areas include the Arctic and Antarctic the Northern Hemisphere and alpine regions The liquid equivalent of snowfall may be evaluated using a snow gauge 31 or with a standard rain gauge adjusted for winter by removal of a funnel and inner cylinder 32 Both types of gauges melt the accumulated snow and report the amount of water collected 33 At some automatic weather stations an ultrasonic snow depth sensor may be used to augment the precipitation gauge 34 Event nbsp New York City during a 2016 blizzard which produced local wind gusts up to 42 miles per hour 19 m s and dropped 27 5 inches 70 cm of snow breaking the city s one day snowfall recordSnow flurry snow shower snow storm and blizzard describe snow events of progressively greater duration and intensity 35 A blizzard is a weather condition involving snow and has varying definitions in different parts of the world In the United States a blizzard occurs when two conditions are met for a period of three hours or more a sustained wind or frequent gusts to 35 miles per hour 16 m s and sufficient snow in the air to reduce visibility to less than 0 4 kilometers 0 25 mi 36 In Canada and the United Kingdom the criteria are similar 37 38 While heavy snowfall often occurs during blizzard conditions falling snow is not a requirement as blowing snow can create a ground blizzard 39 Snowstorm intensity may be categorized by visibility and depth of accumulation 40 Snowfall s intensity is determined by visibility as follows 41 Light visibility greater than 1 kilometer 0 6 mi Moderate visibility restrictions between 0 5 and 1 kilometer 0 3 and 0 6 mi Heavy visibility is less than 0 5 kilometers 0 3 mi Snowsqualls may deposit snow in bands that extend from bodies of water as lake event weather or result from the passage of an upper level front 42 43 44 The International Classification for Seasonal Snow on the Ground defines height of new snow as the depth of freshly fallen snow in centimeters as measured with a ruler that accumulated on a snowboard during an observation period of 24 hours or other observation interval After the measurement the snow is cleared from the board and the board is placed flush with the snow surface to provide an accurate measurement at the end of the next interval 4 Melting compacting blowing and drifting contribute to the difficulty of measuring snowfall 45 Distribution nbsp Snow covered trees in Kuusamo FinlandGlaciers with their permanent snowpacks cover about 10 of the earth s surface while seasonal snow covers about nine percent 1 mostly in the Northern Hemisphere where seasonal snow covers about 40 million square kilometres 15 10 6 sq mi according to a 1987 estimate 46 A 2007 estimate of snow cover over the Northern Hemisphere suggested that on average snow cover ranges from a minimum extent of 2 million square kilometres 0 77 10 6 sq mi each August to a maximum extent of 45 million square kilometres 17 10 6 sq mi each January or nearly half of the land surface in that hemisphere 47 48 A study of Northern Hemisphere snow cover extent for the period 1972 2006 suggests a reduction of 0 5 million square kilometres 0 19 10 6 sq mi over the 35 year period 48 Records The following are world records regarding snowfall and snowflakes Highest seasonal total snowfall The world record for the highest seasonal total snowfall was measured in the United States at Mt Baker Ski Area outside of the city of Bellingham Washington during the 1998 1999 season Mount Baker received 2 896 cm 95 01 ft of snow 49 thus surpassing the previous record holder Mount Rainier Washington which during the 1971 1972 season received 2 850 cm 93 5 ft of snow 50 Highest seasonal average annual snowfall The world record for the highest average annual snowfall is 1 764 cm 57 87 ft 51 measured in Sukayu Onsen Japan for the period of 1981 2010 Largest snowflake According to Guinness World Records the world s largest snowflake fell in January 1887 outside present day Miles City Montana It measured 38 cm 15 in in diameter 52 The cities more than 100 000 inhabitants with the highest annual snowfall are Aomori 792 cm Sapporo 485 cm and Toyama 363 cm in Japan followed by St John s 332 cm and Quebec City 315 cm in Canada and Syracuse NY 325cm 53 Metamorphism nbsp Fresh snow beginning to metamorphose The surface shows wind packing and sastrugi In the foreground are hoar frost crystals formed by refrozen water vapor emerging to the cold surface nbsp Sastrugi formed during a blizzard just a few hours earlier According to the International Association of Cryospheric Sciences snow metamorphism is the transformation that the snow undergoes in the period from deposition to either melting or passage to glacial ice 4 Starting as a powdery deposition snow becomes more granular when it begins to compact under its own weight be blown by the wind sinter particles together and commence the cycle of melting and refreezing Water vapor plays a role as it deposits ice crystals known as hoar frost during cold still conditions 54 During this transition snow is a highly porous sintered material made up of a continuous ice structure and a continuously connected pore space forming together the snow microstructure Almost always near its melting temperature a snowpack is continually transforming these properties wherein all three phases of water may coexist including liquid water partially filling the pore space After deposition snow progresses on one of two paths that determine its fate either by ablation mostly by melting from a snow fall or seasonal snowpack or by transitioning from firn multi year snow into glacier ice 4 Seasonal Main articles Snowpack and Neve Over the course of time a snowpack may settle under its own weight until its density is approximately 30 of water Increases in density above this initial compression occur primarily by melting and refreezing caused by temperatures above freezing or by direct solar radiation In colder climates snow lies on the ground all winter By late spring snow densities typically reach a maximum of 50 of water 55 Snow that persists into summer evolves into neve granular snow which has been partially melted refrozen and compacted Neve has a minimum density of 500 kilograms per cubic metre 31 lb cu ft which is roughly half of the density of liquid water 56 Firn Main article Firn nbsp Firn metamorphosed multi year snowFirn is snow that has persisted for multiple years and has been recrystallized into a substance denser than neve yet less dense and hard than glacial ice Firn resembles caked sugar and is very resistant to shovelling Its density generally ranges from 550 kilograms per cubic metre 34 lb cu ft to 830 kilograms per cubic metre 52 lb cu ft and it can often be found underneath the snow that accumulates at the head of a glacier The minimum altitude that firn accumulates on a glacier is called the firn limit firn line or snowline 1 57 MovementThere are four main mechanisms for movement of deposited snow drifting of unsintered snow avalanches of accumulated snow on steep slopes snowmelt during thaw conditions and the movement of glaciers after snow has persisted for multiple years and metamorphosed into glacier ice Drifting nbsp Snow drifts forming around downwind obstructionsWhen powdery snow drifts with the wind from the location where it originally fell 58 forming deposits with a depth of several meters in isolated locations 59 After attaching to hillsides blown snow can evolve into a snow slab which is an avalanche hazard on steep slopes 60 Avalanche Main article Avalanche nbsp A powder snow avalancheAn avalanche also called a snowslide or snowslip is a rapid flow of snow down a sloping surface Avalanches are typically triggered in a starting zone from a mechanical failure in the snowpack slab avalanche when the forces on the snow exceed its strength but sometimes only with gradually widening loose snow avalanche After initiation avalanches usually accelerate rapidly and grow in mass and volume as they entrain more snow If the avalanche moves fast enough some of the snow may mix with the air forming a powder snow avalanche which is a type of gravity current They occur in three major mechanisms 60 Slab avalanches occur in snow that has been deposited or redeposited by wind They have the characteristic appearance of a block slab of snow cut out from its surroundings by fractures These account for most back country fatalities Powder snow avalanches result from a deposition of fresh dry powder and generate a powder cloud which overlies a dense avalanche They can exceed speeds of 300 kilometers per hour 190 mph and masses of 10 000 000 tonnes 9 800 000 long tons 11 000 000 short tons their flows can travel long distances along flat valley bottoms and even uphill for short distances Wet snow avalanches are a low velocity suspension of snow and water with the flow confined to the surface of the pathway 60 The low speed of travel is due to the friction between the sliding surface of the pathway and the water saturated flow Despite the low speed of travel 10 to 40 kilometers per hour 6 to 25 mph wet snow avalanches are capable of generating powerful destructive forces due to the large mass and density Melting nbsp Snowmelt induced flooding of the Red River of the North in 1997Many rivers originating in mountainous or high latitude regions receive a significant portion of their flow from snowmelt This often makes the river s flow highly seasonal resulting in periodic flooding 61 during the spring months and at least in dry mountainous regions like the mountain West of the US or most of Iran and Afghanistan very low flow for the rest of the year In contrast if much of the melt is from glaciated or nearly glaciated areas the melt continues through the warm season with peak flows occurring in mid to late summer 62 Glaciers Main article Glacier Glaciers form where the accumulation of snow and ice exceeds ablation The area in which an alpine glacier forms is called a cirque corrie or cwm a typically armchair shaped geological feature which collects snow and where the snowpack compacts under the weight of successive layers of accumulating snow forming neve Further crushing of the individual snow crystals and reduction of entrapped air in the snow turns it into glacial ice This glacial ice will fill the cirque until it overflows through a geological weakness or an escape route such as the gap between two mountains When the mass of snow and ice is sufficiently thick it begins to move due to a combination of surface slope gravity and pressure On steeper slopes this can occur with as little as 15 m 50 ft of snow ice 1 ScienceMain article Snow science Scientists study snow at a wide variety of scales that include the physics of chemical bonds and clouds the distribution accumulation metamorphosis and ablation of snowpacks and the contribution of snowmelt to river hydraulics and ground hydrology In doing so they employ a variety of instruments to observe and measure the phenomena studied Their findings contribute to knowledge applied by engineers who adapt vehicles and structures to snow by agronomists who address the availability of snowmelt to agriculture and those who design equipment for sporting activities on snow Scientists develop and others employ snow classification systems that describe its physical properties at scales ranging from the individual crystal to the aggregated snowpack A sub specialty is avalanches which are of concern to engineers and outdoors sports people alike Snow science addresses how snow forms its distribution and processes affecting how snowpacks change over time Scientists improve storm forecasting study global snow cover and its effect on climate glaciers and water supplies around the world The study includes physical properties of the material as it changes bulk properties of in place snow packs and the aggregate properties of regions with snow cover In doing so they employ on the ground physical measurement techniques to establish ground truth and remote sensing techniques to develop understanding of snow related processes over large areas 63 Measurement and classification See also Classifications of snow In the field snow scientists often excavate a snow pit within which to make basic measurements and observations Observations can describe features caused by wind water percolation or snow unloading from trees Water percolation into a snowpack can create flow fingers and ponding or flow along capillary barriers which can refreeze into horizontal and vertical solid ice formations within the snowpack Among the measurements of the properties of snowpacks that the International Classification for Seasonal Snow on the Ground includes are snow height snow water equivalent snow strength and extent of snow cover Each has a designation with code and detailed description The classification extends the prior classifications of Nakaya and his successors to related types of precipitation and are quoted in the following table 4 nbsp Snow pit on the surface of a glacier profiling snow properties where the snow becomes increasingly dense with depth as it turns to iceFrozen precipitation particles related to snow crystals Subclass Shape Physical processGraupel Heavily rimed particles spherical conical hexagonal or irregular in shape Heavy riming of particles by accretion of supercooled water dropletsHail Laminar internal structure translucent or milky glazed surface Growth by accretion of supercooled water size gt 5 mmIce pellets Transparent mostly small spheroids Freezing of raindrops or refreezing of largely melted snow crystals or snowflakes sleet Graupel or snow pellets encased in thin ice layer small hail Size both 5 mmRime Irregular deposits or longer cones and needles pointing into the wind Accretion of small supercooled fog droplets frozen in place Thin breakable crust forms on snow surface if process continues long enough All are formed in cloud except for rime which forms on objects exposed to supercooled moisture It also has a more extensive classification of deposited snow than those that pertain to airborne snow The categories include both natural and man made snow types descriptions of snow crystals as they metamorphose and melt the development of hoar frost in the snow pack and the formation of ice therein Each such layer of a snowpack differs from the adjacent layers by one or more characteristics that describe its microstructure or density which together define the snow type and other physical properties Thus at any one time the type and state of the snow forming a layer have to be defined because its physical and mechanical properties depend on them Physical properties include microstructure grain size and shape snow density liquid water content and temperature 4 When it comes to measuring snow cover on the ground typically three variables are measured the snow cover extent SCE the land area covered by snow snow cover duration SD how long a particular area is covered by snow and the snow accumulation often expressed as snow water equivalent SWE which expresses how much water the snow would be if it were all melted this last one is a measurement of the volume of the snowpack 64 To measure these variables a variety of techniques are used surface observations remote sensing land surface models and reanalysis products These techniques are often combined to form the most complete datasets 64 Satellite data Remote sensing of snowpacks with satellites and other platforms typically includes multi spectral collection of imagery 65 Multi faceted interpretation of the data obtained allows inferences about what is observed The science behind these remote observations has been verified with ground truth studies of the actual conditions 1 66 Satellite observations record a decrease in snow covered areas since the 1960s when satellite observations began In some regions such as China a trend of increasing snow cover was observed from 1978 to 2006 These changes are attributed to global climate change which may lead to earlier melting and less coverage area In some areas snow depth increases because of higher temperatures in latitudes north of 40 For the Northern Hemisphere as a whole the mean monthly snow cover extent has been decreasing by 1 3 per decade 67 The most frequently used methods to map and measure snow extent snow depth and snow water equivalent employ multiple inputs on the visible infrared spectrum to deduce the presence and properties of snow The National Snow and Ice Data Center NSIDC uses the reflectance of visible and infrared radiation to calculate a normalized difference snow index which is a ratio of radiation parameters that can distinguish between clouds and snow Other researchers have developed decision trees employing the available data to make more accurate assessments One challenge to this assessment is where snow cover is patchy for example during periods of accumulation or ablation and also in forested areas Cloud cover inhibits optical sensing of surface reflectance which has led to other methods for estimating ground conditions underneath clouds For hydrological models it is important to have continuous information about the snow cover Passive microwave sensors are especially valuable for temporal and spatial continuity because they can map the surface beneath clouds and in darkness When combined with reflective measurements passive microwave sensing greatly extends the inferences possible about the snowpack 67 Satellite measurements show that snow cover has been decreasing in many areas of the world since 1978 64 Models nbsp Snowfall and snowmelt are parts of the Earth s water cycle Snow science often leads to predictive models that include snow deposition snow melt and snow hydrology elements of the Earth s water cycle which help describe global climate change 1 Global climate change models GCMs incorporate snow as a factor in their calculations Some important aspects of snow cover include its albedo reflectivity of incident radiation including light and insulating qualities which slow the rate of seasonal melting of sea ice As of 2011 the melt phase of GCM snow models were thought to perform poorly in regions with complex factors that regulate snow melt such as vegetation cover and terrain These models typically derive snow water equivalent SWE in some manner from satellite observations of snow cover 1 The International Classification for Seasonal Snow on the Ground defines SWE as the depth of water that would result if the mass of snow melted completely 4 Given the importance of snowmelt to agriculture hydrological runoff models that include snow in their predictions address the phases of accumulating snowpack melting processes and distribution of the meltwater through stream networks and into the groundwater Key to describing the melting processes are solar heat flux ambient temperature wind and precipitation Initial snowmelt models used a degree day approach that emphasized the temperature difference between the air and the snowpack to compute snow water equivalent SWE More recent models use an energy balance approach that take into account the following factors to compute Qm the energy available for melt This requires measurement of an array of snowpack and environmental factors to compute six heat flow mechanisms that contribute to Qm 1 Effects on civilizationSnow routinely affects civilization in four major areas transportation agriculture structures and sports Most transportation modes are impeded by snow on the travel surface Agriculture often relies on snow as a source of seasonal moisture Structures may fail under snow loads Humans find a wide variety of recreational activities in snowy landscapes It also affects the conduct of warfare Transportation See also Snowplow Snow affects the rights of way of highways airfields and railroads The snowplow is common to all workers though roadways take anti icing chemicals to prevent bonding of ice and airfields may not railroads rely on abrasives for track traction Highway nbsp Traffic stranded in a 2011 Chicago snowstorm nbsp Reduced visibility on Ontario Highway 401 in Toronto due to a snowsquall In the late 20th century an estimated 2 billion was spent annually in North America on roadway winter maintenance owing to snow and other winter weather events according to a 1994 report by Kuemmel The study surveyed the practices of jurisdictions within 44 US states and nine Canadian provinces It assessed the policies practices and equipment used for winter maintenance It found similar practices and progress to be prevalent in Europe 68 The dominant effect of snow on vehicle contact with the road is diminished friction This can be improved with the use of snow tires which have a tread designed to compact snow in a manner that enhances traction The key to maintaining a roadway that can accommodate traffic during and after a snow event is an effective anti icing program that employs both chemicals and plowing 68 The Federal Highway Administration Manual of Practice for an Effective Anti icing Program emphasizes anti icing procedures that prevent the bonding of snow and ice to the road Key aspects of the practice include understanding anti icing in light of the level of service to be achieved on a given roadway the climatic conditions to be encountered and the different roles of deicing anti icing and abrasive materials and applications and employing anti icing toolboxes one for operations one for decision making and another for personnel The elements to the toolboxes are 69 Operations Addresses the application of solid and liquid chemicals using various techniques including prewetting of chloride salts It also addresses plowing capability including types of snowplows and blades used Decision making Combines weather forecast information with road information to assess the upcoming needs for application of assets and the evaluation of treatment effectiveness with operations underway Personnel Addresses training and deployment of staff to effectively execute the anti icing program using the appropriate materials equipment and procedures The manual offers matrices that address different types of snow and the rate of snowfall to tailor applications appropriately and efficiently Snow fences constructed upwind of roadways control snow drifting by causing windblown drifting snow to accumulate in a desired place They are also used on railways Additionally farmers and ranchers use snow fences to create drifts in basins for a ready supply of water in the spring 70 71 Aviation See also Ice protection system nbsp Deicing an aircraft during a snow eventIn order to keep airports open during winter storms runways and taxiways require snow removal Unlike roadways where chloride chemical treatment is common to prevent snow from bonding to the pavement surface such chemicals are typically banned from airports because of their strong corrosive effect on aluminum aircraft Consequently mechanical brushes are often used to complement the action of snow plows Given the width of runways on airfields that handle large aircraft vehicles with large plow blades an echelon of plow vehicles or rotary snowplows are used to clear snow on runways and taxiways Terminal aprons may require 6 hectares 15 acres or more to be cleared 72 Properly equipped aircraft are able to fly through snowstorms under instrument flight rules Prior to takeoff during snowstorms they require deicing fluid to prevent accumulation and freezing of snow and other precipitation on wings and fuselages which may compromise the safety of the aircraft and its occupants 73 In flight aircraft rely on a variety of mechanisms to avoid rime and other types of icing in clouds 74 these include pulsing pneumatic boots electro thermal areas that generate heat and fluid deicers that bleed onto the surface 75 Rail Railroads have traditionally employed two types of snow plows for clearing track the wedge plow which casts snow to both sides and the rotary snowplow which is suited for addressing heavy snowfall and casting snow far to one side or the other Prior to the invention of the rotary snowplow ca 1865 it required multiple locomotives to drive a wedge plow through deep snow Subsequent to clearing the track with such plows a flanger is used to clear snow from between the rails that are below the reach of the other types of plow Where icing may affect the steel to steel contact of locomotive wheels on track abrasives typically sand have been used to provide traction on steeper uphills 76 Railroads employ snow sheds structures that cover the track to prevent the accumulation of heavy snow or avalanches to cover tracks in snowy mountainous areas such as the Alps and the Rocky Mountains 77 Snowplows for different transportation modes nbsp Trucks plowing snow on a highway in Missouri nbsp Airport snow clearing operations include plowing and brushing nbsp Swiss low profile train mounted snowplowConstruction Snow can be compacted to form a snow road and be part of a winter road route for vehicles to access isolated communities or construction projects during the winter 78 Snow can also be used to provide the supporting structure and surface for a runway as with the Phoenix Airfield in Antarctica The snow compacted runway is designed to withstand approximately 60 wheeled flights of heavy lift military aircraft a year 79 Agriculture nbsp Satellite view of the Indus River Basin showing snow in the mountain ranges including the Himalayas which feed the Indus river and its tributaries and agricultural areas in eastern Pakistan and northwestern India that draw on them for irrigation Snowfall can be beneficial to agriculture by serving as a thermal insulator conserving the heat of the Earth and protecting crops from subfreezing weather Some agricultural areas depend on an accumulation of snow during winter that will melt gradually in spring providing water for crop growth both directly and via runoff through streams and rivers which supply irrigation canals 1 The following are examples of rivers that rely on meltwater from glaciers or seasonal snowpack as an important part of their flow on which irrigation depends the Ganges many of whose tributaries rise in the Himalayas and which provide much irrigation in northeast India 80 the Indus River which rises in Tibet 81 and provides irrigation water to Pakistan from rapidly retreating Tibetan glaciers 82 and the Colorado River which receives much of its water from seasonal snowpack in the Rocky Mountains 83 and provides irrigation water to some 4 million acres 1 6 million hectares 84 Structures nbsp Extreme snow accumulation on building roofsSnow is an important consideration for loads on structures To address these European countries employ Eurocode 1 Actions on structures Part 1 3 General actions Snow loads 85 In North America ASCE Minimum Design Loads for Buildings and Other Structures gives guidance on snow loads 86 Both standards employ methods that translate maximum expected ground snow loads onto design loads for roofs Roofs nbsp Icings resulting from meltwater at the bottom of the snow pack on the roof flowing and refreezing at the eave as icicles and from leaking into the wall via an ice dam Snow loads and icings are two principal issues for roofs Snow loads are related to the climate in which a structure is sited Icings are usually a result of the building or structure generating heat that melts the snow that is on it Snow loads The Minimum Design Loads for Buildings and Other Structures gives guidance on how to translate the following factors into roof snow loads 86 Ground snow loads Exposure of the roof Thermal properties of the roof Shape of the roof Drifting Importance of the buildingIt gives tables for ground snow loads by region and a methodology for computing ground snow loads that may vary with elevation from nearby measured values The Eurocode 1 uses similar methodologies starting with ground snow loads that are tabulated for portions of Europe 85 Icings Roofs must also be designed to avoid ice dams which result from meltwater running under the snow on the roof and freezing at the eave Ice dams on roofs form when accumulated snow on a sloping roof melts and flows down the roof under the insulating blanket of snow until it reaches below freezing temperature air typically at the eaves When the meltwater reaches the freezing air ice accumulates forming a dam and snow that melts later cannot drain properly through the dam 87 Ice dams may result in damaged building materials or in damage or injury when the ice dam falls off or from attempts to remove ice dams The melting results from heat passing through the roof under the highly insulating layer of snow 88 89 Utility lines In areas with trees utility distribution lines on poles are less susceptible to snow loads than they are subject to damage from trees falling on them felled by heavy wet snow 90 Elsewhere snow can accrete on power lines as sleeves of rime ice Engineers design for such loads which are measured in kg m lb ft and power companies have forecasting systems that anticipate types of weather that may cause such accretions Rime ice may be removed manually or by creating a sufficient short circuit in the affected segment of power lines to melt the accretions 91 92 Sports and recreation nbsp Alpine skiingMain article Winter sport Snow figures into many winter sports and forms of recreation including skiing and sledding Common examples include cross country skiing Alpine skiing snowboarding snowshoeing and snowmobiling The design of the equipment used e g skis and snowboards typically relies on the bearing strength of snow and contends with the coefficient of friction bearing on snow Skiing is by far the largest form of winter recreation As of 1994 of the estimated 65 75 million skiers worldwide there were approximately 55 million who engaged in Alpine skiing the rest engaged in cross country skiing Approximately 30 million skiers of all kinds were in Europe 15 million in the US and 14 million in Japan As of 1996 there were reportedly 4 500 ski areas operating 26 000 ski lifts and enjoying 390 million skier visits per year The preponderant region for downhill skiing was Europe followed by Japan and the US 93 Increasingly ski resorts are relying on snowmaking the production of snow by forcing water and pressurized air through a snow gun on ski slopes 94 Snowmaking is mainly used to supplement natural snow at ski resorts 95 This allows them to improve the reliability of their snow cover and to extend their ski seasons from late autumn to early spring The production of snow requires low temperatures The threshold temperature for snowmaking increases as humidity decreases Wet bulb temperature is used as a metric since it takes air temperature and relative humidity into account Snowmaking is a relatively expensive process in its energy consumption thereby limiting its use 96 Ski wax enhances the ability of a ski or other runner to slide over snow by reducing its coefficient of friction which depends on both the properties of the snow and the ski to result in an optimum amount of lubrication from melting the snow by friction with the ski too little and the ski interacts with solid snow crystals too much and capillary attraction of meltwater retards the ski Before a ski can slide it must overcome the maximum value static friction Kinetic or dynamic friction occurs when the ski is moving over the snow 97 Warfare Main article Cold weather warfare See also Ski warfare Snow affects warfare conducted in winter alpine environments or at high latitudes The main factors are impaired visibility for acquiring targets during falling snow enhanced visibility of targets against snowy backgrounds for targeting and mobility for both mechanized and infantry troops Snowfall can severely inhibit the logistics of supplying troops as well Snow can also provide cover and fortification against small arms fire 98 Noted winter warfare campaigns where snow and other factors affected the operations include The French invasion of Russia where poor traction conditions for ill shod horses made it difficult for supply wagons to keep up with troops 99 That campaign was also strongly affected by cold whereby the retreating army reached Neman River in December 1812 with only 10 000 of the 420 000 that had set out to invade Russia in June of the same year 100 The Winter War an attempt by the Soviet Union to take territory in Finland in late 1939 demonstrated superior winter tactics of the Finnish Army regarding over snow mobility camouflage and use of the terrain 101 The Battle of the Bulge a German counteroffensive during World War II starting December 16 1944 was marked by heavy snowstorms that hampered allied air support for ground troops but also impaired German attempts to supply their front lines 102 On the Eastern Front with the Nazi invasion of Russia in 1941 Operation Barbarossa both Russian and German soldiers had to endure terrible conditions during the Russian winter While use of ski infantry was common in the Red Army Germany formed only one division for movement on skis 101 The Korean War which lasted from June 25 1950 until an armistice on July 27 1953 began when North Korea invaded South Korea Much of the fighting occurred during winter conditions involving snow 103 notably during the Battle of Chosin Reservoir which was a stark example of cold affecting military operations especially vehicles and weapons 104 Military operations in snow nbsp Bivouac of Napoleon s Grande Armee during the winter retreat from Moscow nbsp Finnish ski troops during the invasion of Finland by the Soviet Union nbsp Army vehicles coping with snow during the Battle of the Bulge of World War II nbsp Norwegian military preparations during the 2009 Cold Response exercise nbsp United States Navy SEALs training for winter warfare at Mammoth Mountain CaliforniaEffects on plants and animals nbsp Algae Chlamydomonas nivalis that thrive in snow form red areas in the suncups on this snow surfacePlants and animals endemic to snowbound areas develop ways to adapt Among the adaptive mechanisms for plants are freeze adaptive chemistry 105 dormancy seasonal dieback survival of seeds and for animals are hibernation insulation anti freeze chemistry storing food drawing on reserves from within the body and clustering for mutual heat 106 Snow interacts with vegetation in two principal ways vegetation can influence the deposition and retention of snow and conversely the presence of snow can affect the distribution and growth of vegetation Tree branches especially of conifers intercept falling snow and prevent accumulation on the ground Snow suspended in trees ablates more rapidly than that on the ground owing to its greater exposure to sun and air movement Trees and other plants can also promote snow retention on the ground which would otherwise be blown elsewhere or melted by the sun Snow affects vegetation in several ways the presence of stored water can promote growth yet the annual onset of growth is dependent on the departure of the snowpack for those plants that are buried beneath it Furthermore avalanches and erosion from snowmelt can scour terrain of vegetation 1 nbsp Arctic fox a predator of smaller animals that live beneath the snowSnow supports a wide variety of animals both on the surface and beneath Many invertebrates thrive in snow including spiders wasps beetles snow scorpionflys and springtails Such arthropods are typically active at temperatures down to 5 C 23 F Invertebrates fall into two groups regarding surviving subfreezing temperatures freezing resistant and those that avoid freezing because they are freeze sensitive The first group may be cold hardy owing to the ability to produce antifreeze agents in their body fluids that allows survival of long exposure to sub freezing conditions Some organisms fast during the winter which expels freezing sensitive contents from their digestive tracts The ability to survive the absence of oxygen in ice is an additional survival mechanism 106 Small vertebrates are active beneath the snow Among vertebrates alpine salamanders are active in snow at temperatures as low as 8 C 18 F they burrow to the surface in springtime and lay their eggs in melt ponds Among mammals those that remain active are typically smaller than 250 grams 8 8 oz Omnivores are more likely to enter a torpor or be hibernators whereas herbivores are more likely to maintain food caches beneath the snow Voles store up to 3 kilograms 6 6 lb of food and pikas up to 20 kilograms 44 lb Voles also huddle in communal nests to benefit from one another s warmth On the surface wolves coyotes foxes lynx and weasels rely on these subsurface dwellers for food and often dive into the snowpack to find them 106 Outside of EarthExtraterrestrial snow includes water based precipitation but also precipitation of other compounds prevalent on other planets and moons in the Solar System Examples are On Mars observations of the Phoenix Mars lander reveal that water based snow crystals occur at high latitudes 107 Additionally carbon dioxide precipitates from clouds during the Martian winters at the poles and contributes to a seasonal deposit of that compound which is the principal component of that planet s ice caps 108 On Venus observations from the Magellan spacecraft reveal the presence a metallic substance which precipitates as Venus snow and leaves a highly reflective substance at the tops of Venus s highest mountain peaks resembling terrestrial snow Given the high temperatures on Venus the leading candidates for the precipitate are lead sulfide and bismuth III sulfide 109 On Saturn s moon Titan Cassini Huygens spacecraft observations suggest the presence of methane or some other form of hydrocarbon based crystalline deposits 110 See alsoLexicon Eskimo words for snow The wrong type of snowNotable snow events 2007 Siberian orange snow Alberta clipper List of blizzards List of snowiest places in the United States by stateRecreation Skiing Sled Snow angel Snow cannon Snowman Snowmobiling Winter sportRelated concepts Blizzard Freezing rain Frost Graupel Hail Ice Ice pellets Rime Sleet SnowbeltScience and scientists Snow hydrology Timeline of snowflake research Ukichiro NakayaSnow structures Igloo Quinzhee Snow cave Snow groomingReferences a b c d e f g h i j k l m n Michael P Bishop Helgi Bjornsson Wilfried Haeberli Johannes Oerlemans John F Shroder Martyn Tranter 2011 Singh Vijay P Singh Pratap Haritashya Umesh K eds Encyclopedia of Snow Ice and Glaciers Springer Science amp Business Media p 1253 ISBN 978 90 481 2641 5 Hobbs Peter V 2010 Ice Physics Oxford Oxford University Press p 856 ISBN 978 0199587711 Rees W Gareth 2005 Remote Sensing of Snow and Ice CRC Press p 312 ISBN 978 1 4200 2374 9 a b c d e f g Fierz C Armstrong R L Durand Y Etchevers P Greene E et al 2009 The International Classification for Seasonal Snow on the Ground PDF IHP VII Technical Documents in Hydrology vol 83 Paris UNESCO p 80 archived PDF from the original on September 29 2016 retrieved November 25 2016 DeCaria December 7 2005 ESCI 241 Meteorology Lesson 16 Extratropical Cyclones Department of Earth Sciences Millersville University Archived from the original on February 8 2008 Retrieved June 21 2009 Tolme Paul December 2004 Weather 101 How to track and bag the big storms Ski Magazine 69 4 126 ISSN 0037 6159 a b Meteorological Service of Canada September 8 2010 Snow Winter Hazards Environment Canada Archived from the original on June 11 2011 Retrieved October 4 2010 NOAA National Oceanic and Atmospheric Administration Monitoring amp Understanding Our Changing Planet Archived from the original on January 2 2015 Fetch Archived from the original on May 15 2008 Mass Cliff 2008 The Weather of the Pacific Northwest University of Washington Press p 60 ISBN 978 0 295 98847 4 Thomas W Schmidlin Climatic Summary of Snowfall and Snow Depth in the Ohio Snowbelt at Chardon Archived April 8 2008 at the Wayback Machine Retrieved on March 1 2008 Physical Geography CHAPTER 8 Introduction to the Hydrosphere e Cloud Formation Processes Archived December 20 2008 at the Wayback Machine Retrieved on January 1 2009 Stoelinga Mark T Stewart Ronald E Thompson Gregory Theriault Julie M 2012 Micrographic processes within winter orographic cloud and precipitation systems in Chow Fotini K et al eds Mountain Weather Research and Forecasting Recent Progress and Current Challenges Springer Atmospheric Sciences Springer Science amp Business Media p 3 Bibcode 2013mwrf book C ISBN 978 94 007 4098 3 Mark Zachary Jacobson 2005 Fundamentals of Atmospheric Modeling 2nd ed Cambridge University Press ISBN 978 0 521 83970 9 P Singh 2001 Snow and Glacier Hydrology Water Science and Technology Library Vol 37 Springer Science amp Business Media p 75 ISBN 978 0 7923 6767 3 Gaffin David M Parker Stephen S Kirkwood Paul D 2003 An Unexpectedly Heavy and Complex Snowfall Event across the Southern Appalachian Region Weather and Forecasting 18 2 224 235 Bibcode 2003WtFor 18 224G doi 10 1175 1520 0434 2003 018 lt 0224 AUHACS gt 2 0 CO 2 John Roach February 13 2007 No Two Snowflakes the Same Likely True Research Reveals National Geographic News Archived from the original on January 9 2010 Retrieved July 14 2009 Jon Nelson September 26 2008 Origin of diversity in falling snow Atmospheric Chemistry and Physics 8 18 5669 5682 Bibcode 2008ACP 8 5669N doi 10 5194 acp 8 5669 2008 Kenneth Libbrecht Winter 2004 2005 Snowflake Science PDF American Educator Archived from the original PDF on November 28 2008 Retrieved July 14 2009 Brent Q Christner Cindy E Morris Christine M Foreman Rongman Cai David C Sands 2008 Ubiquity of Biological Ice Nucleators in Snowfall Science 319 5867 1214 Bibcode 2008Sci 319 1214C CiteSeerX 10 1 1 395 4918 doi 10 1126 science 1149757 PMID 18309078 S2CID 39398426 Glossary of Meteorology 2009 Cloud seeding American Meteorological Society Archived from the original on March 15 2012 Retrieved June 28 2009 a b M Klesius 2007 The Mystery of Snowflakes National Geographic 211 1 20 ISSN 0027 9358 Jennifer E Lawson 2001 Hands on Science Light Physical Science matter Chapter 5 The Colors of Light Portage amp Main Press p 39 ISBN 978 1 894110 63 1 Retrieved June 28 2009 Warren Israel Perkins 1863 Snowflakes a chapter from the book of nature Boston American Tract Society p 164 Archived from the original on September 9 2016 Retrieved November 25 2016 Chris V Thangham December 7 2008 No two snowflakes are alike Digital Journal Archived from the original on December 28 2009 Retrieved July 14 2009 Randolph E Schmid June 15 1988 Identical snowflakes cause flurry The Boston Globe Associated Press Archived from the original on June 24 2011 Retrieved November 27 2008 But there the two crystals were side by side on a glass slide exposed in a cloud on a research flight over Wausau Wis Matthew Bailey John Hallett 2004 Growth rates and habits of ice crystals between 20 and 70C Journal of the Atmospheric Sciences 61 5 514 544 Bibcode 2004JAtS 61 514B doi 10 1175 1520 0469 2004 061 lt 0514 GRAHOI gt 2 0 CO 2 Kenneth G Libbrecht October 23 2006 A Snowflake Primer California Institute of Technology Archived from the original on July 10 2009 Retrieved June 28 2009 Kenneth G Libbrecht January February 2007 The Formation of Snow Crystals American Scientist 95 1 52 59 doi 10 1511 2007 63 52 Magono Choji Lee Chung Woo 1966 Meteorological Classification of Natural Snow Crystals Journal of the Faculty of Science 7 Geophysics ed Hokkaido 3 4 321 335 hdl 2115 8672 Nipher Snow Gauge On ec gc ca August 27 2007 Archived from the original on September 28 2011 Retrieved August 16 2011 National Weather Service Office Northern Indiana April 13 2009 8 Inch Non Recording Standard Rain Gage National Weather Service Central Region Headquarters Archived from the original on December 25 2008 Retrieved January 2 2009 National Weather Service Office Binghamton New York 2009 Raingauge Information Archived October 13 2008 at the Wayback Machine Retrieved on January 2 2009 All Weather Precipitation Gauge On ec gc ca August 27 2007 Archived from the original on September 28 2011 Retrieved August 16 2011 Glossary of Meteorology 2009 Snow flurry American Meteorological Society Archived from the original on November 27 2007 Retrieved June 28 2009 National Weather Service Glossary National Weather Service 2009 Archived from the original on May 9 2009 Retrieved July 12 2009 Blizzards Winter Severe Weather Environment Canada September 4 2002 Archived from the original on February 11 2009 Retrieved July 12 2009 Met Office November 19 2008 Key to flash warning criteria Archived from the original on December 29 2010 Retrieved July 12 2009 National Weather Service Forecast Office Flagstaff Arizona May 24 2007 Blizzards National Weather Service Western Region Headquarters Archived from the original on January 15 2009 Retrieved July 12 2009 a href Template Cite web html title Template Cite web cite web a CS1 maint multiple names authors list link National Oceanic and Atmospheric Administration November 1991 Winter Storms the Deceptive Killers United States Department of Commerce Archived from the original on June 8 2009 Retrieved June 28 2009 Glossary of Meteorology 2009 Snow American Meteorological Society Archived from the original on February 20 2009 Retrieved June 28 2009 NASA s storm chasing planes fly through blizzards to improve snowfall forecasts Popular Science February 3 2022 Retrieved March 9 2023 NOAA What causes bands of heavy snowfall weather gov US Department of Commerce Retrieved March 9 2023 Coombs Mitchel November 28 2022 3D Weather Science of snow bands KECI Retrieved March 9 2023 National Weather Service Forecast Office Northern Indiana October 2004 Snow Measurement Guidelines for National Weather Service Snow Spotters PDF National Weather ServiceCentral Region Headquarters Archived PDF from the original on February 15 2010 Chang A T C Foster J L Hall D K 1987 NIMBUS 7 SMMR derived global snow parameters Annals of Glaciology 9 39 44 doi 10 1017 S0260305500200736 Lemke P et al 2007 Observations Changes in snow ice and frozen ground in Solomon S et al eds Climate Change 2007 The Physical Science Basis New York Cambridge Univ Press pp 337 383 a b Dery S J Brown R D 2007 Recent Northern Hemisphere snow cover extent trends and implications for the snow albedo feedback Geophysical Research Letters 34 L22504 L22504 Bibcode 2007GeoRL 3422504D doi 10 1029 2007GL031474 NOAA Mt Baker snowfall record sticks USA Today August 3 1999 Archived from the original on April 24 2009 Retrieved June 30 2009 Mount Rainier National Park April 14 2006 Frequently Asked Questions National Park Service Archived from the original on February 21 2007 Retrieved June 30 2009 JMA in Japanese JMA Archived from the original on June 18 2013 Retrieved November 12 2012 William J Broad March 20 2007 Giant Snowflakes as Big as Frisbees Could Be New York Times Archived from the original on November 4 2011 Retrieved July 12 2009 Top 10 snowiest major cities around the world Accuweather Retrieved March 4 2023 David McClung amp Peter Schaerer 2006 The Avalanche Handbook The Mountaineers Books pp 49 51 ISBN 978 0 89886 809 8 Retrieved July 7 2009 California Data Exchange Center 2007 Depth and Density Department of Water Resources California Archived from the original on July 13 2009 Retrieved July 8 2009 Glossary of Meteorology 2009 Firn American Meteorological Society Archived from the original on August 24 2007 Retrieved June 30 2009 Pidwirny Michael Jones Scott 2014 CHAPTER 10 Introduction to the Lithosphere Glacial Processes PhysicalGeography net University of British Columbia Okanagan Retrieved December 20 2018 Joy Haden February 8 2005 CoCoRaHS in the Cold Measuring in Snowy Weather PDF Colorado Climate Center Archived PDF from the original on July 18 2011 Retrieved July 12 2009 Caroline Gammel February 2 2009 Snow Britain Snow drifts and blizzards of the past Telegraph Media Group Archived from the original on February 5 2009 Retrieved July 12 2009 a b c McClung David and Shaerer Peter The Avalanche Handbook The Mountaineers 2006 ISBN 978 0 89886 809 8 Howard Perlman May 13 2009 The Water Cycle Snowmelt Runoff United States Geological Survey Archived from the original on August 13 2009 Retrieved July 7 2009 Randy Bowersox June 20 2002 Hydrology of a Glacial Dominated System Copper River Alaska PDF University of California Davis p 2 Archived PDF from the original on June 12 2010 Retrieved July 8 2009 All About Snow Snow Science National Snow and Ice Data Center University of Colorado Boulder 2016 Archived from the original on December 1 2016 Retrieved November 30 2016 a b c Fox Kemper B Hewitt H T Xiao C Adalgeirsdottir G Drijfhout S S Edwards T L Golledge N R Hemer M Kopp R E Krinner G Mix A 2021 Masson Delmotte V Zhai P Pirani A Connors S L Pean C Berger S Caud N Chen Y Goldfarb L eds Ocean Cryosphere and Sea Level Change 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 Cambridge University Press Cambridge UK and New York NY US 2021 1283 1285 doi 10 1017 9781009157896 011 ISBN 9781009157896 Hall Dorothy K 1985 Remote Sensing of Ice and Snow Dordrecht Springer Netherlands ISBN 978 94 009 4842 6 Hall Dorothy K Box J Casey K Hook S Shuman C Steffen K October 15 2008 Comparison of satellite derived and in situ observations of ice and snow surface temperatures over Greenland Remote Sensing of Environment 112 10 3739 3749 Bibcode 2008RSEnv 112 3739H doi 10 1016 j rse 2008 05 007 hdl 2060 20080030345 S2CID 91180832 a b Dietz A Kuenzer C Gessner U Dech S 2012 Remote Sensing of Snow a Review of available methods International Journal of Remote Sensing 33 13 4094 4134 Bibcode 2012IJRS 33 4094D doi 10 1080 01431161 2011 640964 S2CID 6756253 a b David A Kuemmel 1994 Managing roadway snow and ice control operations Transportation Research Board p 10 ISBN 978 0 309 05666 3 Retrieved July 8 2009 Ketcham Stephen A Minsk L David et al June 1995 Manual of Practice for an Effective Anti icing Program A Guide For Highway Winter Maintenance Personnel fhwa dot gov FHWA Archived from the original on December 1 2016 Retrieved December 1 2016 Highway anti icing is the snow and ice control practice of preventing the formation or development of bonded snow and ice by timely applications of a chemical freezing point depressant Jairell R Schmidt R 1999 133 Snow Management and Windbreaks PDF Range Beef Cow Symposium University of Nebraska Lincoln p 12 archived PDF from the original on May 7 2016 ScienceDaily February 6 2009 SnowMan Software Helps Keep Snow Drifts Off The Road Archived from the original on April 16 2009 Retrieved July 12 2009 a href Template Cite journal html title Template Cite journal cite journal a Cite journal requires journal help John C Becker Esch David C 1996 Road and airfield maintenance in Vinson Ted S Rooney James W Haas Wilbur H eds Roads and Airfields in Cold Regions A State of the Practice Report CERF Reports ASCE Publications p 252 ISBN 978 0 7844 7412 9 Transport Canada Ottawa ON 2016 TP 14052 Guidelines for Aircraft Ground Icing Operations Chapter 8 Fluids Archived May 27 2014 at the Wayback Machine Retrieved May 14 2016 Wright Tim March 2004 Electro mechanical deicing Air amp Space Magazine Smithsonian Retrieved February 20 2017 Ells Steve 2004 Aircraft Deicing and Anti icing Equipment PDF Safety Advisor Weather No 2 Aircraft Owners and Pilots Association Archived PDF from the original on December 3 2016 Retrieved December 1 2016 Anti icing equipment is turned on before entering icing conditions and is designed to prevent ice from forming Deicing equipment is designed to remove ice after it begins to accumulate on the airframe Bianculli Anthony J 2001 The American Railroad in the Nineteenth Century Cars Trains and Technology Vol 2 Dover University of Delaware Press p 170 ISBN 978 0 87413 730 9 Retrieved December 2 2016 FAO Staff Avalanche and torrent control in the Spanish Pyrenees National Forests Organization of Spain Patrimonio Forestal del Estado Archived from the original on September 24 2015 Retrieved December 1 2016 Abele G 1990 Snow roads and runways U S Army Cold Regions Research and Engineering Laboratory Monograph 90 3 Washington D C A New Runway for McMurdo Station is Named National Science Foundation April 7 2016 Archived from the original on April 23 2016 Krishna Murti C R 1991 The Ganga a scientific study Gaṅga Pariyojana Nidesalaya India Environment Research Committee Northern Book Centre ISBN 978 8172110215 OCLC 853267663 Albinia Alice 2008 Empires of the Indus The Story of a River First American Edition 20101 W W Norton amp Company New York ISBN 978 0 393 33860 7 Global warming benefits to Tibet Chinese official Reported 18 August 2009 August 17 2009 Archived from the original on January 23 2010 Retrieved December 4 2012 Kammerer J C May 1990 Largest Rivers in the United States U S Geological Survey Archived from the original on January 29 2017 Retrieved July 2 2010 Salazar Awards 20 1 Million to Four Western Colorado Irrigation Districts to Improve Irrigation Systems Reduce Salinity in Colorado River U S Bureau of Reclamation October 21 2011 Archived from the original on October 30 2011 Retrieved March 17 2012 a b Joint European Commission 2003 General actions Snow loads Eurocode 1 EN 1991 1 3 2003 Actions on structures Part 1 3 a b Committee on Minimum Design Loads for Buildings 2013 Minimum Design Loads for Buildings and Other Structures PDF American Society of Civil Engineers p 636 ISBN 9780784413227 archived PDF from the original on October 11 2016 retrieved December 2 2016 Paul Fisette Preventing Ice Dams Roofing flashing amp waterproofing Newtown CT Taunton Press 2005 54 Ice Dams Minnesota Department of Commerce archived from the original on August 24 2007 MacKinley I Flood R Heidrich A 2000 Roof design in regions of snow and cold in Hjorth Hansen E Holand I Loset S Norem H eds Snow Engineering 2000 Recent Advances and Developments Rotterdam CRC Press p 470 ISBN 9789058091482 Technical staff 2015 Storms amp Outages Duke Energy Archived from the original on December 20 2016 Retrieved December 6 2016 Both snow and ice cause power outages primarily by weighing down tree limbs and power lines causing them to break Farzaneh Masoud 2008 Atmospheric Icing of Power Networks Springer Science amp Business Media p 141 ISBN 9781402085314 Bonelli P Lacavalla M et al 2011 Wet snow hazard for power lines a forecast and alert system applied in Italy Natural Hazards and Earth System Sciences 11 9 2419 2431 Bibcode 2011NHESS 11 2419B doi 10 5194 nhess 11 2419 2011 S2CID 15569449 Hudson Simon 2000 Snow Business A Study of the International Ski Industry Tourism Cassell Cengage Learning EMEA p 180 ISBN 9780304704712 US patent 2676471 W M Pierce Jr Method for Making and Distributing Snow issued December 14 1950 On This Day March 25 Archived April 12 2011 at the Wayback Machine BBC News accessed December 20 2006 The first artificial snow was made two years later in 1952 at Grossinger s resort in New York USA Jorgen Rogstam amp Mattias Dahlberg April 1 2011 Energy usage for snowmaking PDF archived PDF from the original on February 1 2014 Bhavikatti S S K G Rajashekarappa 1994 Engineering Mechanics New Age International p 112 ISBN 978 81 224 0617 7 Retrieved October 21 2007 Chew Allen F December 1981 Fighting the Russians in Winter Three Case Studies PDF Leavenworth Papers Fort Leavenworth Kansas 5 ISSN 0195 3451 Archived from the original PDF on October 13 2011 Retrieved December 10 2016 Professor Saul David February 9 2012 Napoleon s failure For the want of a winter horseshoe BBC News magazine Archived from the original on February 9 2012 Retrieved February 9 2012 The Wordsworth Pocket Encyclopedia p 17 Hertfordshire 1993 a b Clemmesen Michael H Faulkner Marcus eds 2013 Northern European Overture to War 1939 1941 From Memel to Barbarossa Brill p 76 ISBN 978 90 04 24908 0 Parker Danny S 1991 Battle of the Bulge Hitler s Ardennes Offensive 1944 1945 Combined Books ISBN 978 0 938289 04 3 Halberstam David 2007 The Coldest Winter America and the Korean War New York Hyperion ISBN 978 1 4013 0052 4 Tilstra Russell C 2014 The Battle Rifle Development and Use Since World War II McFarland p 28 ISBN 978 1 4766 1564 6 Gusta Lawrence V Tanino Karen K Wisniewski Michael E 2009 Plant Cold Hardiness From the Laboratory to the Field CABI pp 19 27 ISBN 978 1 84593 513 9 a b c Jones H G 2001 Snow Ecology An Interdisciplinary Examination of Snow Covered Ecosystems Cambridge University Press p 248 ISBN 978 0 521 58483 8 Anne Minard July 2 2009 Diamond Dust Snow Falls Nightly on Mars National Geographic News Archived from the original on September 17 2009 Agustin Chicarro Agustin September 22 2008 Mars polar cap mystery solved Spaceref com European Space Agency Archived from the original on March 7 2023 Retrieved December 8 2016 the temperature of the low pressure system is often below the condensation point for carbon dioxide so the gas condenses and falls from the sky as snow and builds up on the ground as frost Carolyn Jones Otten 2004 Heavy metal snow on Venus is lead sulfide Washington University in St Louis Archived from the original on April 15 2008 Retrieved August 21 2007 Carolina Martinez December 12 2006 Massive Mountain Range Imaged on Saturn s Moon Titan NASA Archived from the original on March 4 2016 External linksSnow at Wikipedia s sister projects nbsp Definitions from Wiktionary nbsp Media from Commons nbsp News from Wikinews nbsp Quotations from Wikiquote nbsp Texts from Wikisource nbsp Textbooks from Wikibooks nbsp Resources from Wikiversity United Nations Environment Programme Global Outlook for Ice and Snow Archived June 8 2007 at the Wayback Machine Institute of Low Temperature Science Hokkaido University Swiss Federal Institute for Forest Snow and Landscape Research National Snow and Ice Data Center of the United States American Society of Civil Engineers ground snow loads interactive map for the continental US Retrieved from https en wikipedia org w index php title Snow amp oldid 1190594646, wikipedia, wiki, book, books, library,

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