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Seawall

A seawall (or sea wall) is a form of coastal defense constructed where the sea, and associated coastal processes, impact directly upon the landforms of the coast. The purpose of a seawall is to protect areas of human habitation, conservation, and leisure activities from the action of tides, waves, or tsunamis.[1] As a seawall is a static feature, it will conflict with the dynamic nature of the coast and impede the exchange of sediment between land and sea.[2]

An example of a modern seawall in Ventnor on the Isle of Wight, England
People socializing and walking at the Malecón, Havana
Seawall at Urangan, Queensland

Seawall designs factor in local climate, coastal position, wave regime (determined by wave characteristics and effectors), and value (morphological characteristics) of landform. Seawalls are hard engineering shore-based structures that protect the coast from erosion. Various environmental issues may arise from the construction of a seawall, including the disruption of sediment movement and transport patterns.[3] Combined with a high construction cost, this has led to increasing use of other soft engineering coastal management options such as beach replenishment.

Seawalls are constructed from various materials, most commonly reinforced concrete, boulders, steel, or gabions. Other possible construction materials include vinyl, wood, aluminum, fiberglass composite, and biodegradable sandbags made of jute and coir.[4] In the UK, seawall also refers to an earthen bank used to create a polder, or a dike construction. The type of material used for construction is hypothesized to affect the settlement of coastal organisms, although the precise mechanism has yet to be identified.[5]

Types edit

A seawall works by reflecting incident wave energy back into the sea, thus reducing the energy available to cause erosion.[6] Seawalls have two specific weaknesses. Wave reflection from the wall may result in hydrodynamic scour and subsequent lowering of the sand level of the fronting beach.[7] Seawalls may also accelerate the erosion of adjacent, unprotected coastal areas by affecting the littoral drift process.[8]

Different designs of man-made tsunami barriers include building reefs and forests to above-ground and submerged seawalls.[9] Starting just weeks after the disaster, in January 2005, India began planting Casuarina and coconut saplings on its coast as a natural barrier against future disasters like the 2004 Indian Ocean earthquake.[10] Studies have found that an offshore tsunami wall could reduce tsunami wave heights by up to 83%.[11]

The appropriate seawall design relies on location-specific aspects, including surrounding erosion processes.[12] There are three main types of seawalls: vertical, curved, stepped, and mounds (see table below).

Seawall types
Type Illustration Advantages Disadvantages Example
Vertical Vertical seawalls are built in particularly exposed situations. These reflect wave energy. Under storm conditions a non-breaking standing wave pattern can form, resulting in a stationary clapotic wave which moves up and down but does not travel horizontally.[13][14] These waves promote erosion at the toe of the wall and can cause severe damage to the seawall.[15] In some cases, piles are placed in front of the wall to lessen wave energy slightly.
 
  • The first implemented, most easily designed and constructed type of seawall.
  • Vertical seawalls deflect wave energy away from the coast.
  • Loose rubble can absorb wave energy.
  • These can suffer a lot of expensive damage in a short period of time.
  • Vertical design can be undercut by high-wave energy environments over a long period of time.
 
Curved Curved or stepped seawalls are designed to enable waves to break to dissipate wave energy and to repel waves back to the sea. The curve can also prevent the wave overtopping the wall and provides additional protection for the toe of the wall.
 
  • Concave structure introduces a dissipative element.
  • The curve can prevent waves from overtopping the wall and provides extra protection for the toe of the wall
  • Curved seawalls aim to re-direct most of the incident energy, resulting in low reflected waves and much reduced turbulence.
  • More complex engineering and design process.
  • The deflected waves can scour material at the base of the wall causing them to become undermined.
 
Mound Mound type seawalls, using revetments or riprap, are used in less demanding settings where lower energy erosional processes operate. The least exposed sites involve the lowest-cost bulkheads and revetments of sand bags or geotextiles. These serve to armour the shore and minimise erosion and may be either watertight or porous, which allows water to filter through after the wave energy has been dissipated.[16]
 
  • Current designs use porous designs of rock, concrete armour.
  • Slope and loose material ensure maximum dissipation of wave energy.
  • Lower cost option.
  • Shorter life expectancy.
  • Cannot withstand or protect from high-energy conditions effectively.
 

Natural barriers edit

A report published by the United Nations Environment Programme (UNEP) suggests that the tsunami of 26 December 2004 caused less damage in the areas where natural barriers were present, such as mangroves, coral reefs or coastal vegetation. A Japanese study of this tsunami in Sri Lanka used satellite imagery modelling to establish the parameters of coastal resistance as a function of different types of trees.[17] Natural barriers, such as coral reefs and mangrove forests, prevent the spread of tsunamis and the flow of coastal waters and mitigated the flood and surge of water.[18]

Trade-offs edit

A cost-benefit approach is an effective way to determine whether a seawall is appropriate and whether the benefits are worth the expense. Besides controlling erosion, consideration must be given to the effects of hardening a shoreline on natural coastal ecosystems and human property or activities. A seawall is a static feature which can conflict with the dynamic nature of the coast and impede the exchange of sediment between land and sea. The table below summarizes some positive and negative effects of seawalls which can be used when comparing their effectiveness with other coastal management options, such as beach nourishment.[citation needed]

Advantages and disadvantages of seawalls according to Short (1999)[19]
Advantages Disadvantages
  • Long term solution in comparison to soft beach nourishment.
  • Effectively minimizes loss of life in extreme events and damage to property caused by erosion.
  • Can exist longer in high energy environments in comparison to ‘soft’ engineering methods.
  • Can be used for recreation and sightseeing.
  • Forms a hard and strong coastal defense.
  • Expensive to construct.
  • May be considered aesthetically unattractive.
  • Reflected energy of waves leading to scour at base.
  • Can disrupt natural shoreline processes and destroy shoreline habitats such as wetlands and intertidal beaches.
  • Altered sediment transport processes can disrupt sand movement that can lead to increased erosion down drift from the structure. This can cause beaches to dissipate, rendering them useless for beach goers.
 
 
 
3D simulation of wave motion near a seawall.[20]

Generally, seawalls can be a successful way to control coastal erosion, but only if they are constructed well and out of materials that can withstand the force of ongoing wave energy. Some understanding is needed of the coastal processes and morphodynamics specific to the seawall location. Seawalls can be very helpful; they can offer a more long-term solution than soft engineering options, additionally providing recreation opportunities and protection from extreme events as well as everyday erosion. Extreme natural events expose weaknesses in the performance of seawalls, and analyses of these can lead to future improvements and reassessment.[citation needed]

Issues edit

Sea level rise edit

Sea level rise creates an issue for seawalls worldwide as it raises both the mean normal water level and the height of waves during extreme weather events, which the current seawall heights may be unable to cope with.[21] The most recent analyses of long, good-quality tide gauge records (corrected for GIA and when possible for other vertical land motions by the Global Positioning System, GPS) indicate a mean rate of sea level rise of 1.6–1.8 mm/yr over the twentieth century.[22] The Intergovernmental Panel on Climate Change (IPCC) (1997)[23] suggested that sea level rise over the next 50 – 100 years will accelerate with a projected increase in global mean sea level of +18 cm by 2050 AD. This data is reinforced by Hannah (1990)[24] who calculated similar statistics including a rise of between +16-19.3 cm throughout 1900–1988. Superstorm Sandy of 2012 is an example of the devastating effects rising sea levels can cause when mixed with a perfect storm. Superstorm Sandy sent a storm surge of 4–5 m onto New Jersey's and New York's barrier island and urban shorelines, estimated at $70 billion in damage.[25] This problem could be overcome by further modeling and determining the extension of height and reinforcement of current seawalls which needs to occur for safety to be ensured in both situations. Sea level rise also will cause a higher risk of flooding and taller tsunamis.[citation needed]

Hydrostatic water pressure edit

Seawalls, like all retaining walls, must relieve the buildup of water pressure. Water pressure buildup is caused when groundwater is not drained from behind the seawall. Groundwater against a seawall can be from the area's natural water-table, rain percolating into the ground behind the wall and waves overtopping the wall. The water table can also rise during periods of high water (high tide). Lack of adequate drainage can cause the seawall to buckle, move, bow, crack, or collapse. Sinkholes may also develop as the escaping water pressure erodes soil through or around the drainage system.[citation needed]

Extreme events edit

Extreme events also pose a problem as it is not easy for people to predict or imagine the strength of hurricane or storm-induced waves compared to normal, expected wave patterns. An extreme event can dissipate hundreds of times more energy than everyday waves, and calculating structures that will stand the force of coastal storms is difficult and, often the outcome can become unaffordable. For example, the Omaha Beach seawall in New Zealand was designed to prevent erosion from everyday waves only, and when a storm in 1976 carved out ten meters behind the existing seawall, the whole structure was destroyed.[12]

Ecosystem impacts edit

The addition of seawalls near marine ecosystems can lead to increased shadowing effects in the waters surrounding the seawall. Shadowing reduces the light and visibility within the water, which may disrupt the distribution as well as foraging capabilities of certain species.[26] The sediment surrounding seawalls tends to have less favorable physical properties (Higher calcification levels, less structural organization of crystalline structure, low silicon content, and less macroscale roughness) when compared to natural shorelines, which can present issues for species that reside on the seafloor.[27]

Other issues edit

Some further issues include a lack of long-term trend data of seawall effects due to a relatively short duration of data records; modeling limitations and comparisons of different projects and their effects being invalid or unequal due to different beach types; materials; currents; and environments.[28] Lack of maintenance is also a major issue with seawalls. In 2013, more than 5,000 feet (1,500 m) of seawall was found to be crumbling in Punta Gorda, Florida. Residents of the area pay hundreds of dollars each year for a seawall repair program. The problem is that most of the seawalls are over a half-century old and are being destroyed by only heavy downpours. If not kept in check, seawalls lose effectiveness and become expensive to repair.[29]

History and examples edit

 
A seawall, made of rocks in Paravur near Kollam city in India.

Seawall construction has existed since ancient times. In the first century BCE, Romans built a seawall or breakwater at Caesarea Maritima creating an artificial harbor (Sebastos Harbor). The construction used Pozzolana concrete which hardens in contact with seawater. Barges were constructed and filled with the concrete. They were floated into position and sunk. The resulting harbor/breakwater/seawall is still in existence today – more than 2000 years later.[30]

The oldest known coastal defense is believed to be a 100-meter row of boulders in the Mediterranean Sea off the coast of Israel. Boulders were positioned in an attempt to protect the coastal settlement of Tel Hreiz from sea rise following the last glacial maximum. Tel Hreiz was discovered in 1960 by divers searching for shipwrecks, but the row of boulders was not found until storms cleared a sand cover in 2012.[31]

More recently, seawalls were constructed in 1623 in Canvey Island, UK, when great floods of the Thames estuary occurred, prompting the construction of protection for further events in this flood-prone area.[32] Since then, seawall design has become more complex and intricate in response to an improvement in materials, technology, and an understanding of how coastal processes operate. This section will outline some key case studies of seawalls in chronological order and describe how they have performed in response to tsunamis or ongoing natural processes and how effective they were in these situations. Analyzing the successes and shortcomings of seawalls during severe natural events allows their weaknesses to be exposed, and areas become visible for future improvement.[citation needed]

Canada edit

The Vancouver Seawall is a stone seawall constructed around the perimeter of Stanley Park in Vancouver, British Columbia. The seawall was constructed initially as waves created by ships passing through the First Narrows eroding the area between Prospect Point and Brockton Point. Construction of the seawall began in 1917, and since then this pathway has become one of the most used features of the park by both locals and tourists and now extends 22 km in total.[33] The construction of the seawall also provided employment for relief workers during the Great Depression and seamen from HMCS Discovery on Deadman's Island who were facing punishment detail in the 1950s (Steele, 1985).[34]

Overall, the Vancouver Seawall is a prime example of how seawalls can simultaneously provide shoreline protection and a source of recreation which enhances human enjoyment of the coastal environment. It also illustrates that although shoreline erosion is a natural process, human activities, interactions with the coast, and poorly planned shoreline development projects can accelerate natural erosion rates.[citation needed]

India edit

On December 26, 2004, towering waves of the 2004 Indian Ocean earthquake tsunami crashed against India's south-eastern coastline killing thousands. However, the former French colonial enclave of Pondicherry escaped unscathed. This was primarily due to French engineers who had constructed (and maintained) a massive stone seawall during the time when the city was a French colony. This 300-year-old seawall effectively kept Pondicherry's historic center dry even though tsunami waves drove water 24 ft (7.3 m) above the normal high-tide mark.[35]

The barrier was initially completed in 1735 and over the years, the French continued to fortify the wall, piling huge boulders along its 1.25 mi (2 km) coastline to stop erosion from the waves pounding the harbor. At its highest, the barrier running along the water's edge reaches about 27 ft (8.2 m) above sea level. The boulders, some weighing up to a ton, are weathered black and brown. The seawall is inspected every year and whenever gaps appear or the stones sink into the sand, the government adds more boulders to keep it strong.[36]

The Union Territory of Pondicherry recorded around 600 deaths from the huge tsunami waves that struck India's coast after the mammoth underwater earthquake (which measured 9.0 on the moment magnitude scale) off Indonesia, but most of those killed were fishermen who lived in villages beyond the artificial barrier which reinforces the effectiveness of seawalls.[citation needed]

Japan edit

At least 43 percent of Japan's 29,751 km (18,486 mi)[37] coastline is lined with concrete seawalls or other structures designed to protect the country against high waves, typhoons, or even tsunamis.[38] During the 2011 Tōhoku earthquake and tsunami, the seawalls in most areas were overwhelmed. In Kamaishi, 4-metre (13 ft) waves surmounted the seawall – the world's largest, erected a few years ago in the city's harbor at a depth of 63 m (207 ft), a length of 2 km (1.2 mi) and a cost of $1.5 billion – and eventually submerged the city center.[39]

The risks of dependence on seawalls were most evident in the crisis at the Fukushima Dai-ichi and Fukushima Dai-ni nuclear power plants, both located along the coast close to the earthquake zone, as the tsunami washed over walls that were supposed to protect the plants. Arguably, the additional defense provided by the seawalls presented an extra margin of time for citizens to evacuate and also stopped some of the full force of energy which would have caused the wave to climb higher in the backs of coastal valleys. In contrast, the seawalls also acted in a negative way to trap water and delay its retreat.[citation needed]

The failure of the world's largest seawall, which cost $1.5 billion to construct, shows that building stronger seawalls to protect larger areas would have been even less cost-effective. In the case of the ongoing crisis at the nuclear power plants, higher and stronger seawalls should have been built if power plants were to be built at that site. Fundamentally, the devastation in coastal areas and a final death toll predicted to exceed 10,000 could push Japan to redesign its seawalls or consider more effective alternative methods of coastal protection for extreme events. Such hardened coastlines can also provide a false sense of security to property owners and local residents as evident in this situation.[39]

Seawalls along the Japanese coast have also been criticized for cutting settlements off from the sea, making beaches unusable, presenting an eyesore, disturbing wildlife, and being unnecessary.[40]

United States edit

After 2012's Hurricane Sandy, New York City Mayor Bill de Blasio invested $3 billion in a hurricane restoration fund, with part of the money dedicated to building new seawalls and protection from future hurricanes.[41] A New York Harbor Storm-Surge Barrier has been proposed, but not voted on or funded by Congress or the State of New York.[citation needed]

In Florida, tiger dams are used to protect homes near the coast.[42][43]

See also edit

General:

Related types of walls:

  • Accropode – Concrete breakwater element
  • Breakwater (structure) – Coastal defense structure
  • Dike (construction) – Ridge or wall to hold back water
  • Levee – Ridge or wall to hold back water
  • Retaining wall – Artificial wall used for supporting soil between two different elevations

Specific walls:

References edit

  1. ^ Kamphuis, W J. (2010) Introduction to Coastal Engineering and Management. World Scientific Publishing Co Ltd. Singapore.
  2. ^ Shipman, Brian; Stojanovic, Tim (2007), "Facts, Fictions, and Failures of Integrated Coastal Zone Management in Europe", Coastal Management, 35 (2–3): 375–398, Bibcode:2007CoasM..35..375S, doi:10.1080/08920750601169659, S2CID 153826622
  3. ^ Kraus, N & McDougal. (1996) The Effects of Seawalls on the Beach: Part I: An Updated Literature Review in Journal of Coastal Research. Vol. 12, No. 3.
  4. ^ Clarke, J R. 1994. Integrated Management of Coastal Zones. Fao Corporate Document Repository, USA.
  5. ^ Hsiung AR, Tan WT, Loke LHL, Firth LB and others (2020) Little evidence that lowering the pH of concrete supports greater biodiversity on tropical and temperate seawalls. Mar Ecol Prog Ser 656:193-205
  6. ^ Kajendra, R. (2011)
  7. ^ Masselink, G and Hughes, M J. (2003) Introduction to Coastal Processes and Geomorphology. Oxford University Press. New York. Ch 11.
  8. ^ NOAA. (2007) Shoreline Management: Alternatives to Hardening the Shore. Retrieved online 15 April 2011 from: http://coastalmanagement.noaa.gov/shoreline.html
  9. ^ O’Shaughnessy, Kathryn A.; Hawkins, Stephen J.; Evans, Ally J.; Hanley, Mick E.; Lunt, Paul; Thompson, Richard C.; Francis, Robert A.; Hoggart, Simon P. G.; Moore, Pippa J.; Iglesias, Gregorio; Simmonds, David; Ducker, James; Firth, Louise B. (2020-04-01). "Design catalogue for eco-engineering of coastal artificial structures: a multifunctional approach for stakeholders and end-users". Urban Ecosystems. 23 (2): 431–443. doi:10.1007/s11252-019-00924-z. ISSN 1573-1642. S2CID 209492205.
  10. ^ "India builds tsunami barrier". News 24. January 14, 2005. Retrieved March 29, 2011.
  11. ^ . Universiti Teknologi Malaysia Institutional Repository. 25 November 2010. Archived from the original on 12 November 2017. Retrieved March 29, 2011.
  12. ^ a b GeoResources. (2001) Coastal management. Retrieved online 18 April 2011 from: "GeoResources - Geography website". Archived from the original on 2012-08-01. Retrieved 2011-04-30.
  13. ^ Carter, Bill (1989). Coastal environments: an introduction to the physical, ecological, and cultural systems of coastlines. Boston: Academic Press. p. 50. ISBN 0-12-161856-0.
  14. ^ Matzner, Richard A. (2001). (PDF). Boca Raton: CRC Press. p. 81. Bibcode:2001dgaa.book.....M. ISBN 0-8493-2891-8. Archived from the original (PDF) on 2007-07-22.
  15. ^ Beer, Tom (1997). Environmental oceanography. Boca Raton: CRC Press. p. 44. ISBN 0-8493-8425-7. ... the reflected wave energy interacted with the incoming waves to produce standing waves known as clapotis, which promote erosion at the toe of the wall.
  16. ^ Milligan J, O'riordan T (2007). "Governance for Sustainable Coastal Futures". Coastal Management. 35 (4): 499–509. Bibcode:2007CoasM..35..499M. doi:10.1080/08920750701525800. S2CID 154733601.
  17. ^ [1] 2011-07-16 at the Wayback Machine Satellite imagery and modelling show how forests cushion the impact of tsunamis
  18. ^ "Tsunami Barriers". Science NetLinks. Retrieved March 30, 2011.
  19. ^ Short, A. (1999) Handbook of Beach and Shoreface Morphodynamics. John Wiley and Sons Ltd. Ch 7.
  20. ^ MEDUS. (2011) Marine Engineering Division of University of Salerno. Retrieved online 10 April 2011 from: http://www.diciv.unisa.it/docenti/dentale/medus_.php 2011-07-22 at the Wayback Machine (MEDUS)
  21. ^ Allan, J C, Kirk, R M, Hemmingsen, M & Hart, D. (1999) Coastal Processes in Southern Pegasus Bay: A Review – A Report to Woodward-Clyde New Zealand Ltd. and the Christchurch City Council. Land and Water Studies Ltd. Christchurch.
  22. ^ Cazenave, Anny (2014). "Sea level rise and its coastal impacts". Earth's Future. 2 (2): 15–34. Bibcode:2014EaFut...2...15C. doi:10.1002/2013EF000188.
  23. ^ Intergovernmental Panel on Climate Change. 2007. IPCC Fourth Assessment Report: Climate Change 2007. Retrieved Online 15 April 2011 from: www.ipcc.ch/publications_and_data/publications_and_data_reports
  24. ^ Hannah, J. (1990) "The Analysis of Mean Sea Level Data from New Zealand for the Period 1899–1988" in The Journal of Geophysical Research, 95, No. 88.
  25. ^ Link test, "Sea-Level Rise Implications for Coastal Protection from Southern Mediterranean to the USA Atlantic Coast." EGU General Assembly Conference Abstracts. Vol. 15. 2013.
  26. ^ Sawyer, Alexandra C.; Toft, Jason D.; Cordell, Jeffery R. (2020). "Seawall as salmon habitat: Eco-engineering improves the distribution and foraging of juvenile Pacific salmon". Ecological Engineering. 151: 105856. doi:10.1016/j.ecoleng.2020.105856. S2CID 218959238.
  27. ^ Sedano, F.; Navarro-Barranco, C.; Guerra-García, J.M.; Espinosa, F. (2020). "Understanding the effects of coastal defence structures on marine biota: The role of substrate composition and roughness in structuring sessile, macro- and meiofaunal communities". Marine Pollution Bulletin. 157: 111334. Bibcode:2020MarPB.15711334S. doi:10.1016/j.marpolbul.2020.111334. PMID 32658698. S2CID 220518548.
  28. ^ Christchurch City Council. (2009) Study of the Effects of Sea Level Rise for Christchurch. Tonkin + Taylor, Christchurch.
  29. ^ [1], "More failing Seawalls in Punta Gorda Isles – NBC-2.com WBBH News for Fort Myers, Cape Coral & Naples, Florida." NBC-2.com. Nbc, 21 Oct. 2013. Web. 21 Feb. 2014.
  30. ^ Does anyone have a reference for this? The closest thing I could find is: "Ancient Roman concrete mixture seawall". Popular Mechanics.
  31. ^ "This village fought sea-level rise 7,000 years ago. The sea won". Washington Post. ISSN 0190-8286. Retrieved 2023-05-03.
  32. ^ Council of Europe. (1999) European code of conduct for coastal zones, Council of Europe, Strasbourg.
  33. ^ Belyea, R (21 January 1992). The Stanley Park Technical Report. Vancouver: Stanley Park Task Force, prepared by Belyea, Sorensen & Associates. P 15.
  34. ^ Steele, Richard M. (1985). The Stanley Park Explorer. Vancouver: Whitecap Books. pp. 23–24.
  35. ^ writer, CHRIS TOMLINSON, Associated Press. "Historic town in eastern India saved from destruction by sea wall built by French". New Bedford Standard-Times. Retrieved 2023-10-04.{{cite web}}: CS1 maint: multiple names: authors list (link)
  36. ^ Allsop, N.W.H. (2002). Breakwaters, coastal structures and coastlines. Thomas Telford. ISBN 0-7277-3042-8..
  37. ^ "The World Factbook". CIA.gov.
  38. ^ Norimitsu Onishi (March 13, 2011). . The Star. Archived from the original on October 24, 2012.
  39. ^ a b Msubi (2011) Seawalls are no Match for Japan Tsunami. Retrieved online 8 April 2011 from: . nippon-sekai.com (Archived copy ed.). Archived from the original on 2012-03-08. Retrieved 2011-04-30.
  40. ^ Craft, Lucy (11 March 2014). "In Tsunami's Wake, Fierce Debate Over Japan's 'Great Wall'". NPR.
  41. ^ "Why big hurricanes weaken before they hit America's coast". The Economist. 7 January 2017. Retrieved 2017-01-20.
  42. ^ Edlund, Ashley (23 November 2022). "'An enormous effort:': Daytona Beach Shores residents seek permanent fix to damaged seawall". Yahoo. Retrieved 25 November 2022.
  43. ^ Barreto, Jessica (23 November 2022). "'It's been a losing battle' : Seawall collapses in South Ponte Vedra as coast reels from storms". Yahoo. Retrieved 25 November 2022.

External links edit

  • Channel Coastal Observatory – Seawalls 2018-12-14 at the Wayback Machine
  • Seawalls and defences on the Isle of Wight 2021-10-09 at the Wayback Machine
  • MEDUS (Maritime Engineering Division University Salerno) 2011-07-22 at the Wayback Machine
  • "Japan may rethink seawalls after tsunami", New York Times, March 14, 2011
  • General overview of residential and small commercial steel seawall construction

seawall, confused, with, breakwater, structure, mole, architecture, revetment, this, article, tone, style, reflect, encyclopedic, tone, used, wikipedia, wikipedia, guide, writing, better, articles, suggestions, july, 2019, learn, when, remove, this, template, . Not to be confused with Breakwater structure Mole architecture or Revetment This article s tone or style may not reflect the encyclopedic tone used on Wikipedia See Wikipedia s guide to writing better articles for suggestions July 2019 Learn how and when to remove this template message A seawall or sea wall is a form of coastal defense constructed where the sea and associated coastal processes impact directly upon the landforms of the coast The purpose of a seawall is to protect areas of human habitation conservation and leisure activities from the action of tides waves or tsunamis 1 As a seawall is a static feature it will conflict with the dynamic nature of the coast and impede the exchange of sediment between land and sea 2 An example of a modern seawall in Ventnor on the Isle of Wight EnglandPeople socializing and walking at the Malecon HavanaSeawall at Urangan QueenslandSeawall designs factor in local climate coastal position wave regime determined by wave characteristics and effectors and value morphological characteristics of landform Seawalls are hard engineering shore based structures that protect the coast from erosion Various environmental issues may arise from the construction of a seawall including the disruption of sediment movement and transport patterns 3 Combined with a high construction cost this has led to increasing use of other soft engineering coastal management options such as beach replenishment Seawalls are constructed from various materials most commonly reinforced concrete boulders steel or gabions Other possible construction materials include vinyl wood aluminum fiberglass composite and biodegradable sandbags made of jute and coir 4 In the UK seawall also refers to an earthen bank used to create a polder or a dike construction The type of material used for construction is hypothesized to affect the settlement of coastal organisms although the precise mechanism has yet to be identified 5 Contents 1 Types 1 1 Natural barriers 2 Trade offs 3 Issues 3 1 Sea level rise 3 2 Hydrostatic water pressure 3 3 Extreme events 3 4 Ecosystem impacts 3 5 Other issues 4 History and examples 4 1 Canada 4 2 India 4 3 Japan 4 4 United States 5 See also 6 References 7 External linksTypes editA seawall works by reflecting incident wave energy back into the sea thus reducing the energy available to cause erosion 6 Seawalls have two specific weaknesses Wave reflection from the wall may result in hydrodynamic scour and subsequent lowering of the sand level of the fronting beach 7 Seawalls may also accelerate the erosion of adjacent unprotected coastal areas by affecting the littoral drift process 8 Different designs of man made tsunami barriers include building reefs and forests to above ground and submerged seawalls 9 Starting just weeks after the disaster in January 2005 India began planting Casuarina and coconut saplings on its coast as a natural barrier against future disasters like the 2004 Indian Ocean earthquake 10 Studies have found that an offshore tsunami wall could reduce tsunami wave heights by up to 83 11 The appropriate seawall design relies on location specific aspects including surrounding erosion processes 12 There are three main types of seawalls vertical curved stepped and mounds see table below Seawall types Type Illustration Advantages Disadvantages ExampleVertical Vertical seawalls are built in particularly exposed situations These reflect wave energy Under storm conditions a non breaking standing wave pattern can form resulting in a stationary clapotic wave which moves up and down but does not travel horizontally 13 14 These waves promote erosion at the toe of the wall and can cause severe damage to the seawall 15 In some cases piles are placed in front of the wall to lessen wave energy slightly nbsp The first implemented most easily designed and constructed type of seawall Vertical seawalls deflect wave energy away from the coast Loose rubble can absorb wave energy These can suffer a lot of expensive damage in a short period of time Vertical design can be undercut by high wave energy environments over a long period of time nbsp Curved Curved or stepped seawalls are designed to enable waves to break to dissipate wave energy and to repel waves back to the sea The curve can also prevent the wave overtopping the wall and provides additional protection for the toe of the wall nbsp Concave structure introduces a dissipative element The curve can prevent waves from overtopping the wall and provides extra protection for the toe of the wall Curved seawalls aim to re direct most of the incident energy resulting in low reflected waves and much reduced turbulence More complex engineering and design process The deflected waves can scour material at the base of the wall causing them to become undermined nbsp Mound Mound type seawalls using revetments or riprap are used in less demanding settings where lower energy erosional processes operate The least exposed sites involve the lowest cost bulkheads and revetments of sand bags or geotextiles These serve to armour the shore and minimise erosion and may be either watertight or porous which allows water to filter through after the wave energy has been dissipated 16 nbsp Current designs use porous designs of rock concrete armour Slope and loose material ensure maximum dissipation of wave energy Lower cost option Shorter life expectancy Cannot withstand or protect from high energy conditions effectively nbsp Natural barriers edit A report published by the United Nations Environment Programme UNEP suggests that the tsunami of 26 December 2004 caused less damage in the areas where natural barriers were present such as mangroves coral reefs or coastal vegetation A Japanese study of this tsunami in Sri Lanka used satellite imagery modelling to establish the parameters of coastal resistance as a function of different types of trees 17 Natural barriers such as coral reefs and mangrove forests prevent the spread of tsunamis and the flow of coastal waters and mitigated the flood and surge of water 18 Trade offs editA cost benefit approach is an effective way to determine whether a seawall is appropriate and whether the benefits are worth the expense Besides controlling erosion consideration must be given to the effects of hardening a shoreline on natural coastal ecosystems and human property or activities A seawall is a static feature which can conflict with the dynamic nature of the coast and impede the exchange of sediment between land and sea The table below summarizes some positive and negative effects of seawalls which can be used when comparing their effectiveness with other coastal management options such as beach nourishment citation needed Advantages and disadvantages of seawalls according to Short 1999 19 Advantages DisadvantagesLong term solution in comparison to soft beach nourishment Effectively minimizes loss of life in extreme events and damage to property caused by erosion Can exist longer in high energy environments in comparison to soft engineering methods Can be used for recreation and sightseeing Forms a hard and strong coastal defense Expensive to construct May be considered aesthetically unattractive Reflected energy of waves leading to scour at base Can disrupt natural shoreline processes and destroy shoreline habitats such as wetlands and intertidal beaches Altered sediment transport processes can disrupt sand movement that can lead to increased erosion down drift from the structure This can cause beaches to dissipate rendering them useless for beach goers nbsp nbsp nbsp 3D simulation of wave motion near a seawall 20 Generally seawalls can be a successful way to control coastal erosion but only if they are constructed well and out of materials that can withstand the force of ongoing wave energy Some understanding is needed of the coastal processes and morphodynamics specific to the seawall location Seawalls can be very helpful they can offer a more long term solution than soft engineering options additionally providing recreation opportunities and protection from extreme events as well as everyday erosion Extreme natural events expose weaknesses in the performance of seawalls and analyses of these can lead to future improvements and reassessment citation needed Issues editSea level rise edit Sea level rise creates an issue for seawalls worldwide as it raises both the mean normal water level and the height of waves during extreme weather events which the current seawall heights may be unable to cope with 21 The most recent analyses of long good quality tide gauge records corrected for GIA and when possible for other vertical land motions by the Global Positioning System GPS indicate a mean rate of sea level rise of 1 6 1 8 mm yr over the twentieth century 22 The Intergovernmental Panel on Climate Change IPCC 1997 23 suggested that sea level rise over the next 50 100 years will accelerate with a projected increase in global mean sea level of 18 cm by 2050 AD This data is reinforced by Hannah 1990 24 who calculated similar statistics including a rise of between 16 19 3 cm throughout 1900 1988 Superstorm Sandy of 2012 is an example of the devastating effects rising sea levels can cause when mixed with a perfect storm Superstorm Sandy sent a storm surge of 4 5 m onto New Jersey s and New York s barrier island and urban shorelines estimated at 70 billion in damage 25 This problem could be overcome by further modeling and determining the extension of height and reinforcement of current seawalls which needs to occur for safety to be ensured in both situations Sea level rise also will cause a higher risk of flooding and taller tsunamis citation needed Hydrostatic water pressure edit Seawalls like all retaining walls must relieve the buildup of water pressure Water pressure buildup is caused when groundwater is not drained from behind the seawall Groundwater against a seawall can be from the area s natural water table rain percolating into the ground behind the wall and waves overtopping the wall The water table can also rise during periods of high water high tide Lack of adequate drainage can cause the seawall to buckle move bow crack or collapse Sinkholes may also develop as the escaping water pressure erodes soil through or around the drainage system citation needed Extreme events edit Extreme events also pose a problem as it is not easy for people to predict or imagine the strength of hurricane or storm induced waves compared to normal expected wave patterns An extreme event can dissipate hundreds of times more energy than everyday waves and calculating structures that will stand the force of coastal storms is difficult and often the outcome can become unaffordable For example the Omaha Beach seawall in New Zealand was designed to prevent erosion from everyday waves only and when a storm in 1976 carved out ten meters behind the existing seawall the whole structure was destroyed 12 Ecosystem impacts edit The addition of seawalls near marine ecosystems can lead to increased shadowing effects in the waters surrounding the seawall Shadowing reduces the light and visibility within the water which may disrupt the distribution as well as foraging capabilities of certain species 26 The sediment surrounding seawalls tends to have less favorable physical properties Higher calcification levels less structural organization of crystalline structure low silicon content and less macroscale roughness when compared to natural shorelines which can present issues for species that reside on the seafloor 27 Other issues edit Some further issues include a lack of long term trend data of seawall effects due to a relatively short duration of data records modeling limitations and comparisons of different projects and their effects being invalid or unequal due to different beach types materials currents and environments 28 Lack of maintenance is also a major issue with seawalls In 2013 more than 5 000 feet 1 500 m of seawall was found to be crumbling in Punta Gorda Florida Residents of the area pay hundreds of dollars each year for a seawall repair program The problem is that most of the seawalls are over a half century old and are being destroyed by only heavy downpours If not kept in check seawalls lose effectiveness and become expensive to repair 29 History and examples edit nbsp A seawall made of rocks in Paravur near Kollam city in India Seawall construction has existed since ancient times In the first century BCE Romans built a seawall or breakwater at Caesarea Maritima creating an artificial harbor Sebastos Harbor The construction used Pozzolana concrete which hardens in contact with seawater Barges were constructed and filled with the concrete They were floated into position and sunk The resulting harbor breakwater seawall is still in existence today more than 2000 years later 30 The oldest known coastal defense is believed to be a 100 meter row of boulders in the Mediterranean Sea off the coast of Israel Boulders were positioned in an attempt to protect the coastal settlement of Tel Hreiz from sea rise following the last glacial maximum Tel Hreiz was discovered in 1960 by divers searching for shipwrecks but the row of boulders was not found until storms cleared a sand cover in 2012 31 More recently seawalls were constructed in 1623 in Canvey Island UK when great floods of the Thames estuary occurred prompting the construction of protection for further events in this flood prone area 32 Since then seawall design has become more complex and intricate in response to an improvement in materials technology and an understanding of how coastal processes operate This section will outline some key case studies of seawalls in chronological order and describe how they have performed in response to tsunamis or ongoing natural processes and how effective they were in these situations Analyzing the successes and shortcomings of seawalls during severe natural events allows their weaknesses to be exposed and areas become visible for future improvement citation needed Canada edit The Vancouver Seawall is a stone seawall constructed around the perimeter of Stanley Park in Vancouver British Columbia The seawall was constructed initially as waves created by ships passing through the First Narrows eroding the area between Prospect Point and Brockton Point Construction of the seawall began in 1917 and since then this pathway has become one of the most used features of the park by both locals and tourists and now extends 22 km in total 33 The construction of the seawall also provided employment for relief workers during the Great Depression and seamen from HMCS Discovery on Deadman s Island who were facing punishment detail in the 1950s Steele 1985 34 Overall the Vancouver Seawall is a prime example of how seawalls can simultaneously provide shoreline protection and a source of recreation which enhances human enjoyment of the coastal environment It also illustrates that although shoreline erosion is a natural process human activities interactions with the coast and poorly planned shoreline development projects can accelerate natural erosion rates citation needed India edit On December 26 2004 towering waves of the 2004 Indian Ocean earthquake tsunami crashed against India s south eastern coastline killing thousands However the former French colonial enclave of Pondicherry escaped unscathed This was primarily due to French engineers who had constructed and maintained a massive stone seawall during the time when the city was a French colony This 300 year old seawall effectively kept Pondicherry s historic center dry even though tsunami waves drove water 24 ft 7 3 m above the normal high tide mark 35 The barrier was initially completed in 1735 and over the years the French continued to fortify the wall piling huge boulders along its 1 25 mi 2 km coastline to stop erosion from the waves pounding the harbor At its highest the barrier running along the water s edge reaches about 27 ft 8 2 m above sea level The boulders some weighing up to a ton are weathered black and brown The seawall is inspected every year and whenever gaps appear or the stones sink into the sand the government adds more boulders to keep it strong 36 The Union Territory of Pondicherry recorded around 600 deaths from the huge tsunami waves that struck India s coast after the mammoth underwater earthquake which measured 9 0 on the moment magnitude scale off Indonesia but most of those killed were fishermen who lived in villages beyond the artificial barrier which reinforces the effectiveness of seawalls citation needed Japan edit At least 43 percent of Japan s 29 751 km 18 486 mi 37 coastline is lined with concrete seawalls or other structures designed to protect the country against high waves typhoons or even tsunamis 38 During the 2011 Tōhoku earthquake and tsunami the seawalls in most areas were overwhelmed In Kamaishi 4 metre 13 ft waves surmounted the seawall the world s largest erected a few years ago in the city s harbor at a depth of 63 m 207 ft a length of 2 km 1 2 mi and a cost of 1 5 billion and eventually submerged the city center 39 The risks of dependence on seawalls were most evident in the crisis at the Fukushima Dai ichi and Fukushima Dai ni nuclear power plants both located along the coast close to the earthquake zone as the tsunami washed over walls that were supposed to protect the plants Arguably the additional defense provided by the seawalls presented an extra margin of time for citizens to evacuate and also stopped some of the full force of energy which would have caused the wave to climb higher in the backs of coastal valleys In contrast the seawalls also acted in a negative way to trap water and delay its retreat citation needed The failure of the world s largest seawall which cost 1 5 billion to construct shows that building stronger seawalls to protect larger areas would have been even less cost effective In the case of the ongoing crisis at the nuclear power plants higher and stronger seawalls should have been built if power plants were to be built at that site Fundamentally the devastation in coastal areas and a final death toll predicted to exceed 10 000 could push Japan to redesign its seawalls or consider more effective alternative methods of coastal protection for extreme events Such hardened coastlines can also provide a false sense of security to property owners and local residents as evident in this situation 39 Seawalls along the Japanese coast have also been criticized for cutting settlements off from the sea making beaches unusable presenting an eyesore disturbing wildlife and being unnecessary 40 United States edit After 2012 s Hurricane Sandy New York City Mayor Bill de Blasio invested 3 billion in a hurricane restoration fund with part of the money dedicated to building new seawalls and protection from future hurricanes 41 A New York Harbor Storm Surge Barrier has been proposed but not voted on or funded by Congress or the State of New York citation needed In Florida tiger dams are used to protect homes near the coast 42 43 See also editBreakwater structure Mole architecture General Coastal management Preventing flooding and erosion of shorelines Hard engineering Construction of hydraulic structures to reduce coastal erosionRelated types of walls Accropode Concrete breakwater element Breakwater structure Coastal defense structure Dike construction Ridge or wall to hold back waterPages displaying short descriptions of redirect targets Levee Ridge or wall to hold back water Retaining wall Artificial wall used for supporting soil between two different elevationsSpecific walls Alaskan Way Seawall Seawall in Seattle Washington Galveston Seawall structure in Galveston Galveston County TexasPages displaying wikidata descriptions as a fallback Georgetown Seawall 280 mile wall in GuyanaPages displaying short descriptions of redirect targets Gold Coast Seawall Saemangeum Seawall Korean coastal defense created as part of a land reclamation project Sea Bright Monmouth Beach Seawall Seawall in New Jersey The Embarcadero San Francisco Waterfront and roadway along San Francisco BayPages displaying short descriptions of redirect targets Walls of Constantinople Sea Walls City walls of Constantinople modern Istanbul Turkey Constantinople seawalls References edit Kamphuis W J 2010 Introduction to Coastal Engineering and Management World Scientific Publishing Co Ltd Singapore Shipman Brian Stojanovic Tim 2007 Facts Fictions and Failures of Integrated Coastal Zone Management in Europe Coastal Management 35 2 3 375 398 Bibcode 2007CoasM 35 375S doi 10 1080 08920750601169659 S2CID 153826622 Kraus N amp McDougal 1996 The Effects of Seawalls on the Beach Part I An Updated Literature Review in Journal of Coastal Research Vol 12 No 3 Clarke J R 1994 Integrated Management of Coastal Zones Fao Corporate Document Repository USA Hsiung AR Tan WT Loke LHL Firth LB and others 2020 Little evidence that lowering the pH of concrete supports greater biodiversity on tropical and temperate seawalls Mar Ecol Prog Ser 656 193 205 Kajendra R 2011 Masselink G and Hughes M J 2003 Introduction to Coastal Processes and Geomorphology Oxford University Press New York Ch 11 NOAA 2007 Shoreline Management Alternatives to Hardening the Shore Retrieved online 15 April 2011 from http coastalmanagement noaa gov shoreline html O Shaughnessy Kathryn A Hawkins Stephen J Evans Ally J Hanley Mick E Lunt Paul Thompson Richard C Francis Robert A Hoggart Simon P G Moore Pippa J Iglesias Gregorio Simmonds David Ducker James Firth Louise B 2020 04 01 Design catalogue for eco engineering of coastal artificial structures a multifunctional approach for stakeholders and end users Urban Ecosystems 23 2 431 443 doi 10 1007 s11252 019 00924 z ISSN 1573 1642 S2CID 209492205 India builds tsunami barrier News 24 January 14 2005 Retrieved March 29 2011 Design of a tsunami barrier to The North of Penang Island Universiti Teknologi Malaysia Institutional Repository 25 November 2010 Archived from the original on 12 November 2017 Retrieved March 29 2011 a b GeoResources 2001 Coastal management Retrieved online 18 April 2011 from GeoResources Geography website Archived from the original on 2012 08 01 Retrieved 2011 04 30 Carter Bill 1989 Coastal environments an introduction to the physical ecological and cultural systems of coastlines Boston Academic Press p 50 ISBN 0 12 161856 0 Matzner Richard A 2001 Dictionary of geophysics astrophysics and astronomy PDF Boca Raton CRC Press p 81 Bibcode 2001dgaa book M ISBN 0 8493 2891 8 Archived from the original PDF on 2007 07 22 Beer Tom 1997 Environmental oceanography Boca Raton CRC Press p 44 ISBN 0 8493 8425 7 the reflected wave energy interacted with the incoming waves to produce standing waves known as clapotis which promote erosion at the toe of the wall Milligan J O riordan T 2007 Governance for Sustainable Coastal Futures Coastal Management 35 4 499 509 Bibcode 2007CoasM 35 499M doi 10 1080 08920750701525800 S2CID 154733601 1 Archived 2011 07 16 at the Wayback Machine Satellite imagery and modelling show how forests cushion the impact of tsunamis Tsunami Barriers Science NetLinks Retrieved March 30 2011 Short A 1999 Handbook of Beach and Shoreface Morphodynamics John Wiley and Sons Ltd Ch 7 MEDUS 2011 Marine Engineering Division of University of Salerno Retrieved online 10 April 2011 from http www diciv unisa it docenti dentale medus php Archived 2011 07 22 at the Wayback Machine MEDUS Allan J C Kirk R M Hemmingsen M amp Hart D 1999 Coastal Processes in Southern Pegasus Bay A Review A Report to Woodward Clyde New Zealand Ltd and the Christchurch City Council Land and Water Studies Ltd Christchurch Cazenave Anny 2014 Sea level rise and its coastal impacts Earth s Future 2 2 15 34 Bibcode 2014EaFut 2 15C doi 10 1002 2013EF000188 Intergovernmental Panel on Climate Change 2007 IPCC Fourth Assessment Report Climate Change 2007 Retrieved Online 15 April 2011 from www ipcc ch publications and data publications and data reports Hannah J 1990 The Analysis of Mean Sea Level Data from New Zealand for the Period 1899 1988 in The Journal of Geophysical Research 95 No 88 Link test Sea Level Rise Implications for Coastal Protection from Southern Mediterranean to the USA Atlantic Coast EGU General Assembly Conference Abstracts Vol 15 2013 Sawyer Alexandra C Toft Jason D Cordell Jeffery R 2020 Seawall as salmon habitat Eco engineering improves the distribution and foraging of juvenile Pacific salmon Ecological Engineering 151 105856 doi 10 1016 j ecoleng 2020 105856 S2CID 218959238 Sedano F Navarro Barranco C Guerra Garcia J M Espinosa F 2020 Understanding the effects of coastal defence structures on marine biota The role of substrate composition and roughness in structuring sessile macro and meiofaunal communities Marine Pollution Bulletin 157 111334 Bibcode 2020MarPB 15711334S doi 10 1016 j marpolbul 2020 111334 PMID 32658698 S2CID 220518548 Christchurch City Council 2009 Study of the Effects of Sea Level Rise for Christchurch Tonkin Taylor Christchurch 1 More failing Seawalls in Punta Gorda Isles NBC 2 com WBBH News for Fort Myers Cape Coral amp Naples Florida NBC 2 com Nbc 21 Oct 2013 Web 21 Feb 2014 Does anyone have a reference for this The closest thing I could find is Ancient Roman concrete mixture seawall Popular Mechanics This village fought sea level rise 7 000 years ago The sea won Washington Post ISSN 0190 8286 Retrieved 2023 05 03 Council of Europe 1999 European code of conduct for coastal zones Council of Europe Strasbourg Belyea R 21 January 1992 The Stanley Park Technical Report Vancouver Stanley Park Task Force prepared by Belyea Sorensen amp Associates P 15 Steele Richard M 1985 The Stanley Park Explorer Vancouver Whitecap Books pp 23 24 writer CHRIS TOMLINSON Associated Press Historic town in eastern India saved from destruction by sea wall built by French New Bedford Standard Times Retrieved 2023 10 04 a href Template Cite web html title Template Cite web cite web a CS1 maint multiple names authors list link Allsop N W H 2002 Breakwaters coastal structures and coastlines Thomas Telford ISBN 0 7277 3042 8 The World Factbook CIA gov Norimitsu Onishi March 13 2011 Japan s Seawalls Didn t Provide Security from tsunami The Star Archived from the original on October 24 2012 a b Msubi 2011 Seawalls are no Match for Japan Tsunami Retrieved online 8 April 2011 from great east japan earthquake of 2011 sea walls were no match for this tsunami nippon sekai com Archived copy ed Archived from the original on 2012 03 08 Retrieved 2011 04 30 Craft Lucy 11 March 2014 In Tsunami s Wake Fierce Debate Over Japan s Great Wall NPR Why big hurricanes weaken before they hit America s coast The Economist 7 January 2017 Retrieved 2017 01 20 Edlund Ashley 23 November 2022 An enormous effort Daytona Beach Shores residents seek permanent fix to damaged seawall Yahoo Retrieved 25 November 2022 Barreto Jessica 23 November 2022 It s been a losing battle Seawall collapses in South Ponte Vedra as coast reels from storms Yahoo Retrieved 25 November 2022 External links edit nbsp Wikimedia Commons has media related to Seawalls nbsp Look up seawall in Wiktionary the free dictionary Channel Coastal Observatory Seawalls Archived 2018 12 14 at the Wayback Machine Seawalls and defences on the Isle of Wight Archived 2021 10 09 at the Wayback Machine MEDUS Maritime Engineering Division University Salerno Archived 2011 07 22 at the Wayback Machine Japan may rethink seawalls after tsunami New York Times March 14 2011 General overview of residential and small commercial steel seawall construction Retrieved from https en wikipedia org w index php title Seawall amp oldid 1184210939, wikipedia, wiki, book, books, library,

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