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An ocean current is a continuous, directed movement of seawater generated by a number of forces acting upon the water, including wind, the Coriolis effect, breaking waves, cabbeling, and temperature and salinity differences.[1] Depth contours, shoreline configurations, and interactions with other currents influence a current's direction and strength. Ocean currents move both horizontally, on scales that can span entire oceans, as well as vertically, with vertical currents (upwelling and downwelling) playing an important role in the movement of nutrients and gases, such as carbon dioxide, between the surface and the deep ocean.
Ocean currents flow for great distances and together they create the global conveyor belt, which plays a dominant role in determining the climate of many of Earth's regions. More specifically, ocean currents influence the temperature of the regions through which they travel. For example, warm currents traveling along more temperate coasts increase the temperature of the area by warming the sea breezes that blow over them. Perhaps the most striking example is the Gulf Stream, which, together with its extension the North Atlantic Drift, makes northwest Europe much more temperate for its high latitude than other areas at the same latitude. Another example is Lima, Peru, whose cooler subtropical climate contrasts with that of its surrounding tropical latitudes because of the Humboldt Current.
The largest ocean current is the Antarctic Circumpolar Current (ACC), a wind-driven current which flows clockwise uninterrupted around Antarctica. The ACC connects all the ocean basins together, and also provides a link between the atmosphere and the deep ocean due to the way water upwells and downwells on either side of it.
Ocean currents are patterns of water movement that influence climate zones and weather patterns around the world. They are primarily driven by winds and by seawater density, although many other factors influence them – including the shape and configuration of the ocean basin they flow through. The two basic types of currents – surface and deep-water currents – help define the character and flow of ocean waters across the planet.the ocean current is divided in to two warm ocean current and cold ocean current
Causes
editOcean currents are driven by the wind, by the gravitational pull of the moon in the form of tides, and by the effects of variations in water density.[4] Ocean dynamics define and describe the motion of water within the oceans.
Ocean temperature and motion fields can be separated into three distinct layers: mixed (surface) layer, upper ocean (above the thermocline), and deep ocean. Ocean currents are measured in units of sverdrup (Sv), where 1 Sv is equivalent to a volume flow rate of 1,000,000 m3 (35,000,000 cu ft) per second.
There are two main types of currents, surface currents and deep water currents. Generally surface currents are driven by wind systems and deep water currents are driven by differences in water density due to variations in water temperature and salinity.[5]
Wind-driven circulation
editSurface oceanic currents are driven by wind currents, the large scale prevailing winds drive major persistent ocean currents, and seasonal or occasional winds drive currents of similar persistence to the winds that drive them,[6] and the Coriolis effect plays a major role in their development.[7] The Ekman spiral velocity distribution results in the currents flowing at an angle to the driving winds, and they develop typical clockwise spirals in the northern hemisphere and counter-clockwise rotation in the southern hemisphere.[8] In addition, the areas of surface ocean currents move somewhat with the seasons; this is most notable in equatorial currents.
Deep ocean basins generally have a non-symmetric surface current, in that the eastern equator-ward flowing branch is broad and diffuse whereas the pole-ward flowing western boundary current is relatively narrow.
Thermohaline circulation
editLarge scale currents are driven by gradients in water density, which in turn depend on variations in temperature and salinity. This thermohaline circulation is also known as the ocean's conveyor belt. Where significant vertical movement of ocean currents is observed, this is known as upwelling and downwelling. The adjective thermohaline derives from thermo- referring to temperature and -haline referring to salt content, factors which together determine the density of seawater.
The thermohaline circulation is a part of the large-scale ocean circulation that is driven by global density gradients created by surface heat and freshwater fluxes.[9][10] Wind-driven surface currents (such as the Gulf Stream) travel polewards from the equatorial Atlantic Ocean, cooling en route, and eventually sinking at high latitudes (forming North Atlantic Deep Water). This dense water then flows into the ocean basins. While the bulk of it upwells in the Southern Ocean, the oldest waters (with a transit time of around 1000 years)[11] upwell in the North Pacific.[12] Extensive mixing therefore takes place between the ocean basins, reducing differences between them and making the Earth's oceans a global system. On their journey, the water masses transport both energy (in the form of heat) and matter (solids, dissolved substances and gases) around the globe. As such, the state of the circulation has a large impact on the climate of the Earth. The thermohaline circulation is sometimes called the ocean conveyor belt, the great ocean conveyor, or the global conveyor belt. On occasion, it is imprecisely used to refer to the meridional overturning circulation, (MOC).
Since the 2000s an international program called Argo has been mapping the temperature and salinity structure of the ocean with a fleet of automated platforms that float with the ocean currents. The information gathered will help explain the role the oceans play in the earth's climate.[13]
Effects on climate and ecology
editOcean currents affect temperatures throughout the world. For example, the ocean current that brings warm water up the north Atlantic to northwest Europe also cumulatively and slowly blocks ice from forming along the seashores, which would also block ships from entering and exiting inland waterways and seaports, hence ocean currents play a decisive role in influencing the climates of regions through which they flow.[14] Ocean currents are important in the study of marine debris.[15][16]
Upwellings and cold ocean water currents flowing from polar and sub-polar regions bring in nutrients that support plankton growth, which are crucial prey items for several key species in marine ecosystems.[17]
Ocean currents are also important in the dispersal and distribution of many organisms, inclusing those with pelagic egg or larval stages.[18] An example is the life-cycle of the European Eel. Terrestrial species, for example tortoises and lizards, can be carried on floating debris by currents to colonise new terrestrial areas and islands.[18]
Ocean currents and climate change
editThe continued rise of atmospheric temperatures is anticipated to have various effects on the strength of surface ocean currents, wind-driven circulation and dispersal patterns.[19][20][21] Ocean currents play a significant role in influencing climate, and shifts in climate in turn impact ocean currents.[20]
Over the last century, reconstructed sea surface temperature data reveal that western boundary currents are heating at double the rate of the global average.[22] These observations indicate that the western boundary currents are likely intensifying due to this change in temperature, and may continue to grow stronger in the near future.[20] There is evidence that surface warming due to anthropogenic climate change has accelerated upper ocean currents in 77% of the global ocean.[21] Specifically, increased vertical stratification due to surface warming intensifies upper ocean currents, while changes in horizontal density gradients caused by differential warming across different ocean regions results in the acceleration of surface zonal currents.[21]
There are suggestions that the Atlantic meridional overturning circulation (AMOC) is in danger of collapsing due to climate change, which would have extreme impacts on the climate of northern Europe and more widely,[23][24][25] although this topic is controversial and remains an active area of research.[26][27][28] The "State of the cryosphere" report, dedicates significant space to AMOC, saying it may be enroute to collapse because of ice melt and water warming. In the same time, the Antarctic Circumpolar Current (ACC) is also slowing down and is expected to lose 20% of it power by the year 2050, "with widespread impacts on ocean circulation and climate".[29] UNESCO mentions that the report in the first time "notes a growing scientific consensus that melting Greenland and Antarctic ice sheets, among other factors, may be slowing important ocean currents at both poles, with potentially dire consequences for a much colder northern Europe and greater sea-level rise along the U.S. East Coast."[30]
In addition to water surface temperatures, the wind systems are a crucial determinant of ocean currents.[31] Wind wave systems influence oceanic heat exchange, the condition of the sea surface, and can alter ocean currents.[32] In the North Atlantic, equatorial Pacific, and Southern Ocean, increased wind speeds as well as significant wave heights have been attributed to climate change and natural processes combined.[32] In the East Australian Current, global warming has also been accredited to increased wind stress curl, which intensifies these currents, and may even indirectly increase sea levels, due to the additional warming created by stronger currents.[33]
As ocean circulation changes due to climate, typical distribution patterns are also changing. The dispersal patterns of marine organisms depend on oceanographic conditions, which as a result, influence the biological composition of oceans.[19] Due to the patchiness of the natural ecological world, dispersal is a species survival mechanism for various organisms.[34] With strengthened boundary currents moving toward the poles, it is expected that some marine species will be redirected to the poles and greater depths.[19][35] The strengthening or weakening of typical dispersal pathways by increased temperatures are expected to not only impact the survival of native marine species due to inability to replenish their meta populations but also may increase the prevalence of invasive species.[19] In Japanese corals and macroalgae, the unusual dispersal pattern of organisms toward the poles may destabilize native species.[36]
Economic importance
editKnowledge of surface ocean currents is essential in reducing costs of shipping, since traveling with them reduces fuel costs. In the wind powered sailing-ship era, knowledge of wind patterns and ocean currents was even more essential. Using ocean currents to help their ships into harbor and using currents such as the gulf stream to get back home.[37] The lack of understanding of ocean currents during that time period is hypothesized to be one of the contributing factors to exploration failure. The Gulf Stream and the Canary current keep western European countries warmer and less variable, while at the same latitude North America's weather was colder.[38] A good example of this is the Agulhas Current (down along eastern Africa), which long prevented sailors from reaching India.
In recent times, around-the-world sailing competitors make good use of surface currents to build and maintain speed. Ocean currents can also be used for marine power generation, with areas of Japan, Florida and Hawaii being considered for test projects. The utilization of currents today can still impact global trade, it can reduce the cost and emissions of shipping vessels.[39]
Ocean currents can also impact the fishing industry, examples of this include the Tsugaru, Oyashio and Kuroshio currents all of which influence the western North Pacific temperature, which has been shown to be a habitat predictor for the Skipjack tuna.[40] It has also been shown that it is not just local currents that can affect a country's economy, but neighboring currents can influence the viability of local fishing industries.[41]
Distribution
editCurrents of the Arctic Ocean
- Baffin Island Current – Arctic Ocean current
- Beaufort Gyre – Wind-driven ocean current in the Arctic Ocean polar region
- East Greenland Current – Current from Fram Strait to Cape Farewell off the eastern coat of Greenland
- East Iceland Current – Cold water ocean current that forms as a branch of the East Greenland Current
- Labrador Current – Cold current in the Atlantic ocean along the coasts of Labrador, Newfoundland and Nova Scotia
- North Icelandic Jet – Deep-reaching current that flows along the continental slope of Iceland
- Norwegian Current – Current that flows northeasternly along the Atlantic coast of Norway
- Transpolar Drift Stream – An ocean current of the Arctic Ocean
- West Greenland Current – Weak cold water current that flows to the north along the west coast of Greenland
- West Spitsbergen Current – Warm, salty current that runs poleward just west of Spitsbergen
Currents of the Atlantic Ocean
- Angola Current – Temporary ocean surface current
- Antilles Current – Ocean current
- Atlantic meridional overturning circulation – System of surface and deep currents in the Atlantic Ocean
- Azores Current – Ocean current in the North Atlantic Ocean
- Benguela Current – Ocean current in the South Atlantic
- Brazil Current – Warm current that flows south along the Brazilian south coast to the mouth of the Río de la Plata
- Canary Current – Wind-driven surface current that is part of the North Atlantic Gyre
- Cape Horn Current – Cold water current that flows west-to-east around Cape Horn
- Caribbean Current – Atlantic Ocean current
- East Greenland Current – Current from Fram Strait to Cape Farewell off the eastern coat of Greenland
- East Iceland Current – Cold water ocean current that forms as a branch of the East Greenland Current
- Equatorial Counter Current – Shallow eastward flowing current found in the Atlantic, Indian, and Pacific Oceans
- Falkland Current – Northward cold water Atlantic Ocean current
- Florida Current – Thermal ocean current
- Guinea Current – A slow warm water current that flows to the east along the Guinea coast of West Africa
- Gulf Stream – Warm Atlantic Ocean current
- Irminger Current – north Atlantic current setting westward off the southwest coast of Iceland
- Labrador Current – Cold current in the Atlantic ocean along the coasts of Labrador, Newfoundland and Nova Scotia
- Lomonosov Current – Deep current in the Atlantic Ocean. from the coast of Brazil to the Gulf of Guinea
- Loop Current – Ocean current between Cuba and Yucatán Peninsula
- North Atlantic Current – Current of the Atlantic Ocean
- North Brazil Current – North Atlantic ocean current
- North Equatorial Current – Current in the Pacific and Atlantic Oceans
- Norwegian Current – Current that flows northeasternly along the Atlantic coast of Norway
- Portugal Current – Weak ocean current that flows south along the coast of Portugal
- South Atlantic Current – Eastward ocean current, fed by the Brazil Current
- South Equatorial Current – Ocean current in the Pacific, Atlantic, and Indian Ocean
- West Greenland Current – Weak cold water current that flows to the north along the west coast of Greenland
- West Spitsbergen Current – Warm, salty current that runs poleward just west of Spitsbergen
Currents of the Indian Ocean
- Agulhas Current – Western boundary current of the southwest Indian Ocean that flows down the east coast of Africa
- Agulhas Return Current – Ocean current in the southern Indian Ocean
- East Madagascar Current – Oceanic flow feature near Madagascar
- Equatorial Counter Current – Shallow eastward flowing current found in the Atlantic, Indian, and Pacific Oceans
- Indian Monsoon Current – Seasonally-varying ocean current regime found in the tropical regions of the northern Indian Ocean
- Indonesian Throughflow – Ocean current
- Leeuwin Current – Ocean current off Western Australia
- Madagascar Current – Ocean current in the West Indian Ocean
- Mozambique Current – Warm ocean current in the Indian Ocean
- North Madagascar Current – Ocean current near Madagascar that flows into the South Equatorial Current
- Somali Current – Ocean boundary current that flows along the coast of Somalia and Oman in the Western Indian Ocean
- South Equatorial Current – Ocean current in the Pacific, Atlantic, and Indian Ocean
- Southwest Madagascar Coastal Current – Warm poleward ocean current flowing in the south-west of Madagascar
- West Australian Current – Cool oceanic current
Currents of the Pacific Ocean
- Alaska Current – Warm-water current flowing nortwards along the coast of British Columbia and the Alaska Panhandle
- Aleutian Current – Eastward-flowing ocean current which lies north of the North Pacific Current;
- California Current – Pacific Ocean current
- Cape Horn Current – Cold water current that flows west-to-east around Cape Horn
- Cromwell Current – Eastward-flowing subsurface current that extends along the equator in the Pacific Ocean
- Davidson Current – Countercurrent of the Pacific Ocean
- East Australian Current – Currents of the Pacific Ocean
- East Korea Warm Current – Ocean current in the Sea of Japan
- Equatorial Counter Current – Shallow eastward flowing current found in the Atlantic, Indian, and Pacific Oceans
- Humboldt Current – Current of the Pacific Ocean
- Indonesian Throughflow – Ocean current
- Kamchatka Current – Pacific Ocean current
- Kuroshio Current – North flowing ocean current on the west side of the North Pacific Ocean
- Mindanao Current – Narrow, southward-flowing ocean current along the southeastern coast of the Philippines
- Mindanao Eddy – Semi-permanent cold-ring eddy formed in the retroflection area of the Mindanao Current.
- North Equatorial Current – Current in the Pacific and Atlantic Oceans
- North Korea Cold Current – Cold water current in the Sea of Japan
- North Pacific Current – Ocean current, Japan to British Columbia
- Oyashio Current – Cold subarctic ocean current in the Pacific Ocean
- South Equatorial Current – Ocean current in the Pacific, Atlantic, and Indian Ocean
- Subtropical Countercurrent – Narrow eastward ocean current in the central North Pacific Ocean
- Tasman Front – Pacific Ocean current
- Tasman Outflow – Deepwater current that flows from the Pacific Ocean past Tasmania into the Indian Ocean
Currents of the Southern Ocean
- Antarctic Circumpolar Current – Ocean current that flows clockwise from west to east around Antarctica
- Tasman Outflow – Deepwater current that flows from the Pacific Ocean past Tasmania into the Indian Ocean
- Kerguelen deep western boundary current[2][3]
- Beaufort Gyre – Wind-driven ocean current in the Arctic Ocean polar region
- Indian Ocean Gyre – Major oceanic gyre in the Indian Ocean
- North Atlantic Gyre – Major circular system of ocean currents
- North Pacific Gyre – Major circulating system of ocean currents
- Ross Gyre – Circulating system of ocean currents in the Ross Sea
- South Atlantic Gyre – Subtropical gyre in the south Atlantic Ocean
- South Pacific Gyre – Major circulating system of ocean currents
- Weddell Gyre – One of two gyres within the Southern Ocean
See also
edit- Currentology – Science that studies the internal movements of water masses
- Deep ocean water – Cold, salty water deep below the surface of Earth's oceans
- Fish migration – Movement of fishes from one part of a water body to another on a regular basis
- Geostrophic current – Oceanic flow in which the pressure gradient force is balanced by the Coriolis effect
- Latitude of the Gulf Stream and the Gulf Stream north wall index
- List of ocean circulation models – Models used in physical oceanography.
- Marine habitats § Ocean currents
- Marine current power – Extraction of power from ocean currents
- Ocean gyre – Any large system of circulating ocean surface currents
- Physical oceanography – Study of physical conditions and processes within the ocean
- Subsurface ocean current – Oceanic currents that flow beneath surface currents
- Thermohaline circulation – Part of large-scale ocean circulation
- Tidal current – Flow of water induced by astronomical gravitational effects
- Volta do mar – Archaic navigational technique
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Further reading
edit- Hansen, B.; Østerhus, S; Quadfasel, D; Turrell, W (2004). "Already the day after tomorrow?". Science. 305 (5686): 953–954. doi:10.1126/science.1100085. PMID 15310882. S2CID 12968045.
- Kerr, Richard A. (2004). "A slowing cog in the North Atlantic ocean's climate machine". Science. 304 (5669): 371–372. doi:10.1126/science.304.5669.371a. PMID 15087513. S2CID 42150417.
- Munday, Phillip L.; Jones, Geoffrey P.; Pratchett, Morgan S.; Williams, Ashley J. (2008). "Climate change and the future for coral reef fishes". Fish and Fisheries. 9 (3): 261–285. Bibcode:2008AqFF....9..261M. doi:10.1111/j.1467-2979.2008.00281.x.
- Rahmstorf, S. (2003). "Thermohaline circulation: The current climate". Nature. 421 (6924): 699. Bibcode:2003Natur.421..699R. doi:10.1038/421699a. PMID 12610602. S2CID 4414604.
- Roemmich, D. (2007). "Physical oceanography: Super spin in the southern seas". Nature. 449 (7158): 34–35. Bibcode:2007Natur.449...34R. doi:10.1038/449034a. PMID 17805284. S2CID 2951110.