{"id":44991,"date":"2015-06-01T01:39:00","date_gmt":"2015-05-31T23:39:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/environment\/dead-zones-found-in-atlantic-open-waters.html"},"modified":"2015-06-01T01:39:00","modified_gmt":"2015-05-31T23:39:00","slug":"dead-zones-found-in-atlantic-open-waters","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/environment\/dead-zones-found-in-atlantic-open-waters\/","title":{"rendered":"\u2018Dead zones\u2019 found in Atlantic open waters"},"content":{"rendered":"<p>A team of German and Canadian researchers have discovered areas with extremely low levels of oxygen in the tropical North Atlantic, several hundred kilometres off the coast of West Africa.<\/p>\n<p> <!--more--> <\/p>\n<p>The levels measured in these &lsquo;dead zones&rsquo;, inhabitable for  most marine animals, are the lowest ever recorded in Atlantic open  waters. The dead zones are created in eddies, large swirling masses of  water that slowly move westward. Encountering an island, they could  potentially lead to mass fish kills. The research is published today in <a href=\"http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">Biogeosciences<\/a>, an open access journal of the European Geosciences Union (EGU).<\/p>\n<p>Dead zones are areas of the ocean depleted of oxygen. Most marine  animals, like fish and crabs, cannot live within these regions, where  only certain microorganisms can survive. In addition to the  environmental impact, dead zones are an economic concern for commercial  fishing, with very low oxygen concentrations having been linked to  reduced fish yields in the Baltic Sea and other parts of the world. <\/p>\n<p>&ldquo;Before our study, it was thought that the open waters of the North  Atlantic had minimum oxygen concentrations of about 40 micromol per  litre of seawater, or about one millilitre of dissolved oxygen per litre  of seawater,&rdquo; says lead-author Johannes Karstensen, a researcher at GEOMAR,  the Helmholtz Centre for Ocean Research Kiel, in Kiel, Germany. This  concentration of oxygen is low, but still allows most fish to survive.  In contrast, the minimum levels of oxygen now measured are some 20 times  lower than the previous minimum, making the dead zones nearly void of  all oxygen and unsuitable for most marine animals.<\/p>\n<p>Dead zones are most common near inhabited coastlines where rivers  often carry fertilisers and other chemical nutrients into the ocean,  triggering algae blooms. As the algae die, they sink to the seafloor and  are decomposed by bacteria, which use up oxygen in this process.  Currents in the ocean can carry these low-oxygen waters away from the  coast, but a dead zone forming in the open ocean had not yet been  discovered.<\/p>\n<p>The newly discovered dead zones are unique in that they form within  eddies, large masses of water spinning in a whirlpool pattern. &ldquo;The few  eddies we observed in greater detail may be thought of as rotating  cylinders of 100 to 150 km in diameter and a height of several hundred  metres, with the dead zone taking up the upper 100 metres or so,&rdquo;  explains Karstensen. The area around the dead-zone eddies remains rich  in oxygen.<\/p>\n<p>&ldquo;The fast rotation of the eddies makes it very difficult to exchange  oxygen across the boundary between the rotating current and the  surrounding ocean. Moreover, the circulation creates a very shallow  layer &ndash; of a few tens of meters &ndash; on top of the swirling water that  supports intense plant growth,&rdquo; explains Karstensen. This plant growth  is similar to the algae blooms occurring in coastal areas, with bacteria  in the deeper waters consuming the available oxygen as they decompose  the sinking plant matter. &ldquo;From our measurements, we estimated that the  oxygen consumption within the eddies is some five times larger than in  normal ocean conditions.&rdquo;<\/p>\n<p>The eddies studied in the <a href=\"http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">Biogeosciences<\/a>  article form where a current that flows along the West African coast  becomes unstable. They then move slowly to the west, for many months,  due to the Earth&rsquo;s rotation. &ldquo;Depending on factors such as the [eddies&rsquo;]  speed of rotation and the plant growth, the initially fairly oxygenated  waters get more and more depleted and the dead zones evolve within the  eddies,&rdquo; explains Karstensen. The team reports concentrations ranging  from close to no oxygen to no more than 0.3 millilitres of oxygen per  litre of seawater. These values are all the more dramatic when compared  to the levels of oxygen at shallow depths just outside the eddies, which  can be up to 100 times higher than those within.<\/p>\n<p>The researchers have been conducting observations in the region off  the West African coast and around the Cape Verde Islands for the past  seven years, measuring not only oxygen concentrations in the ocean but  also water movements, temperature and salinity. To study the dead zones,  they used several tools, including drifting floats that often got  trapped within the eddies. To measure plant growth, they used satellite  observations of ocean surface colour.<\/p>\n<p>Their observations allowed them to measure the properties of the  dead zones, as well as study their impact in the ecosystem. Zooplankton &ndash;  small animals that play an important role in marine food webs &ndash; usually  come up to the surface at night to feed on plants and hide in the  deeper, dark waters during the day to escape predators. However, within  the eddies, the researchers noticed that zooplankton remained at the  surface, even during the day, not entering the low-oxygen environment  underneath. <\/p>\n<p>&ldquo;Another aspect related to the ecosystem impact has a socioeconomic  dimension,&rdquo; says Karstensen. &ldquo;Given that the few dead zones we observed  propagated less than 100 km north of the Cape Verde archipelago, it is  not unlikely that an open-ocean dead zone will hit the islands at some  point. This could cause the coast to be flooded with low-oxygen water,  which may put severe stress on the coastal ecosystems and may even  provoke fish kills and the die-off of other marine life.&rdquo; <\/p>\n<p>###<\/p>\n<p><em>Please mention the name of the publication (Biogeosciences) if  reporting on this story and, if reporting online, include a link to the  paper (<a href=\"http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html<\/a>) or to the journal website (<a href=\"http:\/\/www.biogeosciences.net\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">http:\/\/www.biogeosciences.net<\/a>).<\/em><\/p>\n<h4>More information<\/h4>\n<p>This research is presented in the paper &lsquo;Open ocean dead zones in the tropical North Atlantic Ocean&rsquo;, published in the EGU open access journal Biogeosciences on 30 April 2015.<\/p>\n<p>Citation: Karstensen, J., Fiedler, B., Sch&uuml;tte, F., Brandt, P.,  K&ouml;rtzinger, A., Fischer, G., Zantopp, R., Hahn, J., Visbeck, M., and  Wallace, D.: <a href=\"http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">Open ocean dead zones in the tropical North Atlantic Ocean<\/a>, Biogeosciences, 12, 2597-2605, doi:10.5194\/bg-12-2597-2015, 2015.<\/p>\n<p>The team is composed of J. Karstensen, B. Fiedler, F. Sch&uuml;tte, P. Brandt and A. K&ouml;rtzinger (GEOMAR Helmholtz Centre for Ocean Research Kiel, Germany), G. Fischer (Faculty of Geosciences and MARUM, University of Bremen, Germany), R. Zantopp, J. Hahn and M. Visbeck (GEOMAR), and D. Wallace (Halifax Marine Research Institute, Canada).<\/p>\n<p>The <strong>European Geosciences Union (<a href=\"http:\/\/www.egu.eu\">EGU<\/a>)<\/strong>  is Europe&rsquo;s premier geosciences union, dedicated to the pursuit of  excellence in the Earth, planetary, and space sciences for the benefit  of humanity, worldwide. It is a non-profit interdisciplinary learned  association of scientists founded in 2002. The EGU  has a current portfolio of 17 diverse scientific journals, which use an  innovative open access format, and organises a number of topical  meetings, and education and outreach activities. Its annual General  Assembly is the largest and most prominent European geosciences event,  attracting over 11,000 scientists from all over the world. The meeting&rsquo;s  sessions cover a wide range of topics, including volcanology, planetary  exploration, the Earth&rsquo;s internal structure and atmosphere, climate,  energy, and resources. The EGU 2016 General  Assembly is taking place in Vienna, Austria, from 17 to 22 April 2016.  For information about meeting and press registration, please check <a href=\"http:\/\/media.egu.eu\">http:\/\/media.egu.eu<\/a> closer to the time of the conference, or follow the EGU on <a href=\"https:\/\/twitter.com\/EuroGeosciences\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">Twitter<\/a> and <a href=\"http:\/\/www.facebook.com\/EuropeanGeosciencesUnion\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">Facebook<\/a>.<\/p>\n<p>If you wish to receive our press releases via email, please use the Press Release Subscription Form at <a href=\"http:\/\/www.egu.eu\/news\/subscribe\/\">http:\/\/www.egu.eu\/news\/subscribe\/<\/a>. Subscribed journalists and other members of the media receive EGU press releases under embargo (if applicable) 24 hours in advance of public dissemination.<\/p>\n<h4>Links<\/h4>\n<ul>\n<li>Scientific paper: <a href=\"http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">http:\/\/www.biogeosciences.net\/12\/2597\/2015\/bg-12-2597-2015.html<\/a><\/li>\n<li>Journal &ndash; Biogeosciences: <a href=\"http:\/\/www.biogeosciences.net\/\" target=\"_blank\" title=\"Opens external link in new window\" rel=\"noopener noreferrer\">http:\/\/www.biogeosciences.net\/<\/a><\/li>\n<\/ul>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"https:\/\/www.egu.eu\/news\/165\/dead-zones-found-in-atlantic-open-waters\/\" target=\"_blank\" rel=\"noopener noreferrer\">European Geosciences Union 2015<\/a><\/p>\n<div class=\"shariff shariff-align-flex-start shariff-widget-align-flex-start\"><div 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