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Water column biogeochemistry of oxygen minimum zones in the eastern tropical North Atlantic and eastern tropical South Pacific oceans

机译:东热带北大西洋东部和东部热带南太平洋的水柱生物地球化学氧气最小区

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Recent modeling results suggest that oceanic oxygen levels will decrease significantly over the next decades to centuries in response to climate change and altered ocean circulation. Hence, the future ocean may experience major shifts in nutrient cycling triggered by the expansion and intensification of tropical oxygen minimum zones (OMZs), which are connected to the most productive upwelling systems in the ocean. There are numerous feedbacks among oxygen concentrations, nutrient cycling and biological productivity; however, existing knowledge is insufficient to understand physical, chemical and biological interactions in order to adequately assess past and potential future changes. brbr In the following, we summarize one decade of research performed in the framework of the Collaborative Research Center 754 (SFB754) focusing on climate–biogeochemistry interactions in tropical OMZs. We investigated the influence of low environmental oxygen conditions on biogeochemical cycles, organic matter formation and remineralization, greenhouse gas production and the ecology in OMZ regions of the eastern tropical South Pacific compared to the weaker OMZ of the eastern tropical North Atlantic. Based on our findings, a coupling of primary production and organic matter export via the nitrogen cycle is proposed, which may, however, be impacted by several additional factors, e.g., micronutrients, particles acting as microniches, vertical and horizontal transport of organic material and the role of zooplankton and viruses therein.
机译:最近的建模结果表明,在未来几十年里,海洋氧气水平将减少几个世纪以来,以应对气候变化和发生变化的海洋循环。因此,未来的海洋可能会在热带氧气最小区域(OMZS)的膨胀和强化引发的营养循环中经历主要变化,这些循环最小区域(OMZ)连接到海洋中最富有成效的上升系统。氧气浓度,营养循环和生物生产力存在许多反馈;然而,现有知识不足以了解物理,化学和生物互动,以充分评估过去和潜在的未来变化。 在下文中,我们总结了在协作研究中心754(SFB754)的框架中进行的研究,其专注于热带OMZ的气候生物化学化学相互作用。我们调查了低环境氧气条件对生物地球化学循环,有机物质形成和再矿化,温室气体生产和东部热带南太平洋的欧姆地区生态学的影响,而东部热带北大西洋的弱势南部。基于我们的研究结果,提出了通过氮循环的初级生产和有机物质出口的偶联,这可能受到几种额外因素,例如微量营养素,作用为微米素的颗粒,有机材料的垂直和水平传输Zooplankton和病毒在其中的作用。

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