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Understanding why the volume of suboxic waters does not increase over centuries of global warming in an Earth System Model

机译:了解为什么对地球系统模型中的全球变暖的数量没有增加几个世纪

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Global warming is expected to reduce oxygen solubility and vertical exchange in the ocean, changes which would be expected to result in an increase in the volume of hypoxic waters. A simulation made with a full Earth System model with dynamical atmosphere, ocean, sea ice and biogeochemical cycling (the Geophysical Fluid Dynamics Laboratory's Earth System Model 2.1) shows that this holds true if the condition for hypoxia is set relatively high. However, the volume of the most hypoxic (i.e., suboxic) waters does not increase under global warming, as these waters actually become more oxygenated. We show that the rise in dissolved oxygen in the tropical Pacific is associated with a drop in ventilation time. A term-by-term analysis within the least oxygenated waters shows an increased supply of dissolved oxygen due to lateral diffusion compensating an increase in remineralization within these highly hypoxic waters. This lateral diffusive flux is the result of an increase of ventilation along the Chilean coast, as a drying of the region under global warming opens up a region of wintertime convection in our model. The results highlight the potential sensitivity of suboxic waters to changes in subtropical ventilation as well as the importance of constraining lateral eddy transport of dissolved oxygen in such waters.
机译:预计全球变暖将减少海洋中的氧气溶解度和垂直交换,预期导致缺氧水量增加的变化。用动态气氛,海洋,海冰和生物地球技术循环的全地系统模型进行了模拟(地球物理流体动力学实验室的地球系统模型2.1)表明,如果缺氧的条件设定得相对较高,这会保持真实。然而,最缺氧(即,,中的)水的体积在全球变暖下不会增加,因为这些水实际上变得更加含氧。我们表明热带太平洋中溶解氧的升高与通风时间下降有关。在最少氧化水中的术语分析显示出由于横向扩散而增加的溶解氧的供应增加补偿这些高缺氧水中的再矿化的增加。这种横向扩散助焊剂是沿着智利沿岸的通风增加的结果,因为在全球变暖下的该地区的干燥开辟了我们模型中的冬季对流区域。结果突出了中水水域对亚热带通气变化的潜在敏感性以及约束溶解氧在这种水中的横向涡流传输的重要性。

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