On the ocean's response to enhanced Greenland runoff in model experiments: relevance of mesoscale dynamics and atmospheric coupling

IF 4.1 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Ocean Science Pub Date : 2023-02-20 DOI:10.5194/os-19-141-2023
T. Martin, A. Biastoch
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引用次数: 4

Abstract

Abstract. Increasing Greenland Ice Sheet melting is anticipated to impact water mass transformation in the subpolar North Atlantic and ultimately the meridional overturning circulation. Complex ocean and climate models are widely applied to estimate magnitude and timing of related impacts under global warming. We discuss the role of the ocean mean state, subpolar water mass transformation, mesoscale eddies, and atmospheric coupling in shaping the response of the subpolar North Atlantic Ocean to enhanced Greenland runoff. In a suite of eight dedicated 60- to 100-year-long model experiments with and without atmospheric coupling, with eddy processes parameterized and explicitly simulated and with regular and significantly enlarged Greenland runoff, we find (1) a major impact by the interactive atmosphere in enabling a compensating temperature feedback, (2) a non-negligible influence by the ocean mean state biased towards greater stability in the coupled simulations, both of which make the Atlantic meridional overturning circulation less susceptible to the freshwater perturbation applied, and (3) a more even spreading and deeper mixing of the runoff tracer in the subpolar North Atlantic and enhanced inter-gyre exchange with the subtropics in the strongly eddying simulations. Overall, our experiments demonstrate the important role of mesoscale ocean dynamics and atmosphere feedback in projections of the climate system response to enhanced Greenland Ice Sheet melting and hence underline the necessity to advance scale-aware eddy parameterizations for next-generation climate models.
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模式实验中海洋对格陵兰径流增强的响应:中尺度动力学和大气耦合的相关性
摘要预计格陵兰冰盖融化的增加将影响北大西洋次极地的水团转变,并最终影响经向翻转环流。复杂的海洋和气候模式被广泛应用于估计全球变暖下相关影响的幅度和时间。我们讨论了海洋平均状态、亚极水团转换、中尺度涡旋和大气耦合在塑造亚极北大西洋对格陵兰径流增强的响应中的作用。在一套8个专门的60至100年的模型实验中,有和没有大气耦合,涡流过程参数化并明确模拟,格陵兰径流有规律且显著增加,我们发现(1)相互作用的大气在实现补偿性温度反馈方面的主要影响,(2)在耦合模拟中,海洋平均状态对更大稳定性的影响不容忽视,两者都使大西洋经向翻转环流不太容易受到施加的淡水扰动的影响。(3)北大西洋次极区径流示踪剂分布更均匀,混合程度更深,强涡旋模拟中与亚热带环流间交换增强。总的来说,我们的实验证明了中尺度海洋动力学和大气反馈在预测气候系统对格陵兰冰盖加速融化的响应中的重要作用,因此强调了在下一代气候模式中推进尺度感知涡旋参数化的必要性。
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来源期刊
Ocean Science
Ocean Science 地学-海洋学
CiteScore
5.90
自引率
6.20%
发文量
78
审稿时长
6-12 weeks
期刊介绍: Ocean Science (OS) is a not-for-profit international open-access scientific journal dedicated to the publication and discussion of research articles, short communications, and review papers on all aspects of ocean science: experimental, theoretical, and laboratory. The primary objective is to publish a very high-quality scientific journal with free Internet-based access for researchers and other interested people throughout the world. Electronic submission of articles is used to keep publication costs to a minimum. The costs will be covered by a moderate per-page charge paid by the authors. The peer-review process also makes use of the Internet. It includes an 8-week online discussion period with the original submitted manuscript and all comments. If accepted, the final revised paper will be published online. Ocean Science covers the following fields: ocean physics (i.e. ocean structure, circulation, tides, and internal waves); ocean chemistry; biological oceanography; air–sea interactions; ocean models – physical, chemical, biological, and biochemical; coastal and shelf edge processes; paleooceanography.
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