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全球变暖下内潮生成增强。

Enhanced generation of internal tides under global warming.

作者信息

Yang Zhibin, Jing Zhao, Zhai Xiaoming, Vic Clément, Sun Hui, de Lavergne Casimir, Yuan Man

机构信息

Laoshan Laboratory, Qingdao, China.

Frontier Science Center for Deep Ocean Multispheres and Earth System (FDOMES) and Physical Oceanography Laboratory, Ocean University of China, Qingdao, China.

出版信息

Nat Commun. 2024 Sep 3;15(1):7657. doi: 10.1038/s41467-024-52073-3.

Abstract

A primary driver of deep-ocean mixing is breaking of internal tides generated via interactions of barotropic tides with topography. It is important to understand how the energy conversion from barotropic to internal tides responds to global warming. Here we address this question by applying a linear model of internal tide generation to coupled global climate model simulations under a high carbon emission scenario. The energy conversion to high-mode internal tides is projected to rise by about 8% by the end of the 21st century, whereas the energy conversion to low-mode internal tides remains nearly unchanged. The intensified near-bottom stratification under global warming increases energy conversion into both low and high-mode internal tides. In contrast, the intensified depth-averaged stratification reduces the modal horizontal wavenumber of internal tides, leading to increased (decreased) energy conversion into high (low)- mode internal tides. Our findings imply stronger mixing over rough topography under global warming, which should be properly parameterized in climate models for more accurate projections of future climate changes.

摘要

深海混合的一个主要驱动因素是正压潮汐与地形相互作用产生的内潮破碎。了解从正压潮汐到内潮的能量转换如何响应全球变暖至关重要。在这里,我们通过将内潮生成的线性模型应用于高碳排放情景下的耦合全球气候模型模拟来解决这个问题。预计到21世纪末,向高模内潮的能量转换将增加约8%,而向低模内潮的能量转换几乎保持不变。全球变暖导致的近底层分层加剧,增加了向低模和高模内潮的能量转换。相反,深度平均分层加剧会降低内潮的模态水平波数,导致向高(低)模内潮的能量转换增加(减少)。我们的研究结果表明,全球变暖下粗糙地形上的混合会更强,在气候模型中应适当参数化,以便更准确地预测未来气候变化。

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