黑潮扩展中涡流反馈对逆动能传递的调制及其潜在动力学

IF 3.4 2区 地球科学 Q1 OCEANOGRAPHY
Xiangyu Zhang, Peiran Yang, Zhao Jing
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引用次数: 0

摘要

涡流反馈(ECFB)是涡流动能(EKE)的重要汇,它使海洋涡流动能向大气偏转,并影响海洋跨尺度动能(KE)的传递。然而,ECFB调节KE转移的潜在动力学仍然缺乏深入的研究。在这项研究中,发现ECFB实质上减少了逆KE传输,这种减少在黑潮延伸区延伸到500 m的深度。在地表边界层(SBL)内,由于向大气的EKE损失增加,涡动有效势能(EAPE)向EKE的转换减少,使得逆传递减弱。在SBL以下,从EAPE到EKE的转换成为减少逆KE转移的唯一主导驱动因素。一方面,ECFB引起的负风功增加了SBL内的EKE损失。另一方面,曲流锋的减弱和由此产生的斜压不稳定性的抑制,是在ECFB下EAPE向EKE转换减弱的原因。在ECFB下,斜压不稳定性的增长率降低了12%。曲流锋面的减少是由于曲流KE的减少和相应的应变速率的减弱,这是由于ECFB下Ekman泵送引起的压力功发散造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Modulation of Inverse Kinetic Energy Transfer by Eddy Current Feedback and Its Underlying Dynamics in the Kuroshio Extension

Modulation of Inverse Kinetic Energy Transfer by Eddy Current Feedback and Its Underlying Dynamics in the Kuroshio Extension

Modulation of Inverse Kinetic Energy Transfer by Eddy Current Feedback and Its Underlying Dynamics in the Kuroshio Extension

Modulation of Inverse Kinetic Energy Transfer by Eddy Current Feedback and Its Underlying Dynamics in the Kuroshio Extension

The eddy current feedback (ECFB), an important sink for eddy kinetic energy (EKE), deflects the oceanic EKE to the atmosphere and is also found to influence the oceanic cross-scale kinetic energy (KE) transfer. However, the underlying dynamics of ECFB modulating KE transfer still lack thorough investigation. In this study, the ECFB is found to substantially reduce the inverse KE transfer, with this reduction extending to a depth of 500 m in the Kuroshio Extension. Within the surface boundary layer (SBL), the weakened inverse KE transfer is attributed to the enhanced EKE loss to the atmosphere and reduced conversion from eddy available potential energy (EAPE) to EKE. Below the SBL, conversion from EAPE to EKE becomes the sole dominant driver of the reduced inverse KE transfer. On the one hand, the negative wind work induced by ECFB enhances EKE loss within the SBL. On the other hand, the weakened meander fronts and the consequent suppressed baroclinic instability are responsible for the weakened conversion from EAPE to EKE under ECFB. Under ECFB, the growth rate of the baroclinic instability decreases by 12%. The reduction in meander fronts is caused by the diminished meander KE and the associated weakening of the strain rate, which is due to the pressure work divergence resulting from Ekman pumping under ECFB.

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来源期刊
Journal of Geophysical Research-Oceans
Journal of Geophysical Research-Oceans Earth and Planetary Sciences-Oceanography
CiteScore
7.00
自引率
13.90%
发文量
429
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