Importance of Strains in Kinetic Energy Flux for Submesoscale Processes From an Anisotropic Perspective

IF 3.4 2区 地球科学 Q1 OCEANOGRAPHY
Jun Yang, Dongxiao Wang, Chunhua Qiu, Xiaoming Zhai, Ru Chen, Jiawei Qiao, Bo Hong
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Abstract

Submesoscale fronts and filaments are jet-like motions, associated with cross-scale kinetic energy (KE) flux through eddy-mean flow interaction. However, the diagnostic method for KE flux in jets with a steady zonal flow axis is not suitable for submesoscale processes with arbitrary axes. Based on a high-resolution ocean model and observations, we propose a method for diagnosing KE flux via mesoscale strains and submesoscale stresses from an anisotropic perspective. Furthermore, we develop a three-dimensional anisotropic KE flux algorithm under the hydrostatic assumption, which is important for diagnosing the energy sources and distributions of submesoscale vertical instabilities. Horizontally, we find that the inverse KE cascade mainly arises from shear strain throughout the filament's lifespan, triggering anisotropic frontogenesis and ageostrophic secondary circulations (ASCs). In ASCs, the cross-filament shear strain provides an energy source for the geostrophic shear production (GSP) and causes the forward flux through the symmetric instability. Meanwhile, the forward KE flux caused by the centrifugal instability can reach 35% of GSP which is regulated by the anisotropic eddy KE but has been neglected in previous studies. This finding effectively explains the directional dependence of strains, stresses, and instabilities, broadening our understanding of energy balance and providing a foundation for improving submesoscale parameterizations.

Abstract Image

从各向异性角度看应变在亚中尺度过程动能通量中的重要性
亚中尺度锋面和细丝是类似射流的运动,通过涡旋-平均流相互作用与跨尺度动能(KE)通量有关。但是,具有稳定纬向流轴的射流中KE通量的诊断方法不适用于具有任意轴的亚中尺度过程。基于高分辨率海洋模型和观测资料,提出了一种基于各向异性视角的中尺度应变和亚中尺度应力诊断KE通量的方法。在此基础上,提出了一种流体静力假设下的三维各向异性KE通量算法,该算法对诊断亚中尺度垂直不稳定性的能量来源和分布具有重要意义。在水平方向上,我们发现逆KE级联主要由剪切应变引起,触发各向异性锋生和地转次生循环(ASCs)。在ASCs中,交叉丝剪切应变为地转剪切产生(GSP)提供了能量来源,并通过对称不稳定性引起正向通量。同时,离心不稳定性引起的正向KE通量可达GSP的35%,该通量受各向异性涡涡KE的调节,但在以往的研究中被忽略。这一发现有效地解释了应变、应力和不稳定性的方向依赖性,拓宽了我们对能量平衡的理解,并为改进亚中尺度参数化提供了基础。
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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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