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Response of a Baroclinic Anticyclonic Eddy to Relative Wind Stress Forcing

机译:气压反气旋涡对相对风应力强迫的响应

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摘要

Including the ocean surface current in the calculation of wind stress is known to damp mesoscale eddies through a negative wind power input and have potential ramifications for eddy longevity. Here, we study the spindown of a baroclinic anticyclonic eddy subject to absolute (no ocean surface current) and relative (including ocean surface current) wind stress forcing by employing an idealized high-resolution numerical model. Results from this study demonstrate that relative wind stress dissipates surface mean kinetic energy (MKE) and also generates additional vertical motions throughout the whole water column via Ekman pumping. Wind stress curl-induced Ekman pumping generates additional baroclinic conversion (mean potential to mean kinetic energy) that is found to offset the damping of surface MKE by increasing deep MKE. A scaling analysis of relative wind stress-induced baroclinic conversion and relative wind stress damping confirms these numerical findings, showing that additional energy conversion counteracts relative wind stress damping. What is more, wind stress curl-induced Ekman pumping is found to modify surface potential vorticity gradients that lead to an earlier destabilization of the eddy. Therefore, the onset of eddy instabilities and eventual eddy decay takes place on a shorter time scale in the simulation with relative wind stress.
机译:已知将海洋表面洋流纳入风应力的计算中,会通过负风力输入来抑制中尺度涡旋,并对涡流寿命产生潜在影响。本文采用理想化的高分辨率数值模型,研究了气压反气旋涡在绝对(无洋面洋流)和相对(包括洋面洋流)风应力强迫作用下的自旋。这项研究的结果表明,相对风应力会耗散地表平均动能(MKE),并通过Ekman泵送在整个水柱中产生额外的垂直运动。风应力卷曲引起的 Ekman 泵浦产生额外的气压转换(平均势能到平均动能),发现该转换通过增加深 MKE 来抵消表面 MKE 的阻尼。相对风应力引起的气压转换和相对风应力阻尼的标度分析证实了这些数值发现,表明额外的能量转换抵消了相对风应力阻尼。此外,发现风应力卷曲引起的Ekman泵浦可以改变表面潜在的涡度梯度,从而导致涡流的早期不稳定。因此,在相对风应力的模拟中,涡流不稳定和最终涡衰变的开始发生在较短的时间尺度上。

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