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首页> 外文期刊>Journal of the Atmospheric Sciences >The Role of Back Pressure in the Atmospheric Response to Surface Stress Induced by the Kuroshio
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The Role of Back Pressure in the Atmospheric Response to Surface Stress Induced by the Kuroshio

机译:背压在大气反应中对Kuroshio引起的表面应力的作用

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The effect of ocean current drag on the atmosphere is of interest as a test case for the role of back pressure, because the response is independent of the thermally induced modulation of the boundary layer stability and hydrostatic pressure. The authors use a regional atmospheric model to investigate the impact of drag induced by the Kuroshio in the East China Sea on the overlying winter atmosphere. Ocean currents dominate the wind stress curl compared to the impacts of sea surface temperature (SST) fronts. Wind stress convergences and divergences are weakly enhanced even though the ocean current is almost geostrophic. These modifications change the linear relationships (coupling coefficients) between the wind stress curl/divergence and the SST Laplacian, crosswind, and downwind gradients. Clear signatures of the ocean current impacts are found beyond the sea surface: sea surface pressure (back pressure) decreases near the current axis, and precipitation increases over the downwind region. However, these responses are very small despite strong Ekman pumping due to the current. A linear reduced gravity model is used to explain the boundary layer dynamics. The linear vorticity equation shows that the oceanic influence on wind stress curl is balanced by horizontal advection decoupling the boundary layer from the interior atmosphere. Spectral transfer functions are used to explain the general response of back pressure to geostrophic ocean currents and sea surface height.
机译:海洋电流阻力对大气中的影响是有兴趣的作为背压作用的测试用例,因为响应与热诱导的边界层稳定性和静水压力的调制无关。作者使用区域大气模型来调查Kuroshio在东海在覆盖冬季氛围中诱导的阻力的影响。与海表面温度(SST)前线的影响相比,海流占据风力卷曲。虽然海洋电流几乎是出色的,但风力应力收敛和分歧是弱效益的。这些修改改变了风力卷曲/发散和SST拉普拉斯,跨越和向下梯度之间的线性关系(耦合系数)。在海面之外发现海洋电流影响的清晰签名:海面压力(背压)在电流轴附近减小,并且降水量在下行区域上增加。然而,尽管由于电流强劲的Ekman泵送,但这些反应非常小。线性减少重力模型用于解释边界层动态。线性涡度方程表明,通过水平的平流从内部气氛解耦边界层的水平前进,对风力应力卷曲的海洋影响平衡。光谱传递函数用于解释背部压力与热嗜嗜酸性海洋电流和海表面高度的一般响应。

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