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首页> 外文期刊>Journal of the Atmospheric Sciences >Walker-type mean circulations and convectively coupled tropical waves as an interacting system
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Walker-type mean circulations and convectively coupled tropical waves as an interacting system

机译:沃克型平均环流和对流耦合的热带浪作为相互作用系统

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Interactions between convectively coupled tropical waves and Walker-type mean circulations are examined using a two-dimensional analytic model wherein drying and cooling of the boundary layer by convective and mesoscale downdrafts are in equilibrium with the wind-induced perturbations of surface fluxes. The moist thermodynamic state directly affects the stability of the large-scale circulation by controlling the wind perturbation on surface fluxes and the strength of the convective downdrafts. Stability analyses yield two major conclusions. (i) The mean Walker circulation is linearly unstable, suggesting that it may only exist in a quasi-steady sense through the spontaneous generation of transient waves. The instability is a manifestation of positive feedback: enhanced low-level convergence increases the surface wind speed, which increases the surface flux. As a result, convective heating is increased, which further enhances the low-level convergence. The mean circulation is more unstable when its horizontal extent is small and its depth large. Hence, when the horizontal extent of the mean circulation is a few thousand kilometers, as in the authors' recent cloud-resolving simulations, the deep first-baroclinic mode circulation is too unstable to be maintained even in a quasi-steady sense, realizing a shallow double-cell structure. (ii) The convectively coupled large-scale wave differs from traditional tropical large-scale instabilities of a homogeneous mean state in an important way: the longest waves are the most unstable rather than the shortest. Linear coupling of the waves with the mean state, through wind-induced surface flux perturbations, induces monotonically growing instabilities when the ascent of the mean circulation occupies more than half of the total domain. These instabilities occur only with the odd-wavenumber modes, which have parity with the mean circulation. Otherwise, the system supports linear neutral waves that propagate slower than the dry gravity waves due to the convective coupling in the ascending region. Growing oscillatory modes occur when nonlinear advection is included, which is consistent with the observed spontaneous generation of convectively coupled waves. [References: 28]
机译:对流耦合的热带海浪与沃克型平均环流之间的相互作用使用二维分析模型进行了检验,其中对流和中尺度降气流对边界层的干燥和冷却与表面通量的风致扰动平衡。湿热力学状态通过控制表面通量的风扰动和对流下降气流的强度,直接影响大规模循环的稳定性。稳定性分析得出两个主要结论。 (i)平均沃克环流是线性不稳定的,这表明它只能通过自发产生的瞬变波以准稳态的形式存在。不稳定是正反馈的体现:增强的低层收敛会增加表面风速,从而增加表面通量。结果,增加了对流加热,这进一步增强了低能级收敛。当水平范围较小而深度较大时,平均环流更加不稳定。因此,当平均环流的水平范围为几千公里时,如作者最近的云解析模拟中所示,深的第一斜压模式环流太不稳定,即使在准稳态下也难以维持。浅双胞结构。 (ii)对流耦合的大波浪在一个重要方面不同于均质平均状态的传统热带大尺度不稳定性:最长的波浪最不稳定而不是最短。当平均环流的上升占据总面积的一半以上时,通过风致的表面通量扰动,波与平均状态的线性耦合会引起单调增长的不稳定性。这些不稳定性仅在奇波数模式下发生,其与均值环流相等。否则,由于上升区域中的对流耦合,系统将支持线性中性波,该中性波的传播速度比干重力波要慢。当包括非线性对流时,会出现增长的振荡模态,这与对流耦合波的自发产生是一致的。 [参考:28]

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