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Effects of Monsoon Trough Intraseasonal Oscillation on Tropical Cyclogenesis over the Western North Pacific

机译:季风槽季节内振荡对北太平洋西部热带气旋的影响

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The effects of intraseasonal oscillation (ISO) of the western North Pacific (WNP) monsoon trough on tropical cyclone (TC) formation were investigated using the Advanced Research Weather Research and Forecasting (ARW) Model. A weak vortex was specified initially and inserted into the background fields containing climatological-mean anomalies associated with active and inactive phases of monsoon trough ISOs. The diagnosis of simulations showed that monsoon trough ISO can modulate TC development through both dynamic and thermodynamic processes. The dynamic impact is attributed to the lower midtropospheric large-scale vorticity associated with monsoon trough ISO. Interactions between cyclonic vorticity in the lower middle troposphere during the active ISO phase and a vortex lead to the generation of vortex-scale outflow at the midlevel, which promotes the upward penetration of friction-induced ascending motion and thus upward moisture transport. In addition, the low-level convergence associated with active ISO also helps the upward moisture transport. Both processes contribute to stronger diabatic heating and thus promote a positive convection circulation moisture feedback. On the other hand, the large-scale flow associated with inactive ISO suppresses upward motion near the core by inducing the midlevel inflow and the divergence forcing within the boundary layer, both inhibiting TC development. The thermodynamic impact comes from greater background specific humidity associated with active ISO that allows a stronger diabatic heating. Experiments that separated the dynamic and thermodynamic impacts of the ISO showed that the thermodynamic anomaly from active ISO contributes more to TC development, while the dynamic anomalies from inactive ISO can inhibit vortex development completely.
机译:使用高级研究天气研究和预报(ARW)模型研究了北太平洋西部(WNP)季风槽的季节内振荡(ISO)对热带气旋(TC)形成的影响。最初指定了一个弱旋涡,并将其插入到包含季风槽ISO活跃期和非活跃期的气候平均异常的背景字段中。模拟诊断表明,季风槽ISO可以通过动态和热力学过程来调节TC的发展。动态影响归因于与季风槽ISO相关的对流层中低层大涡。在活跃的ISO阶段,在对流层中低层的气旋涡度与涡旋之间的相互作用导致在中层产生涡旋规模的流出,从而促进了摩擦引起的上升运动的向上渗透,从而促进了向上的水分传输。此外,与主动ISO相关的低水平收敛也有助于向上的水分传输。这两个过程都有助于更强的非绝热加热,从而促进对流循环水的正反馈。另一方面,与无效ISO相关的大规模流动通过在边界层内引起中层流入和发散强迫,从而抑制了岩心附近的向上运动,都抑制了TC的发展。热力学影响来自与主动ISO关联的更大的背景比湿,它允许更强的非绝热加热。分离ISO的动态和热力学影响的实验表明,主动ISO的热力学异常对TC的发展贡献更大,而非活跃ISO的动态异常可以完全抑制涡旋的发展。

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