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Physical mechanism of formation of the bimodal structure in the Meiyu front system

机译:梅雨锋系统中双峰结构形成的物理机制。

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摘要

The bimodal structure of the Meiyu front system is readdressed after Zhou et a]. (2005). The physical mechanism of the formation of the bimodal distribution is discussed. The bimodal structure of the Meiyu front system considerably results from atmospheric moisture gradients, though atmospheric temperature gradients are also not negligible. According to the definition of equivalent potential temperature, and by scale analysis, we End that atmospheric equivalent potential temperature gradients, which could be regarded as an indicator of the Meiyu front system, could be mainly attributed to the variations of atmospheric potential temperature gradients with a scaling factor of 1 and moisture gradients multiplied by a scaling factor of an order of about 2.5 x 10(3), which means that small variations of atmospheric moisture gradients could lead to large variations of equivalent potential temperature gradients, and thus large variations of the Meiyu front system. Quantitative diagnostics with a mesoscale simulation data in the vicinity of the Meiyu front system show that moisture gradients contribute to equivalent potential temperature gradients more than potential temperature gradients.
机译:在Zhou et al之后,梅雨锋系统的双峰结构被重述。 (2005)。讨论了形成双峰分布的物理机制。尽管大气温度梯度也不容忽视,但梅雨锋系统的双峰结构很大程度上是由大气湿度梯度引起的。根据等效电位温度的定义,并通过尺度分析,得出大气等效电位温度梯度可以看作是梅雨锋系统的一个指标,主要是由于大气等效温度梯度随温度的变化而变化的。比例因子1和湿度梯度乘以约2.5 x 10(3)的比例因子,这意味着大气湿度梯度的小变化可能会导致等效潜在温度梯度的大变化,因此,美雨锋系统。利用梅雨锋系统附近中尺度模拟数据进行的定量诊断表明,水分梯度比潜在温度梯度对等效潜在温度梯度的贡献更大。

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