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首页> 外文期刊>Annales Geophysicae >Negative correlation between terminal velocity and VHF radar reflectivity: observation and plausible explanation
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Negative correlation between terminal velocity and VHF radar reflectivity: observation and plausible explanation

机译:终端速度与甚高频雷达反射率之间的负相关:观测和合理解释

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摘要

The correlation between precipitation backscatter P (or radar reflectivity Z) and reflectivity-weighted terminal velocity V, has long been thought to be positive. Namely, the larger the magnitude of the terminal velocity is, the stronger the radar reflectivity will be, and vice versa. However, we will show in this article the observational evidences of negative V_t-P correlation made with the Chung-Li VHF radar. It is found that the negative V_t-P correlation can occur in the regions from close to ground to well above the melting layer. In addition, there is a strong tendency for the negative V_t-P correlation to occur around the bright band region. In light of the fact that the conventional model of single drop size distribution cannot explain this negative correlation, it is proposed that the drop size distribution responsible for the negative V_t-Z correlation is composed of two Gamma drop size distributions with respective mean terminal velocities and radar reflectivities. The precipitation particles of these two distributions are assumed to dynamically interact in the way that the total numbers of the precipitation particles of the two Gamma distributions are varied and their reflectivities are also changed accordingly. Theoretical analysis shows that the key factor determining the sign of the V_t-Z correlation is the ratio of the difference between relative changes in the reflectivities of the two Gamma drop size distributions to the change in the total reflectivity. The V_t-Z correlation is negative (or positive) if the ratio is positive (or negative). From these results, it follows that the V_t-Z correlation could be considered to be the result of the redistribution of the radar reflectivies of the two Gamma drop size distributions caused by the interaction of the precipitation particles between them. Different interaction processes of the precipitation particles, such as break-up and coalescence, could give rise to the same V_t-Z correlation, depending on the net change in the totalrnreflectivity. In addition, the results also show that the same interaction process might give opposite V_t-Z correlations. Therefore, great caution is advised when the V_t-Z correlation is employed to interpret the precipitation process.
机译:长期以来,降水背散射P(或雷达反射率Z)与反射率加权终端速度V之间的相关性一直被认为是正的。即,终端速度的大小越大,雷达的反射率越强,反之亦然。但是,我们将在本文中展示使用Chung-Li VHF雷达产生的负V_t-P相关性的观测证据。发现负V_t-P相关性可以发生在从接近地面到熔化层上方的区域中。另外,负V_t-P相关性很容易在亮带区域周围发生。鉴于传统的单液滴尺寸分布模型无法解释这种负相关性,建议负负V_t-Z相关性的液滴尺寸分布由两个Gamma液滴尺寸分布组成,它们各自的平均末端速度为雷达反射率。假定这两个分布的沉淀粒子以这样的方式动态相互作用,即两个Gamma分布的沉淀粒子的总数发生变化,并且它们的反射率也相应地发生变化。理论分析表明,确定V_t-Z相关性的符号的关键因素是两个Gamma液滴尺寸分布的反射率相对变化之间的差异与总反射率变化之间的比率。如果比率为正(或负),则V_t-Z相关为负(或正)。从这些结果可以看出,V_t-Z相关性可以认为是两个Gamma液滴尺寸分布的雷达反射率重新分布的结果,这是由它们之间的降水粒子相互作用引起的。取决于总反射率的净变化,沉淀粒子的不同相互作用过程(例如破裂和聚结)可能会产生相同的V_t-Z相关性。此外,结果还表明,相同的交互过程可能会给出相反的V_t-Z相关性。因此,当使用V_t-Z相关性解释降水过程时,建议格外谨慎。

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