Different effects of latent heat in planetary boundary layer and cloud microphysical processes on Typhoon Sarika (2016)

IF 0.9 4区 地球科学 Q4 GEOCHEMISTRY & GEOPHYSICS Geofizika Pub Date : 2020-07-01 DOI:10.15233/gfz.2020.37.4
Jiangnan Li, Youlong Chen, Wenshi Lin, Fangzhou Li, Chenghui Ding
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引用次数: 4

Abstract

Three simulation experiments were conducted on Typhoon (TC) “Sarika” (2016) using the WRF model, different effects of the latent heat in planetary boundary layer and cloud microphysical process on the TC were investigated. The control experiment well simulated the changes in TC track and intensity. The latent heat in planetary boundary layer or cloud microphysics process can affect the TC track and moving speed. Latent heat affects the TC strength by affecting the TC structure. Compared with the CTL experiment, both the NBL experiment and the NMP experiment show weakening in dynamics and thermodynamics characteristics of TC. Without the effect of latent heat, the TC cannot develop upwards and thus weakens in its intensity and reduces in precipitation; this weakening effect appears to be more obvious in the case of closing the latent heat in planetary boundary layer. The latent heat in planetary boundary layer mainly influences the generation and development of TC during the beginning stage, whereas the latent heat in cloud microphysical process is conducive to the strengthen and maintenance of TC in the mature stage. The latent heat energy of the cloud microphysical process in the TC core region is an order of magnitude larger than the surface enthalpy. But the latent heat release of cloud microphysical processes is not the most critical factor for TC enhancement, while the energy transfer of boundary layer processes is more important.
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行星边界层潜热和云微物理过程对台风Sarika(2016)的不同影响
利用WRF模型对台风“莎莉卡”(2016)进行了三次模拟实验,研究了行星边界层潜热和云微物理过程对TC的不同影响。对照实验很好地模拟了TC轨迹和强度的变化。行星边界层或云微物理过程中的潜热会影响TC的轨迹和移动速度。潜热通过影响TC结构来影响TC强度。与CTL实验相比,NBL实验和NMP实验都表明TC的动力学和热力学特性有所减弱。如果没有潜热的影响,TC就无法向上发展,从而强度减弱,降水量减少;这种减弱效应在关闭行星边界层潜热的情况下显得更加明显。行星边界层的潜热主要影响TC在初始阶段的产生和发展,而云微物理过程的潜热有利于TC在成熟阶段的增强和维持。TC核心区云微物理过程的潜热比表面焓大一个数量级。但云微物理过程的潜热释放并不是TC增强的最关键因素,而边界层过程的能量传递更为重要。
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来源期刊
Geofizika
Geofizika 地学-地球化学与地球物理
CiteScore
1.60
自引率
0.00%
发文量
17
审稿时长
>12 weeks
期刊介绍: The Geofizika journal succeeds the Papers series (Radovi), which has been published since 1923 at the Geophysical Institute in Zagreb (current the Department of Geophysics, Faculty of Science, University of Zagreb). Geofizika publishes contributions dealing with physics of the atmosphere, the sea and the Earth''s interior.
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