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February 9, 2026Remote Sensing0 citationsOpen Access

Vertical Structures and Macro-Microphysical Characteristics of Southwest Vortex Precipitation over Sichuan, China

YLYanxia LiuJWJun WenJZJiafeng Zheng

Key Points

  • This research aims to quantify the vertical structure and microphysical properties of precipitation from the Southwest China vortex across its life-cycle stages.
  • Utilized Global Precipitation Measurement Dual-frequency Precipitation Radar observations from 2014 to 2022
  • Analyzed differences in precipitation characteristics across life-cycle stages and types
  • Compared structural features such as echo tops, radar reflectivity, and rainfall rates
  • The mature stage of SWV precipitation has higher echo tops and stronger radar reflectivity
  • Developing stage exhibits the weakest characteristics and largest coalescence–breakup balance signatures
  • Deep strong convection shows the greatest vertical extent and enhanced ice growth compared to other types

Abstract

The Southwest China vortex (SWV) is a high-impact mesoscale cyclonic vortex that typically originates over Sichuan Province, China, and frequently produces hazardous rainfall. Yet systematic knowledge of the structural and microphysical properties of SWV precipitation remains insufficiently quantified. Using Global Precipitation Measurement Dual-frequency Precipitation Radar (GPM/DPR) observations from 2014 to 2022, this study investigates the vertical structure and macro- and microphysical characteristics of SWV precipitation, and quantifies their differences across life-cycle stages and precipitation types. The mature stage is characterized by higher echo tops, stronger radar reflectivity, higher strong-echo altitudes, and larger near-surface rainfall, together with a clearer melting-layer bright band and a stronger post-melting shift toward larger drops and lower number concentrations. The developing stage is weakest and shows the largest fraction of coalescence–breakup balance signatures, whereas the dissipating stage features enhanced evaporation- and breakup-related signals. Among precipitation types, deep strong convection exhibits the greatest vertical extent with enhanced ice/mixed-phase growth; stratiform precipitation produces stronger radar echoes and higher rainfall rates than deep weak convection despite similar echo-top heights; and shallow precipitation is characterized by smaller drops, higher concentrations, and active warm-rain spectral evolution. These findings provide satellite-based constraints for microphysics parameterization evaluation and improved numerical prediction of SWV-related rainfall over complex terrain.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/698979a6f0ec2af6756e773chttps://doi.org/10.3390/rs18030533
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