Constructing Rapid Refresh System for Rainfall Nowcasting (0-6 h) at the Ho Chi Minh City

Truong Ba Kien, Vu Van Thang, Tran DuyThuc, Nguyen Quang Trung, Pham Xuan Quan
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Abstract

This study presents an hourly updated assimilation and model forecast system (Rapid Refresh - RAP) designed for rainfall nowcasting at Ho Chi Minh city (named HCM-RAP). The HCM-RAP implemented the Weather Research and Forecasting (WRF) model, driven by Global Forecast System (GFS) data at horizontal resolution of 0.25x0.25 degree, in combination with rapid update of radar data at Nha Be station. The HCM-RAP is evaluated during the heavy rainfall event of 25-26 November 2018 against observation data at 10 stations. Results show the advantage of data assimilation in the improvement of hourly rainfall forecast, in compared with the forecast from the experiment without assimilated data. However, the rainfall forecast amount was still underestimated by the HCM-RAP. This is the first attempt for heavy rainfall forecasting and warning for Ho Chi Minh city. In order to implementing the HCM-RAP for operational forecast, further study is recommended, for instance, more heavy rainfall events and in merger with quantitative precipitation estimation from radar and satellite data.  
胡志明市降水临近预报(0-6 h)快速更新系统建设
本文介绍了胡志明市降水临近预报的逐时更新同化和模式预报系统(Rapid Refresh -RAP),命名为HCM-RAP。HCM-RAP采用了天气研究与预报(WRF)模式,该模式由水平分辨率为0.25x0.25度的全球预报系统(GFS)数据驱动,并结合芽别站快速更新的雷达数据。根据2018年11月25日至26日强降雨事件期间10个站点的观测数据,对HCM-RAP进行了评估。结果表明,与没有同化数据的试验预报相比,同化数据在改进逐时降水预报方面具有优势。然而,HCM-RAP预测的雨量仍被低估。这是胡志明市首次进行强降雨预报和预警。为了将HCM-RAP应用于业务预报,建议进一步研究更多的强降雨事件,并与雷达和卫星数据的降水定量估计相结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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