Assimilation of radar reflectivity via a full-hydrometeor assimilation scheme based on the WSM6 microphysics scheme in WRF 4D-Var

IF 2.8 3区 地球科学 Q3 METEOROLOGY & ATMOSPHERIC SCIENCES Monthly Weather Review Pub Date : 2024-03-11 DOI:10.1175/mwr-d-23-0137.1
Sen Yang, Deqin Li, Xiang-yu Huang, Zhiquan Liu, Xiao Pan, Yunxia Duan
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Abstract

The microphysical parameterization scheme employed in four-dimensional variational data assimilation (4D-Var) plays an important role in the assimilation of humidity and cloud-sensitive observations. In this study, a newly developed full-hydrometeor assimilation scheme, integrating warm-rain and cold-cloud processes, has been implemented in the Weather Research and Forecasting (WRF) 4D-Var system. This scheme is based on the WSM6 single-moment microphysical parameterization scheme. Its primary objective is to directly assimilate radar reflectivity observations, with the goal of evaluating its effects on model initialization and subsequent forecasting performance. Four assimilation experiments were conducted to assess the performance of the full-hydrometeor assimilation scheme against the warm-rain assimilation scheme. These experiments also investigated reflectivity assimilation using both indirect and direct methods. We found that the nonlinearity of the radar operator in the two directly reflectivity assimilation experiments requires more iterations for cost function reduction than in indirect assimilation method. The hydrometeor fields were reasonably analyzed using the full-hydrometeor assimilation scheme, particularly improving the simulation of ice-phase hydrometeors and reflectivity above the melting layer. The assimilation of radar reflectivity led to improvements in short-term (0-3 hour) precipitation forecasting with the full-hydrometeor assimilation scheme. Assimilation experiments across multiple case studies reaffirmed that assimilating radar reflectivity observations with the full-hydrometeor assimilation scheme can accelerated model spin-up and yielded enhancements in 0-3 hour total accumulate precipitation forecasts for a range of precipitation thresholds.
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通过基于 WRF 4D-Var 中 WSM6 微物理方案的全流体流星同化方案同化雷达反射率
四维变分数据同化(4D-Var)中采用的微物理参数化方案在湿度和云敏感观测数据的同化中起着重要作用。本研究在天气研究和预报(WRF)4D-Var 系统中实施了新开发的全湿气流同化方案,该方案整合了暖雨和冷云过程。该方案基于 WSM6 单时刻微物理参数化方案。其主要目标是直接同化雷达反射率观测数据,目的是评估其对模型初始化和后续预报性能的影响。为了评估全水文气象同化方案与暖雨同化方案的性能,进行了四次同化实验。这些实验还调查了使用间接和直接方法进行反射率同化的情况。我们发现,与间接同化方法相比,两次直接反射率同化实验中雷达算子的非线性需要更多的迭代来降低成本函数。采用全水文气象同化方案对水文气象场进行了合理分析,尤其是改进了对冰相水文介质和融化层以上反射率的模拟。雷达反射率的同化改进了全水文气象同化方案的短期(0-3 小时)降水预报。多个案例研究的同化实验再次证实,利用全水文流星同化方案同化雷达反射率观测数据可加快模式启动,并在一系列降水阈值条件下增强 0-3 小时总累积降水量预报。
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来源期刊
Monthly Weather Review
Monthly Weather Review 地学-气象与大气科学
CiteScore
6.40
自引率
12.50%
发文量
186
审稿时长
3-6 weeks
期刊介绍: Monthly Weather Review (MWR) (ISSN: 0027-0644; eISSN: 1520-0493) publishes research relevant to the analysis and prediction of observed atmospheric circulations and physics, including technique development, data assimilation, model validation, and relevant case studies. This research includes numerical and data assimilation techniques that apply to the atmosphere and/or ocean environments. MWR also addresses phenomena having seasonal and subseasonal time scales.
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