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首页> 外文期刊>Atmospheric research >Assessing the performance of cloud microphysical parameterization over the Indian region: Simulation of monsoon depressions and validation with INCOMPASS observations
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Assessing the performance of cloud microphysical parameterization over the Indian region: Simulation of monsoon depressions and validation with INCOMPASS observations

机译:评估印度地区云微物理参数化的性能:季风低压的模拟和INCOMPASS观测值的验证

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摘要

This study validates the performance of four different cloud microphysics parameterization (CMP) with the INCOMPASS aircraft observations during monsoon 2016 and assesses its impact on simulations of two monsoon depressions (MDs) using the Weather Research and Forecasting (WRF) model. The simulations are carried out with a lead time up to 96 h. It is found that the Aerosol Aware Thompson (AAT) scheme showed better result in terms of wind and the WRF Double Moment Six Class microphysical scheme (WDM6) showed better correlations for temperature and dew point temperature compared to aircraft measurements. It is noted that the choice of CMP significantly impacts the key characteristics of the MDs such as rainfall, wind, temperature, hydrometeors and associated convective processes (e.g. moist static energy, moisture convergence). In general, CMPs have overestimated the rainfall compared to satellite estimates Tropical Rainfall Measuring Mission (TRMM), with WDM6 producing the least errors. Therefore, inter-comparisons of simulations of CMPs are carried out using WDM6 as the benchmark. Inter-comparison results suggest that there is a substantial reduction in rainfall for the Morrison due to drier lower and middle troposphere leading to subdued convective activity compared to others. Further, WDM6 has produced the least errors in the distribution of frozen hydrometer compared to ERAS. By examining the water budget, it is found that moisture convergence is the major driver for the rainfall, and the magnitude of moisture convergence is strongly affected by the choice of CMPs. Additionally, the local and advection terms of the moisture budget equation provide minimal contributions towards rainfall generation.
机译:这项研究使用INCOMPASS飞机在2016年季风期间的观测结果验证了四种不同的云微物理参数化(CMP)的性能,并使用天气研究和预报(WRF)模型评估了其对两个季风低压(MD)模拟的影响。仿真的前置时间长达96小时。发现与飞机测量相比,Aerosol Aware Thompson(AAT)方案在风方面显示出更好的结果,而WRF Double Moment六级微物理方案(WDM6)在温度和露点温度方面显示出更好的相关性。值得注意的是,CMP的选择会显着影响MD的关键特性,例如降雨,风,温度,水凝物和相关的对流过程(例如湿静态能量,水分收敛)。通常,与卫星估计的热带雨量测量任务(TRMM)相比,CMP会高估雨量,而WDM6产生的误差最小。因此,以WDM6为基准进行CMP模拟的相互比较。相互比较的结果表明,由于对流层中低层和中层较干燥而导致对流活动较弱,因此莫里森的降雨大大减少。此外,与ERAS相比,WDM6在冻结比重计的分布中产生的误差最小。通过检查水量预算,发现水分会聚是降雨的主要驱动力,而CMP的选择强烈影响了水分会聚的程度。此外,湿度预算方程的局部和对流项对降雨产生的贡献最小。

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  • 来源
    《Atmospheric research》 |2020年第7期|104925.1-104925.13|共13页
  • 作者

  • 作者单位

    Indian Inst Technol Bhubaneswar Sch Earth Ocean & Climate Sci Jatni 752050 Khurda India;

    Univ Reading Dept Meteorol Reading Berks England|Univ Reading Natl Ctr Atmospher Sci Reading Berks England;

    Indian Inst Sci Ctr Atmospher & Ocean Sci Bengaluru India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Monsoon Depression; Cloud Microphysics Parameterization; WRF; INCOMPASS;

    机译:季风低压;云微物理参数化;WRF;入场券;

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