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Roles of large-scale forcing, thermodynamics, and cloud microphysics in tropical precipitation processes

机译:大规模强迫,热力学和云微观物理学在热带降水过程中的作用

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摘要

Roles of large-scale forcing, thermodynamics, and cloud microphysics in tropical precipitation processes are investigated by analyzing data from a two-dimensional cloud-resolving model simulation. The model is forced by large-scale vertical velocity, zonal wind, horizontal advection, and sea surface temperature observed and derived from TOGA COARE and is integrated from 22 December 1992 to 8 January 1993. The composite analyses of imposed large-scale vertical velocity and water vapor mass flux, and surface rainfall, heat and cloud microphysical budgets are carried out in eight cases that are categorized by water vapor convergence associated with imposed large-scale vertical velocity and local changes of water vapor and hydrometeor concentration. The analysis of model domain mean surface rainfall budgets shows that the local changes in water vapor and cloud hydrometeor concentration could be as important as the water vapor convergence in producing precipitation. The accurate estimates of these precipitation processes are needed in the climate models to avoid climate biases.rnThe regional analysis shows that the imposed large-scale tropospheric upward motions enhance water vapor convergence and heat divergence and convective rainfall whereas imposed lower-tropospheric downward motions enhance water vapor divergence over stratiform regions and suppress stratiform rainfall. The local atmospheric drying over raining regions is associated with the strengthening of surface rainfall in the cases with mean local atmospheric drying. The local atmospheric moistening is associated with the strengthening of the water vapor convergence over non-raining regions and the convective rainfall is reduced by the weakening of the water vapor convergence over convective regions in the cases with mean local atmospheric moistening. The decrease and increase of mean local hydrometeor concentration are mainly from raining stratiform and convective regions, respectively. The enhancement and reduction of stratiform and convective rainfall are associated with the decrease and increase of local hydrometeor concentration, respectively, in the cases with decrease and increase of mean local hydrometeor concentration.
机译:通过分析来自二维云解析模型模拟的数据,研究了大规模强迫,热力学和云微观物理学在热带降水过程中的作用。该模型是由TOGA COARE观测到的,并受到大型垂直速度,纬向风,水平对流和海面温度的推动,并于1992年12月22日至1993年1月8日进行了整合。水汽质量通量,地表降雨,热量和云的微观物理预算是在8种情况下进行的,这些情况根据与强加的垂直速度和局部变化的水汽汇聚以及水汽和水凝物浓度的局部变化而分类。对模型域平均地表降水预算的分析表明,在产生降水中,水汽和云水凝结物浓度的局部变化可能与水汽收敛一样重要。在气候模型中需要对这些降水过程进行准确的估计,以避免气候偏差。rn区域分析表明,强行对流层大运动增强了水汽的收敛性和热扩散和对流降雨,而强流层低层运动强了对水的作用层状地区的蒸汽散发并抑制了层状降雨。在平均局部大气干燥的情况下,降雨地区的局部大气干燥与地表降水的增加有关。在平均局部大气润湿的情况下,局部大气增湿与非降雨区域水汽会聚的加强有关,并且通过减弱对流区域水汽会聚的作用来减少对流降雨。平均局部水凝物浓度的减少和增加分别主要来自下雨层状和对流区。在平均局部水汽浓度降低和增加的情况下,层状和对流降雨的增加和减少分别与局部水汽浓度的降低和增加有关。

著录项

  • 来源
    《Atmospheric research》 |2010年第3期|P.371-384|共14页
  • 作者单位

    Key Laboratory of Meteorological Disaster of Ministry of Education, Nanjing University of Information Science and Technology, Nanjing, Jiangsu, China Department of Atmospheric and Oceanic Science, University of Maryland, College Park MD, USA;

    rnKey Laboratory of Meteorological Disaster of Ministry of Education, Nanjing University of Information Science and Technology, Nanjing, Jiangsu, China;

    rnKey Laboratory of Meteorological Disaster of Ministry of Education, Nanjing University of Information Science and Technology, Nanjing, Jiangsu, China;

    NOAA/NESDIS/Center for Satellite Applications and Research, Camp Springs, MD, USA;

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

    precipitation processes; water vapor convergence; local change of water vapor; local change of hydrometeor concentration; cloud-resolving model simulation;

    机译:沉淀过程;水蒸气会聚;水蒸气的局部变化;水凝物浓度的局部变化;云解析模型模拟;

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