热带地区和美国中部降水的日周期:全球大气环流模型相互比较

IF 3 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Cheng Tao, Shaocheng Xie, Hsi-Yen Ma, Peter Bechtold, Zeyu Cui, Paul A. Vaillancourt, Kwinten Van Weverberg, Yi-Chi Wang, May Wong, Jing Yang, Guang J. Zhang, In-Jin Choi, Shuaiqi Tang, Jiangfeng Wei, Wen-Ying Wu, Meng Zhang, J. David Neelin, Xubin Zeng
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引用次数: 0

摘要

昼夜降水是气候模式难以准确模拟的一种基本变率模式。在此,我们对全球能源与水资源交换所 "昼夜降水周期 "项目参与气候模式在热带地区和美国中部地区的昼夜降水周期(DCP)进行了评估。常见的模式偏差,如热带地区降水过多、小到中雨过于频繁以及未能捕捉到美国中部地区的传播对流等问题依然存在。在美国中部地区,气候运行中降雨强度太弱的问题在使用数值天气预报分析的初始条件进行后报运行时得到了很好的改善。但在亚马逊中部地区,改善程度微乎其微。纳入大尺度环境在对流触发过程中的作用有助于解决许多模式中的相位锁定问题,在这些模式中,由于陆地上的日照最大,降水经常错误地在接近中午时达到峰值。允许气团被抬升到边界层之上,可改善夜间降水的模拟,夜间降水通常与中尺度系统的传播有关。在积云参数化中加入对流记忆可抑制小到中雨,促进强降雨;但也会削弱昼夜变化。单纯提高模式分辨率(仍使用积云参数化)并不能完全解决低分辨率气候模式在 DCP 中的偏差问题。本研究的分层建模框架有助于确定模式中缺失的物理现象,并测试不同对流体制下模式对流过程的新发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diurnal Cycle of Precipitation Over the Tropics and Central U.S.: GCM Intercomparison
Diurnal precipitation is a fundamental mode of variability that climate models have difficulty in accurately simulating. Here the diurnal cycle of precipitation (DCP) in participating climate models from the Global Energy and Water Exchanges’ DCP project is evaluated over the tropics and central U.S. Common model biases such as excessive precipitation over the tropics, too frequent light-to-moderate rain, and the failure to capture propagating convection in the central U.S. still exist. Over the central U.S., the issues of too weak rainfall intensity in climate runs is well improved in their hindcast runs with initial conditions from Numerical Weather Prediction analyses. But the improvement is minimal over the central Amazon. Incorporating the role of the large-scale environment in convective triggering processes helps resolve the phase-locking issue in many models where precipitation often incorrectly peaks near noon due to maximum insolation over land. Allowing air parcels to be lifted above the boundary layer improves the simulation of nocturnal precipitation which is often associated with the propagation of mesoscale systems. Including convective memory in cumulus parameterizations acts to suppress light-to-moderate rain and promote intense rainfall; however, it also weakens the diurnal variability. Simply increasing model resolution (with cumulus parameterizations still used) cannot fully resolve the biases of low-resolution climate models in DCP. The hierarchy modeling framework from this study is useful for identifying the missing physics in models and testing new development of model convective processes over different convective regimes.
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来源期刊
CiteScore
16.80
自引率
4.50%
发文量
163
审稿时长
3-8 weeks
期刊介绍: The Quarterly Journal of the Royal Meteorological Society is a journal published by the Royal Meteorological Society. It aims to communicate and document new research in the atmospheric sciences and related fields. The journal is considered one of the leading publications in meteorology worldwide. It accepts articles, comprehensive review articles, and comments on published papers. It is published eight times a year, with additional special issues. The Quarterly Journal has a wide readership of scientists in the atmospheric and related fields. It is indexed and abstracted in various databases, including Advanced Polymers Abstracts, Agricultural Engineering Abstracts, CAB Abstracts, CABDirect, COMPENDEX, CSA Civil Engineering Abstracts, Earthquake Engineering Abstracts, Engineered Materials Abstracts, Science Citation Index, SCOPUS, Web of Science, and more.
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