GSTDTAP  > 气候变化
DOI10.1175/JCLI-D-16-0346.1
An Improved Convective Ice Parameterization for the NASA GISS Global Climate Model and Impacts on Cloud Ice Simulation
Elsaesser, Gregory S.1,2; Del Genio, Anthony D.2; Jiang, Jonathan H.3; Van Lier-Walqui, Marcus2,4
2017
发表期刊JOURNAL OF CLIMATE
ISSN0894-8755
EISSN1520-0442
出版年2017
卷号30期号:1
文章类型Article
语种英语
国家USA
英文摘要

Partitioning of convective ice into precipitating and detrained condensate presents a challenge for GCMs since partitioning depends on the strength and microphysics of the convective updraft. It is an important issue because detrainment of ice from updrafts influences the development of stratiform anvils, impacts radiation, and can affect GCM climate sensitivity. Recent studies have shown that the CMIP5 configurations of the Goddard Institute for Space Studies (GISS) GCM simulated upper-tropospheric ice water content (IWC) that exceeded an estimated upper bound by a factor of 2. Partly in response to this bias, a new GCM parameterization of convective cloud ice has been developed that incorporates new ice particle fall speeds and convective outflow particle size distributions (PSDs) from the NASA African Monsoon Multidisciplinary Analyses (NAMMA), NASA Tropical Composition, Cloud and Climate Coupling (TC4), DOE ARM-NASA Midlatitude Continental Convective Clouds Experiment (MC3E), and DOE ARM Small Particles in Cirrus (SPARTICUS) field campaigns. The new parameterization assumes a normalized gamma PSD with two novel developments: no explicit assumption for particle habit in the calculation of mass distributions, and a formulation for translating ice particle fall speeds as a function of maximum diameter into fall speeds as a function of melted-equivalent diameter. Two parameters (particle volume-and projected area-weighted equivalent diameter) are diagnosed as a function of temperature and IWC in the convective plume, and these parameters constrain the shape and scale of the normalized gamma PSD. The diagnosed fall speeds and PSDs are combined with the GCM's parameterized convective updraft vertical velocity to partition convective updraft condensate into precipitating and detrained components. A 5-yr prescribed sea surface temperature GCM simulation shows a 30%-50% decrease in upper-tropospheric deep convective IWC, bringing the tropical and global mean ice water path into closer agreement with CloudSat best estimates.


领域气候变化
收录类别SCI-E
WOS记录号WOS:000391855700019
WOS关键词PARTICLE-SIZE ; WATER-CONTENT ; TROPICAL CIRRUS ; STRATIFORM RAIN ; IN-SITU ; A-TRAIN ; SENSITIVITY ; SYSTEM ; CIRCULATION ; CMIP5
WOS类目Meteorology & Atmospheric Sciences
WOS研究方向Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/19733
专题气候变化
作者单位1.Columbia Univ, Dept Appl Phys & Math, New York, NY USA;
2.NASA, Goddard Inst Space Studies, 2880 Broadway, New York, NY 10025 USA;
3.CALTECH, Jet Prop Lab, Pasadena, CA USA;
4.Columbia Univ, Ctr Climate Syst Res, New York, NY USA
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GB/T 7714
Elsaesser, Gregory S.,Del Genio, Anthony D.,Jiang, Jonathan H.,et al. An Improved Convective Ice Parameterization for the NASA GISS Global Climate Model and Impacts on Cloud Ice Simulation[J]. JOURNAL OF CLIMATE,2017,30(1).
APA Elsaesser, Gregory S.,Del Genio, Anthony D.,Jiang, Jonathan H.,&Van Lier-Walqui, Marcus.(2017).An Improved Convective Ice Parameterization for the NASA GISS Global Climate Model and Impacts on Cloud Ice Simulation.JOURNAL OF CLIMATE,30(1).
MLA Elsaesser, Gregory S.,et al."An Improved Convective Ice Parameterization for the NASA GISS Global Climate Model and Impacts on Cloud Ice Simulation".JOURNAL OF CLIMATE 30.1(2017).
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