:LASG Global AGCM with a Two-moment Cloud Microphysics Scheme:Energy Balance and Cloud Radiative Forcing Characteristics论文

:LASG Global AGCM with a Two-moment Cloud Microphysics Scheme:Energy Balance and Cloud Radiative Forcing Characteristics论文

本文主要研究内容

作者(2019)在《LASG Global AGCM with a Two-moment Cloud Microphysics Scheme:Energy Balance and Cloud Radiative Forcing Characteristics》一文中研究指出:Cloud dominates influence factors of atmospheric radiation, while aerosol–cloud interactions are of vital importance in its spatiotemporal distribution. In this study, a two-moment(mass and number) cloud microphysics scheme, which significantly improved the treatment of the coupled processes of aerosols and clouds, was incorporated into version 1.1 of the IAP/LASG global Finite-volume Atmospheric Model(FAMIL1.1). For illustrative purposes, the characteristics of the energy balance and cloud radiative forcing(CRF) in an AMIP-type simulation with prescribed aerosols were compared with those in observational/reanalysis data. Even within the constraints of the prescribed aerosol mass, the model simulated global mean energy balance at the top of the atmosphere(TOA) and at the Earth’s surface, as well as their seasonal variation, are in good agreement with the observational data. The maximum deviation terms lie in the surface downwelling longwave radiation and surface latent heat flux, which are 3.5 W m-2(1%) and 3 W m-2(3.5%), individually. The spatial correlations of the annual TOA net radiation flux and the net CRF between simulation and observation were around 0.97 and 0.90, respectively. A major weakness is that FAMIL1.1 predicts more liquid water content and less ice water content over most oceans. Detailed comparisons are presented for a number of regions, with a focus on the Asian monsoon region(AMR). The results indicate that FAMIL1.1 well reproduces the summer–winter contrast for both the geographical distribution of the longwave CRF and shortwave CRF over the AMR. Finally, the model bias and possible solutions, as well as further works to develop FAMIL1.1 are discussed.

Abstract

Cloud dominates influence factors of atmospheric radiation, while aerosol–cloud interactions are of vital importance in its spatiotemporal distribution. In this study, a two-moment(mass and number) cloud microphysics scheme, which significantly improved the treatment of the coupled processes of aerosols and clouds, was incorporated into version 1.1 of the IAP/LASG global Finite-volume Atmospheric Model(FAMIL1.1). For illustrative purposes, the characteristics of the energy balance and cloud radiative forcing(CRF) in an AMIP-type simulation with prescribed aerosols were compared with those in observational/reanalysis data. Even within the constraints of the prescribed aerosol mass, the model simulated global mean energy balance at the top of the atmosphere(TOA) and at the Earth’s surface, as well as their seasonal variation, are in good agreement with the observational data. The maximum deviation terms lie in the surface downwelling longwave radiation and surface latent heat flux, which are 3.5 W m-2(1%) and 3 W m-2(3.5%), individually. The spatial correlations of the annual TOA net radiation flux and the net CRF between simulation and observation were around 0.97 and 0.90, respectively. A major weakness is that FAMIL1.1 predicts more liquid water content and less ice water content over most oceans. Detailed comparisons are presented for a number of regions, with a focus on the Asian monsoon region(AMR). The results indicate that FAMIL1.1 well reproduces the summer–winter contrast for both the geographical distribution of the longwave CRF and shortwave CRF over the AMR. Finally, the model bias and possible solutions, as well as further works to develop FAMIL1.1 are discussed.

论文参考文献

  • [1].A modeling study of aerosol effects on cloud radiative property and precipitation[J]. FANG Wen 1,ZHENG GuoGuang 1 & WANG Wei-Chyung 2 1 Chinese Academy of Meteorological Sciences,Beijing 100081,China;2 Atmospheric Sciences Research Center,State University of New York,Albany,NY 12203,USA.  Chinese Science Bulletin.2010(15)
  • [2].Accuracy analysis of PPDF-based method to parameterize aerosol scattering effect[J]. ZOU MingMin,CHEN LiangFu,TAO JinHua,SU Lin,FAN Meng,ZHANG Ying,HAN Dong.  Science China(Earth Sciences).2014(08)
  • [3].Spatial and temporal distribution of MODIS and MISR aerosol optical depth over northern China and comparison with AERONET[J]. QI YuLei,GE JinMing,HUANG JianPing.  Chinese Science Bulletin.2013(20)
  • [4].Analysis of variation trends and causes of aerosol optical depth in Shaanxi Province using MODIS data[J]. DONG ZiPeng,YU Xing,LI XingMin,DAI Jin.  Chinese Science Bulletin.2013(35)
  • [5].Two-wavelength Lidar Measurement of Cloud-aerosol Optical Properties[J]. 邱金桓.  Advances in Atmospheric Sciences.1995(02)
  • [6].SIMULTANEOUS DETERMINATION OF AEROSOL SIZE DISTRIBUTION AND REFRACTIVE INDEX AND SURFACE ALBEDO FROM RADIANCE- PART III: PARAMETRIZATION AND APPLICATION[J]. 邱金桓.  Advances in Atmospheric Sciences.1988(03)
  • [7].Numerical study of aerosol effect on three types of clouds and precipitation in Beijing area[J]. ZhiGuo Yue 1,2,XiaoDong Liu 1,ShuYan Liu 3 1.SKLLQG,Institute of Earth Environment,Chinese Academy of Sciences,Xi’an,Shaanxi 710075,China 2.Weather Modification Office of Shaanxi Province,Xi’an,Shaanxi 710015,China 3.Earth System Science and Interdisciplinary Center,University of Maryland,College Park,Maryland 20740,USA.  Sciences in Cold and Arid Regions.2012(04)
  • [8].AN APPROXIMATE EXPRESSION OF THE SKY RADIANCE IN ALMUCANTAR AND ITS APPLICATION[J]. 邱金桓.  Advances in Atmospheric Sciences.1986(01)
  • [9].The relationships among aerosol optical depth, ice, phytoplankton and dimethylsulfide and the implication for future climate in the Greenland Sea[J]. QU Bo,GABRIC Albert J.,ZHAO Li,SUN Wenjing,LI Hehe,GU Peijuan,JIANG Limei,ZENG Meifang.  Acta Oceanologica Sinica.2018(05)
  • [10].Effects of climate changes on dust aerosol over East Asia from RegCM3[J]. ZHANG Dong-Feng,GAO Xue-Jie,Ashraf ZAKEY,Filippo GIORGI.  Advances in Climate Change Research.2016(03)
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