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Modeling East Asian Dust and Its Radiative Feedbacks in CAM4-BAM

  • Xiaoning Xie
  • , Xiaodong Liu
  • , Huizheng Che
  • , Xiaoxun Xie
  • , Hongli Wang
  • , Jiandong Li
  • , Zhengguo Shi
  • , Yangang Liu

Research output: Contribution to journalArticlepeer-review

45 Scopus citations

Abstract

East Asian dust and its radiative feedbacks are analyzed by the use of the fourth version of the Community Atmosphere Model (CAM4) with a bulk aerosol model parameterization (BAM) for the dust size distribution (CAM4-BAM). Two numerical experiments are conducted and intercompared: one with (Active) and one without (Passive) the radiative effects of dust aerosols. This CAM4-BAM captures the main spatial distribution of the dust aerosol optical depth (AOD) and the dust surface concentrations over East Asia, with positive correlations with the local observational data on annual and seasonal means. A comparative analysis of the Active and Passive experiments reveals that consideration of the dust-radiation interaction can significantly reduce dust emissions, loading, transport, and dry and wet depositions over East Asia, which is opposite to the enhanced dust cycle over North Africa. Further analysis of the contrasting dust-radiation feedbacks between North Africa and East Asia shows that over North Africa, the dust radiative forcing significantly increases the surface temperature and 10 m wind speed, whereas it decreases the surface temperature and the surface wind speeds over East Asia. These contrasting radiative effects, in turn, result in distinct dust cycle changes over these two regions. Mechanistic analysis reveals that the radiative contrasts between East Asia and North Africa are mainly due to the differences in their regional surface albedo, dust vertical distribution, and size distribution.

Original languageEnglish
Pages (from-to)1079-1096
Number of pages18
JournalJournal of Geophysical Research: Atmospheres
Volume123
Issue number2
DOIs
StatePublished - 27 Jan 2018

Keywords

  • CAM4-BAM
  • dust cycle
  • dust-radiation interaction

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