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GCMs with implicit and explicit representation of cloud microphysics for simulation of extreme precipitation frequency

  • In Sik Kang*
  • , Young Min Yang
  • , Wei Kuo Tao
  • *Corresponding author for this work
  • Seoul National University
  • University of Hawai'i at Mānoa
  • NASA Goddard Space Flight Center

Research output: Contribution to journalJournal articlepeer-review

Abstract

The present study aims to develop a general circulation model (GCM) with improved simulation of heavy precipitation frequency by improving the representations of cloud and rain processes. GCMs with conventional convective parameterizations produce common bias in precipitation frequency: they overestimate light precipitation and underestimate heavy precipitation with respect to observed values. This frequency shift toward light precipitation is attributed here to a lack of consideration of cloud microphysical processes related to heavy precipitation. The budget study of cloud microphysical processes using a cloud-resolving model shows that the melting of graupel and accretion of cloud water by graupel and rain water are important processes in the generation of heavy precipitation. However, those processes are not expressed explicitly in conventional GCMs with convective parameterizations. In the present study, the cloud microphysics is modified to allow its implementation into a GCM with a horizontal resolution of 50 km. The newly developed GCM, which includes explicit cloud microphysics, produces more heavy precipitation and less light precipitation than conventional GCMs, thus simulating a precipitation frequency that is closer to the observed. This study demonstrates that the GCM requires a full representation of cloud microphysics to simulate the extreme precipitation frequency realistically. It is also shown that a coarse-resolution GCM with cloud microphysics requires an additional mixing process in the lower troposphere.

Original languageEnglish
Article number2376
Pages (from-to)325-335
Number of pages11
JournalClimate Dynamics
Volume45
Issue number1-2
DOIs
StatePublished - 2015.10.26

Keywords

  • Cloud microphysics
  • Cloud resolving model
  • Cold-cloud processes
  • Frequency of heavy precipitation
  • GCM

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