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Multi-Layer Arctic Mixed-Phase Clouds Simulated by a Cloud-Resolving Model: Comparison with ARM Observations and Sensitivity ExperimentsA cloud-resolving model (CRM) is used to simulate the multiple-layer mixed-phase stratiform (MPS) clouds that occurred during a three-and-a-half day subperiod of the Department of Energy-Atmospheric Radiation Measurement Program s Mixed-Phase Arctic Cloud Experiment (M-PACE). The CRM is implemented with an advanced two-moment microphysics scheme, a state-of-the-art radiative transfer scheme, and a complicated third-order turbulence closure. Concurrent meteorological, aerosol, and ice nucleus measurements are used to initialize the CRM. The CRM is prescribed by time-varying large-scale advective tendencies of temperature and moisture and surface turbulent fluxes of sensible and latent heat. The CRM reproduces the occurrences of the single- and double-layer MPS clouds as revealed by the M-PACE observations. However, the simulated first cloud layer is lower and the second cloud layer thicker compared to observations. The magnitude of the simulated liquid water path agrees with that observed, but its temporal variation is more pronounced than that observed. As in an earlier study of single-layer cloud, the CRM also captures the major characteristics in the vertical distributions and temporal variations of liquid water content (LWC), total ice water content (IWC), droplet number concentration and ice crystal number concentration (nis) as suggested by the aircraft observations. However, the simulated mean values differ significantly from the observed. The magnitude of nis is especially underestimated by one order of magnitude. Sensitivity experiments suggest that the lower cloud layer is closely related to the surface fluxes of sensible and latent heat; the upper cloud layer is probably initialized by the large-scale advective cooling/moistening and maintained through the strong longwave (LW) radiative cooling near the cloud top which enhances the dynamical circulation; artificially turning off all ice-phase microphysical processes results in an increase in LWP by a factor of 3 due to interactions between the excessive LW radiative cooling and extra cloud water; heating caused by phase change of hydrometeors could affect the LWC and cloud top height by partially canceling out the LW radiative cooling. It is further shown that the resolved dynamical circulation appears to contribute more greatly to the evolution of the MPS cloud layers than the parameterized subgrid-scale circulation.
Document ID
20090023544
Acquisition Source
Langley Research Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Luo, Yali
(Chinese Academy of Meteorological Sciences Beijing, China)
Xu, Kuan-Man
(NASA Langley Research Center Hampton, VA, United States)
Morrison, Hugh
(National Center for Atmospheric Research Boulder, CO, United States)
McFarquhar, Greg M.
(Illinois Univ. at Urbana-Champaign Urbana, IL, United States)
Wang, Zhien
(Wyoming Univ. Laramie, WY, United States)
Zhang, Gong
(Illinois Univ. at Urbana-Champaign Urbana, IL, United States)
Date Acquired
August 24, 2013
Publication Date
November 2, 2007
Publication Information
Publication: Journal of Geophysical Research - Atmospheres
Volume: 113
Subject Category
Meteorology And Climatology
Report/Patent Number
LF99-6113
Report Number: LF99-6113
Funding Number(s)
WBS: WBS 281945.02.04.01.27
Distribution Limits
Public
Copyright
Public Use Permitted.
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