A comparison of TWP-ICE observational data with cloud-resolving model results

被引:99
作者
Fridlind, A. M. [1 ]
Ackerman, A. S. [1 ]
Chaboureau, J. -P. [2 ]
Fan, J. [3 ]
Grabowski, W. W. [4 ]
Hill, A. A. [5 ]
Jones, T. R. [6 ]
Khaiyer, M. M. [7 ]
Liu, G. [8 ]
Minnis, P. [9 ]
Morrison, H. [4 ]
Nguyen, L. [9 ]
Park, S. [10 ]
Petch, J. C. [5 ]
Pinty, J. -P. [2 ]
Schumacher, C. [11 ]
Shipway, B. J. [5 ]
Varble, A. C. [12 ]
Wu, X. [8 ]
Xie, S. [13 ]
Zhang, M. [14 ]
机构
[1] NASA, Goddard Inst Space Studies, New York, NY 10025 USA
[2] Univ Toulouse, CNRS, Lab Aerol, F-31400 Toulouse, France
[3] Pacific NW Natl Lab, Atmospher Sci & Global Change Div, Richland, WA 99352 USA
[4] Natl Ctr Atmospher Res, Boulder, CO 80307 USA
[5] Met Off, Exeter EX1 3PB, Devon, England
[6] Colorado State Univ, Dept Atmospher Sci, Ft Collins, CO 80523 USA
[7] Sci Syst & Applicat Inc, Hampton, VA 23666 USA
[8] Florida State Univ, Dept Earth Ocean & Atmospher Sci, Tallahassee, FL 32306 USA
[9] NASA, Langley Res Ctr, Hampton, VA 23681 USA
[10] Iowa State Univ, Dept Geol & Atmospher Sci, Ames, IA USA
[11] Texas A&M Univ, Dept Atmospher Sci, College Stn, TX 77840 USA
[12] Univ Utah, Dept Atmospher Sci, Salt Lake City, UT 84112 USA
[13] Lawrence Livermore Natl Lab, Livermore, CA 94550 USA
[14] SUNY Stony Brook, Inst Planetary & Terr Atmospheres, Stony Brook, NY 11794 USA
关键词
LONG-TERM BEHAVIOR; SIMULATED SQUALL LINE; SINGLE-COLUMN MODELS; LIQUID WATER PATH; TOGA-COARE; PART I; SURFACE PROCESSES; PHASE-III; NUMERICAL-SIMULATION; VERTICAL VELOCITIES;
D O I
10.1029/2011JD016595
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Observations made during the TWP-ICE campaign are used to drive and evaluate thirteen cloud-resolving model simulations with periodic lateral boundary conditions. The simulations employ 2D and 3D dynamics, one-and two-moment microphysics, several variations on large-scale forcing, and the use of observationally derived aerosol properties to prognose droplet numbers. When domain means are averaged over a 6-day active monsoon period, all simulations reproduce observed surface precipitation rate but not its structural distribution. Simulated fractional areas covered by convective and stratiform rain are uncorrelated with one another, and are both variably overpredicted by up to a factor of similar to 2. Stratiform area fractions are strongly anticorrelated with outgoing longwave radiation (OLR) but are negligibly correlated with ice water path (IWP), indicating that ice spatial distribution controls OLR more than mean IWP. Overpredictions of OLR tend to be accompanied by underpredictions of reflected shortwave radiation (RSR). When there are two simulations differing only in microphysics scheme or large-scale forcing, the one with smaller stratiform area tends to exhibit greater OLR and lesser RSR by similar amounts. After similar to 10 days, simulations reach a suppressed monsoon period with a wide range of mean precipitable water vapor, attributable in part to varying overprediction of cloud-modulated radiative flux divergence compared with observationally derived values. Differences across the simulation ensemble arise from multiple sources, including dynamics, microphysics, and radiation treatments. Close agreement of spatial and temporal averages with observations may not be expected, but the wide spreads of predicted stratiform fraction and anticorrelated OLR indicate a need for more rigorous observation-based evaluation of the underlying micro- and macrophysical properties of convective and stratiform structures.
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