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Evaluation of Two Cloud-Resolving Models Using Bin or Bulk Microphysics Representation for the HyMeX-IOP7a Heavy Precipitation Event
被引:2
|作者:
Arteaga, Diana
[1
]
Planche, Celine
[1
]
Kagkara, Christina
[1
]
Wobrock, Wolfram
[1
]
Banson, Sandra
[1
]
Tridon, Frederic
[2
]
Flossmann, Andrea
[1
]
机构:
[1] Univ Clermont Auvergne, Lab Meteorol Phys, LaMP, CNRS UMR 6016, F-63000 Clermont Ferrand, France
[2] Univ Cologne, Inst Geophys & Meteorol, D-50923 Cologne, Germany
来源:
关键词:
mesoscale models;
bulk and bin microphysics;
precipitation estimation;
HyMeX experiment;
PART I;
SQUALL LINE;
NUMERICAL SIMULATIONS;
EXPLICIT FORECASTS;
ICE-NUCLEATION;
SEVERE STORM;
SENSITIVITY;
SCHEME;
PARAMETERIZATION;
RAINFALL;
D O I:
10.3390/atmos11111177
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
The Mediterranean region is frequently affected in autumn by heavy precipitation that causes flash-floods or landslides leading to important material damage and casualties. Within the framework of the international HyMeX program (HYdrological cycle in Mediterranean EXperiment), this study aims to evaluate the capabilities of two models, WRF (Weather Research and Forecasting) and DESCAM (DEtailed SCAvenging Model), which use two different representations of the microphysics to reproduce the observed atmospheric properties (thermodynamics, wind fields, radar reflectivities and precipitation features) of the HyMeX-IOP7a intense precipitating event (26 September 2012). The DESCAM model, which uses a bin resolved representation of the microphysics, shows results comparable to the observations for the precipitation field at the surface. On the contrary, the simulations made with the WRF model using a bulk representation of the microphysics (either the Thompson scheme or the Morrison scheme), commonly employed in NWP models, reproduce neither the intensity nor the distribution of the observed precipitation-the rain amount is overestimated and the most intense cell is shifted to the East. The different simulation results show that the divergence in the surface precipitation features seems to be due to different mechanisms involved in the onset of the precipitating system: the convective system is triggered by the topography of the Cevennes mountains (i.e., south-eastern part of the Massif Central) in DESCAM and by a low-level flux convergence in WRF. A sensitivity study indicates that the microphysics properties have impacted the thermodynamics and dynamics fields inducing the low-level wind convergence simulated with WRF for this HyMeX event.
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