The atmospheric component of the Mediterranean Sea water budget in a WRF multi-physics ensemble and observations

被引:27
|
作者
Di Luca, Alejandro [1 ,2 ,3 ]
Flaounas, Emmanouil [1 ,2 ]
Drobinski, Philippe [1 ,2 ]
Brossier, Cindy Lebeaupin [4 ,5 ]
机构
[1] CNRS, Inst Pierre Simon Laplace, Lab Meteorol Dynam, F-91128 Palaiseau, France
[2] Ecole Polytech, F-91128 Palaiseau, France
[3] Univ New S Wales, Climate Change Res Ctr, Sydney, NSW 2052, Australia
[4] Meteo France, CNRM GAME, UMR3589, F-31057 Toulouse, France
[5] CNRS, F-31057 Toulouse, France
关键词
Regional climate model; Evaporation; Precipitation; Parameterizations; Cumulus; Planetary boundary layer; PLANETARY BOUNDARY-LAYER; BULK PARAMETERIZATION; CUMULUS PARAMETERIZATION; CLIMATE-CHANGE; CLOSURE-MODEL; CONVECTION; SENSITIVITY; SIMULATIONS; COORDINATE; SATELLITE;
D O I
10.1007/s00382-014-2058-z
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The use of high resolution atmosphere-ocean coupled regional climate models to study possible future climate changes in the Mediterranean Sea requires an accurate simulation of the atmospheric component of the water budget (i.e., evaporation, precipitation and runoff). A specific configuration of the version 3.1 of the weather research and forecasting (WRF) regional climate model was shown to systematically overestimate the Mediterranean Sea water budget mainly due to an excess of evaporation (similar to 1,450 mm yr(-1)) compared with observed estimations (similar to 1,150 mm yr(-1)). In this article, a 70-member multiphysics ensemble is used to try to understand the relative importance of various sub-grid scale processes in the Mediterranean Sea water budget and to evaluate its representation by comparing simulated results with observed-based estimates. The physics ensemble was constructed by performing 70 1-year long simulations using version 3.3 of the WRF model by combining six cumulus, four surface/planetary boundary layer and three radiation schemes. Results show that evaporation variability across the multi-physics ensemble (similar to 10 % of the mean evaporation) is dominated by the choice of the surface layer scheme that explains more than similar to 70 % of the total variance and that the overestimation of evaporation in WRF simulations is generally related with an overestimation of surface exchange coefficients due to too large values of the surface roughness parameter and/or the simulation of too unstable surface conditions. Although the influence of radiation schemes on evaporation variability is small (similar to 13 % of the total variance), radiation schemes strongly influence exchange coefficients and vertical humidity gradients near the surface due to modifications of temperature lapse rates. The precipitation variability across the physics ensemble (similar to 35 % of the mean precipitation) is dominated by the choice of both cumulus (similar to 55 % of the total variance) and planetary boundary layer (similar to 32 % of the total variance) schemes with a strong regional dependence. Most members of the ensemble underestimate total precipitation amounts with biases as large as 250 mm yr(-1) over the whole Mediterranean Sea compared with ERA Interim reanalysis mainly due to an underestimation of the number of wet days. The larger number of dry days in simulations is associated with a deficit in the activation of cumulus schemes. Both radiation and planetary boundary layer schemes influence precipitation through modifications on the available water vapor in the boundary layer generally tied with changes in evaporation.
引用
收藏
页码:2349 / 2375
页数:27
相关论文
共 43 条
  • [31] Impact of the spatial distribution of the atmospheric forcing on water mass formation in the Mediterranean Sea
    Beranger, Karine
    Drillet, Yann
    Houssais, Marie-Noelle
    Testor, Pierre
    Bourdalle-Badie, Romain
    Alhammoud, Bahjat
    Bozec, Alexandra
    Mortier, Laurent
    Bouruet-Aubertot, Pascale
    Crepon, Michel
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2010, 115
  • [32] Impact of Atmospheric and Model Physics Perturbations on a High-Resolution Ensemble Data Assimilation System of the Red Sea
    Sanikommu, Sivareddy
    Toye, Habib
    Zhan, Peng
    Langodan, Sabique
    Krokos, George
    Knio, Omar
    Hoteit, Ibrahim
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2020, 125 (08)
  • [33] A multi-model ensemble view of winter heat flux dynamics and the dipole mode in the Mediterranean Sea
    Liguori, Giovanni
    Di Lorenzo, Emanuele
    Cabos, William
    CLIMATE DYNAMICS, 2017, 48 (3-4) : 1089 - 1108
  • [34] Evolution of Mediterranean Sea water properties under climate change scenarios in the Med-CORDEX ensemble
    Soto-Navarro, Javier
    Jorda, G.
    Amores, A.
    Cabos, W.
    Somot, S.
    Sevault, F.
    Macias, D.
    Djurdjevic, V
    Sannino, G.
    Li, L.
    Sein, D.
    CLIMATE DYNAMICS, 2020, 54 (3-4) : 2135 - 2165
  • [35] Evaluation of Mediterranean Sea water and heat budgets simulated by an ensemble of high resolution regional climate models
    E. Sanchez-Gomez
    S. Somot
    S. A. Josey
    C. Dubois
    N. Elguindi
    M. Déqué
    Climate Dynamics, 2011, 37 : 2067 - 2086
  • [36] Future changes in tropical cyclone activity projected by multi-physics and multi-SST ensemble experiments using the 60-km-mesh MRI-AGCM
    Murakami, Hiroyuki
    Mizuta, Ryo
    Shindo, Eiki
    CLIMATE DYNAMICS, 2012, 39 (9-10) : 2569 - 2584
  • [37] Multi-scale observations of atmospheric moisture variability in relation to heavy precipitating systems in the northwestern Mediterranean during HyMeX IOP12
    Khodayar, Samiro
    Czajka, Beata
    Caldas-Alvarez, Alberto
    Helgert, Sebastian
    Flamant, Cyrille
    Di Girolamo, Paolo
    Bock, Olivier
    Chazette, Patrick
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2018, 144 (717) : 2761 - 2780
  • [38] Application of linear minimum variance estimation to the multi-model ensemble of atmospheric radioactive Cs-137 with observations
    Goto, Daisuke
    Morino, Yu
    Ohara, Toshimasa
    Sekiyama, Tsuyoshi Thomas
    Uchida, Junya
    Nakajima, Teruyuki
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (06) : 3589 - 3607
  • [39] Future projections of the surface heat and water budgets of the Mediterranean Sea in an ensemble of coupled atmosphere–ocean regional climate models
    C. Dubois
    S. Somot
    S. Calmanti
    A. Carillo
    M. Déqué
    A. Dell’Aquilla
    A. Elizalde
    S. Gualdi
    D. Jacob
    B. L’Hévéder
    L. Li
    P. Oddo
    G. Sannino
    E. Scoccimarro
    F. Sevault
    Climate Dynamics, 2012, 39 : 1859 - 1884
  • [40] Future projections of the surface heat and water budgets of the Mediterranean Sea in an ensemble of coupled atmosphere-ocean regional climate models
    Dubois, C.
    Somot, S.
    Calmanti, S.
    Carillo, A.
    Deque, M.
    Dell'Aquilla, A.
    Elizalde, A.
    Gualdi, S.
    Jacob, D.
    L'Heveder, B.
    Li, L.
    Oddo, P.
    Sannino, G.
    Scoccimarro, E.
    Sevault, F.
    CLIMATE DYNAMICS, 2012, 39 (7-8) : 1859 - 1884