首页 | 本学科首页   官方微博 | 高级检索  
     检索      


Combined influence of atmospheric physics and soil hydrology on the simulated meteorology at the SIRTA atmospheric observatory
Authors:F Cheruy  A Campoy  J-C Dupont  A Ducharne  F Hourdin  M Haeffelin  M Chiriaco  A Idelkadi
Institution:1. Laboratoire de Météorologie Dynamique du CNRS, 4 Place Jussieu, case courrier 99, 75252, Paris Cedex 05, France
4. Sisyphe, UPMC/CNRS, Paris, France
3. IPSL, Ecole Polytechnique, 91128, Palaiseau Cedex, France
2. LMD, 4 Place Jussieu, case courrier 99, 75252, Paris Cedex 05, France
5. LATMOS, Paris, France
Abstract:The identification of the land-atmosphere interactions as one of the key source of uncertainty in climate models calls for process-level assessment of the coupled atmosphere/land continental surface system in numerical climate models. To this end, we propose a novel approach and apply it to evaluate the standard and new parametrizations of boundary layer/convection/clouds in the Earth System Model (ESM) of Institut Pierre Simon Laplace (IPSL), which differentiate the IPSL-CM5A and IPSL-CM5B climate change simulations produced for the Coupled Model Inter-comparison Project phase 5 exercise. Two different land surface hydrology parametrizations are also considered to analyze different land-atmosphere interactions. Ten-year simulations of the coupled land surface/atmospheric ESM modules are confronted to observations collected at the SIRTA (Site Instrumental de Recherche par Télédection Atmosphérique), located near Paris (France). For sounder evaluation of the physical parametrizations, the grid of the model is stretched and refined in the vicinity of the SIRTA, and the large scale component of the modeled circulation is adjusted toward ERA-Interim reanalysis outside of the zoomed area. This allows us to detect situations where the parametrizations do not perform satisfactorily and can affect climate simulations at the regional/continental scale, including in full 3D coupled runs. In particular, we show how the biases in near surface state variables simulated by the ESM are explained by (1) the sensible/latent heat partitionning at the surface, (2) the low level cloudiness and its radiative impact at the surface, (3) the parametrization of turbulent transport in the surface layer, (4) the complex interplay between these processes. We also show how the new set of parametrizations can improve these biases.
Keywords:
本文献已被 SpringerLink 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号