Study of tropical clouds feedback to a climate warming as simulated by climate models
Description
The last IPCC report affirms the predominant role of low cloud-radiative feedbacks in the inter-model spread of climate sensitivity. Understanding the mechanisms that control the behavior of low-level clouds is thus crucial. However, the complexity of coupled ocean-atmosphere models and the large number of processes potentially involved make the analysis of this response difficult. To simplify the analysis and to identify the most critical controls of cloud feedbacks, we analyze the cloud response to climate change simulated by the IPSL-CM5A model in a hierarchy of configurations. A comparison between three model configurations (coupled, atmospheric and aqua-planet) using the same physical parametrizations shows that the cloud response to global warming is dominated by a decrease of low clouds in regimes of moderate subsidence. Using a Single Column Model, forced by weak subsidence large-scale forcing, allows us to reproduce the vertical cloud profile predicted in the 3D model, as well as its response to climate change (if a stochastic forcing is added on vertical velocity). We analyze the sensitivity of this low-cloud response to external forcing and also to uncertain parameters of physical parameterizations involved on the atmospheric model. Through a moist static energy (MSE) budget, we highlight several mechanisms: (1) Robust: Over weak subsidence regimes, the Clausius-Clapeyron relationship predicts that a warmer atmosphere leads to a increase of the vertical MSE gradient, resulting on a strengthening of the import of low-MSE from the free atmosphere into the cloudy boundary layer. The MSE budget links changes of vertical advection and cloud radiative effects. (2) Physics Model Dependent: The coupling between shallow convection, turbulence and cloud schemes allows the intensification of low-MSE transport so that cloud radiative cooling becomes 'less necessary' to balance the energy budget (Robust positive low cloud-radiative feedback for the model). The amplitude of cloud feedback is proportional to the cloud cooling effect in the present climate. This effect is influenced by uncertain parameters of model physics which modify intensity of the positive β feedback between cloud radiative cooling, relative humidity and cloud fraction (self-maintenance of low clouds) In order to assess the generality of this feedback mechanism, we perform among several atmospheric CMIP5 models. Those models simulate a robust positive tropical low cloud feedback. The use of seasonal variability to anticipate amplitudes of low-cloud response under global warming, and to design an observational test for their evaluation will be discussed. (author)
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Additional details
Additional titles
- Original title (French)
- Etude de la reponse des nuages tropicaux a un rechauffement climatique simulee par les modeles de climat
Identifiers
Publishing Information
- Imprint Pagination
- 196 p.
- Report number
- INIS-FR--13-0013
INIS
- Country of Publication
- France
- Country of Input or Organization
- France
- INIS RN
- 44011510
- Subject category
- S54: ENVIRONMENTAL SCIENCES;
- Descriptors DEI
- ADVECTION; AMBIENT TEMPERATURE; ATMOSPHERIC CIRCULATION; BOUNDARY LAYERS; CLIMATE MODELS; CLOUDS; FEEDBACK; GENERAL CIRCULATION MODELS; GREENHOUSE EFFECT; HUMIDITY; RADIATIVE COOLING; RESPONSE FUNCTIONS; SEASONAL VARIATIONS; SENSITIVITY ANALYSIS; TROPICAL REGIONS
- Descriptors DEC
- CLIMATIC CHANGE; COOLING; FUNCTIONS; LAYERS; MASS TRANSFER; MATHEMATICAL MODELS; MOISTURE; VARIATIONS
Optional Information
- Notes
- 193 refs.; Available from the INIS Liaison Officer for France, see the 'INIS contacts' section of the INIS website for current contact and E-mail addresses: http://www.iaea.org/INIS/contacts/