A Causal Intercomparison framework unravels precipitation drivers in Global Storm-Resolving Models

Author:

Ricard Lucile1,Beucler Tom2,Stephan Claudia3,Nenes Athanasios1

Affiliation:

1. École Polytechnique Fédérale de Lausanne

2. University of Lausanne

3. University of Rostock

Abstract

Abstract

Correctly representing convective precipitation remains a long-standing problem in climate models, due to its highly parameterized nature and unclear role of drivers interacting over a wide range of spatial scales. We analyze and compare simulations of Global Storm-Resolving Models, using a methodology based on dimensionality reduction and causal inference, to unravel the contribution of large-scale variables and storm-scale dynamics on precipitation distribution. We derive regions of Column Relative Humidity (CRH), which exclude sharp humidity gradients and help define coherent thermodynamic environments, which are subsequently found to control precipitation throughout half of the tropics. The control of CRH on precipitation is notably amplified by considering explicitly the intermediate role of the convective area. Moreover, the effect values are consistent across models and quantiles, which could be further employed to constrain GCMs. Our results show that the most extreme intensities (99.9th percentile) cannot be adequately represented without high-resolution data on vertical velocity. However, their effect on precipitation varies considerably across models and precipitation quantiles, making it more difficult to develop a constraint on storm-scale control.

Publisher

Springer Science and Business Media LLC

Reference37 articles.

1. The Goddard Cumulus Ensemble model (GCE): Improvements and applications for studying precipitation processes;Tao W-K;Atmospheric Research,2014

2. Identifying Relations Between Deep Convection and the Large-Scale Atmosphere Using Explainable Artificial Intelligence;Retsch MH;Journal of Geophysical Research: Atmospheres,2022

3. The Relationship of Cloud Number and Size With Their Large-Scale Environment in Deep Tropical Convection;Louf V;Geophysical Research Letters,2019

4. On the Identification of the Large-Scale Properties of Tropical Convection Using Cloud Regimes;Tan J;Journal of Climate,2013

5. Observed Large-Scale Structures and Diabatic Heating and Drying Profiles during TWP-ICE;Xie S;Journal of Climate,2010

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