Sensitivity of simulated rain intensity and kinetic energy to aerosols and warm‐rain microphysics during the extreme event of July 2021 in Belgium

Author:

Van Weverberg K.123ORCID,Ghilain N.14,Goudenhoofdt E.1,Barbier M.3,Koistinen E.3,Doutreloup S.4,Van Schaeybroeck B.13,Frankl A.3,Field P.25ORCID

Affiliation:

1. Meteorological and Climatological Research Unit Royal Meteorological Institute of Belgium Brussels Belgium

2. Atmospheric Processes and Parametrizations Met Office Exeter UK

3. Department of Geography Ghent University Ghent Belgium

4. Department of Geography University of Liege Liege Belgium

5. Institute for Climate and Atmospheric Science University of Leeds Leeds UK

Abstract

AbstractThis article presents an evaluation and sensitivity analysis of km‐scale simulations of an unprecedented extreme rainfall event over Europe, with a specific focus on sub‐hourly extremes, size distributions, and kinetic energy (KE) of rain. These variables are critical for hydrological applications, such as flood forecasting or soil‐loss monitoring, but are rarely directly obtained from numerical weather prediction (NWP) models. The simulations presented here reproduce the overall characteristics of the event, but overestimate the extreme rain rates. The rain rate–KE relation was well‐captured, despite too large volume‐mean drop diameters. Amongst the sensitivities investigated, the representation of the raindrop self‐collection–breakup equilibrium and the raindrop size‐distribution shape were found to have the most profound impact on the rainfall characteristics. While extreme rain rates varied within 30%, the rain KE varied by a factor of four between the realistic perturbations to the microphysical assumptions. Changes to the aerosol concentration and rain terminal velocity relations were found to have a relatively smaller impact. Given the large uncertainties, a continued effort to improve the model physics will be indispensable to estimate rain intensities and KE reliably for direct hydrological applications.

Publisher

Wiley

Reference83 articles.

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