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The Effect of Explicit Convection on Couplings between Rainfall, Humidity, and Ascent over Africa under Climate Change

Authors :
Lawrence S. Jackson
Elizabeth J. Kendon
Douglas J. Parker
Lorenzo Tomassini
John H. Marsham
Rachel Stratton
Simon Tucker
Declan L. Finney
Source :
Journal of Climate. 33:8315-8337
Publication Year :
2020
Publisher :
American Meteorological Society, 2020.

Abstract

The Hadley circulation and tropical rain belt are dominant features of African climate. Moist convection provides ascent within the rain belt, but must be parameterized in climate models, limiting predictions. Here, we use a pan-African convection-permitting model (CPM), alongside a parameterized convection model (PCM), to analyze how explicit convection affects the rain belt under climate change. Regarding changes in mean climate, both models project an increase in total column water (TCW), a widespread increase in rainfall, and slowdown of subtropical descent. Regional climate changes are similar for annual mean rainfall but regional changes of ascent typically strengthen less or weaken more in the CPM. Over a land-only meridional transect of the rain belt, the CPM mean rainfall increases less than in the PCM (5% vs 14%) but mean vertical velocity at 500 hPa weakens more (17% vs 10%). These changes mask more fundamental changes in underlying distributions. The decrease in 3-hourly rain frequency and shift from lighter to heavier rainfall are more pronounced in the CPM and accompanied by a shift from weak to strong updrafts with the enhancement of heavy rainfall largely due to these dynamic changes. The CPM has stronger coupling between intense rainfall and higher TCW. This yields a greater increase in rainfall contribution from events with greater TCW, with more rainfall for a given large-scale ascent, and so favors slowing of that ascent. These findings highlight connections between the convective-scale and larger-scale flows and emphasize that limitations of parameterized convection have major implications for planning adaptation to climate change.

Details

ISSN :
15200442 and 08948755
Volume :
33
Database :
OpenAIRE
Journal :
Journal of Climate
Accession number :
edsair.doi.dedup.....893e8c90e18a4f3adae5937a10021387
Full Text :
https://doi.org/10.1175/jcli-d-19-0322.1