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Human influence strengthens the contrast between tropical wet and dry regions

Authors :
Andrew P Schurer
Andrew P Ballinger
Andrew R Friedman
Gabriele C Hegerl
Source :
Environmental Research Letters, Vol 15, Iss 10, p 104026 (2020)
Publication Year :
2020
Publisher :
IOP Publishing, 2020.

Abstract

Climate models predict a strengthening contrast between wet and dry regions in the tropics and subtropics (30 °Sā€“30 °N), and data from the latest model intercomparison project (CMIP6) support this expectation. Rainfall in ascending regions increases, and in descending regions decreases in climate models, reanalyses, and observational data. This strengthening contrast can be captured by tracking the rainfall change each month in the wettest and driest third of the tropics and subtropics combined. Since wet and dry regions are selected individually every month for each model ensemble member, and the observations, this analysis is largely unaffected by biases in location of precipitation features. Blended satellite and in situ data from 1988ā€“2019 support the CMIP6-model-simulated tendency of sharpening contrasts between wet and dry regions, with rainfall in wet regions increasing substantially opposed by a slight decrease in dry regions. We detect the effect of external forcings on tropical and subtropical observed precipitation in wet and dry regions combined, and attribute this change for the first time to anthropogenic and natural forcings separately. Our results show that most of the observed change has been caused by increasing greenhouse gases. Natural forcings also contribute, following the drop in wet-region precipitation after the 1991 eruption of Mount Pinatubo, while anthropogenic aerosol effects show only weak trends in tropic-wide wet and dry regions consistent with flat global aerosol forcing over the analysis period. The observed response to external forcing is significantly larger ( p > 0.95) than the multi-model mean simulated response. As expected from climate models, the observed signal strengthens further when focusing on the wet tail of spatial distributions in both models and data.

Details

Language :
English
ISSN :
17489326
Volume :
15
Issue :
10
Database :
Directory of Open Access Journals
Journal :
Environmental Research Letters
Publication Type :
Academic Journal
Accession number :
edsdoj.94a5e2ab364f0c9846a54bf951ea16
Document Type :
article
Full Text :
https://doi.org/10.1088/1748-9326/ab83ab