NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Press Enter or click the Search button to begin your search.

Back to Results
South Asian Monsoon Response to Regional Aerosol Emission Reductions: Insights From RAMIPAnthropogenic aerosol and associated precursor gas emissions are already declining in many regions and are likely to decline significantly by 2050, with major implications for regional climate. Unlike greenhouse gases, aerosol impacts are spatially heterogeneous and can influence climate both near emission sources and through remote teleconnections. This is particularly important for the South Asian monsoon system, where both local and remote aerosol changes can significantly affect precipitation patterns. Using simulations from the Regional Aerosol Model Intercomparison Project, we examine how local and remote aerosol emission reductions influence South Asian climate across both pre-monsoon and monsoon seasons, including weakening of the elevated heat pump (EHP) mechanism during pre-monsoon months. Our analysis employs 10-member ensembles from 10 CMIP6-era models to compare three experiments with global, South Asian, and East Asian aerosol reductions relative to a high-emission baseline (SSP3-7.0). This experimental design allows us to isolate and quantify the distinct impacts of regional emission changes. Results reveal that global aerosol reductions produce a larger all-India precipitation increase (+0.28 mm day−1) than South Asian reductions alone (+0.19 mm day−1), with the strongest regional responses over the northern Bay of Bengal, the Western Ghats and Indo-Gangetic Plains. East Asian reductions show uncertain but modest precipitation reductions of 0.2-0.6 mm day−1over parts of west-central and eastern Indian regions. Pre-monsoon carbonaceous aerosol reductions systematically weaken the EHP, cooling the mid-troposphere over the Himalayan foothills by up to 0.4 K and producing localised anomalous descent that opposes the climatological pre-monsoon ascent. Substantial inter-model diversity exists in the spatial patterns and magnitudes of these responses, highlighting key uncertainties in aerosol–monsoon interactions. The South Asian precipitation response is driven by enhanced land–sea thermal contrast, while the pre-monsoon EHP weakening is attributable exclusively to local South Asian carbonaceous aerosol forcing rather than remote teleconnections. These findings have direct implications for air quality and climate adaptation planning across South Asia as regional aerosol emissions diverge under different development pathways.
Document ID
20260006126
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Ankit Bhandekar ORCID
(University of Reading Reading, United Kingdom)
Laura J Wilcox ORCID
(University of Reading Reading, United Kingdom)
Bryan N Lawrence ORCID
(University of Reading Reading, United Kingdom)
Nathan Luke Abraham ORCID
(University of Cambridge Cambridge, United Kingdom)
Fiona M O'Connor ORCID
(Met Office Exeter, United Kingdom)
Bjørn Samset ORCID
(CICERO Center for International Climate Research Oslo, Norway)
Robert J Allen ORCID
(University of California, Riverside Riverside, United States)
Sharar Ahmadi ORCID
(University of Reading Reading, United Kingdom)
Annica Ekman ORCID
(Stockholm University Stockholm, Sweden)
Maxwell T Elling ORCID
(University of Colorado Boulder Boulder, United States)
Luke Fraser-Leach ORCID
(University of Toronto Toronto, Canada)
Paul Griffiths ORCID
(University of Bristol Bristol, United Kingdom)
James Keeble ORCID
(Lancaster University Lancaster, United Kingdom)
Tsuyoshi Koshiro ORCID
(Japan Meteorological Agency Tokyo, Japan)
Paul Kushner ORCID
(University of Toronto Toronto, Canada)
Anna Lewinschal ORCID
(Stockholm University Stockholm, Sweden)
Molly MacRae ORCID
(University of Reading Reading, United Kingdom)
Risto Makkonen ORCID
(Finnish Meteorological Institute Helsinki, Finland)
Joonas Merikanto ORCID
(Finnish Meteorological Institute Helsinki, Finland)
Pierre Nabat ORCID
(Centre National de Recherches Météorologiques Toulouse, France)
Larissa Nazarenko ORCID
(Columbia University New York, United States)
Declan O’Donnell ORCID
(Finnish Meteorological Institute Helsinki, Finland)
Naga Oshima ORCID
(Japan Meteorological Agency Tokyo, Japan)
Geeta Persad ORCID
(The University of Texas at Austin Austin, United States)
Steven T Rumbold ORCID
(University of Reading Reading, United Kingdom)
Neil Swart ORCID
(Environment and Climate Change Canada Ottawa, Canada)
Toshihiko Takemura ORCID
(Kyushu University Fukuoka, Japan)
Kostas Tsigaridis ORCID
(Columbia University New York, United States)
Daniel M Westervelt ORCID
(Lamont-Doherty Earth Observatory Sparkill, United States)
Date Acquired
July 9, 2026
Publication Date
July 9, 2026
Publication Information
Publication: Environmental Research: Climate
Publisher: Institute of Physics
Volume: 5
Issue: 3
Issue Publication Date: September 1, 2026
e-ISSN: 2752-5295
Subject Category
Meteorology and Climatology
Funding Number(s)
CONTRACT_GRANT: 80NSSC24M0002
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
cmip6
air quality
climate change
India
regional climate
monsoon
aerosols
No Preview Available