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StratoFIRE: Modeling Wildfire Smoke in the StratosphereThe most extreme manifestation of a fire–weather interaction is the formation of pyrocumulonimbus (pyroCb) thunderstorms, triggered by super-heated updrafts, which can eject smoke at altitudes exceeding 20 Km. In this study, we investigated climate-related impacts from the most intensive pyroCb-triggered injection of smoke in the stratosphere: the Australian New Year wildfires in 2019/2020. We first provide a general overview of the vision and objectives of the StratoFIRE project. With the aid of the global chemistry-climate model EMAC, we then simulate radiative and chemical perturbations in the stratosphere in relation to 0.9 Tg smoke in the stratosphere assuming different injection heights, from 13 to 16 Km. The simulation of stratospheric optical depth perturbations were found to be sensitive to the assumed injection height, with a maximum height at 16 Km showing the best agreement with the GLOSSAC and SAGE-ISS aerosol extinction observations.
Document ID
20230013618
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Stergios Misios ORCID
(National Observatory of Athens Athens, Attiki, Greece)
Andreas Chrysanthou
(National Observatory of Athens Athens, Attiki, Greece)
Konstantinos Tsigaridis
(Columbia University New York, New York, United States)
Vassilis Amiridis ORCID
(National Observatory of Athens Athens, Attiki, Greece)
Date Acquired
September 20, 2023
Publication Date
September 7, 2023
Publication Information
Publication: Environmental Sciences Proceedings
Publisher: MDPI
Volume: 26
Issue: 1
Issue Publication Date: September 1, 2023
e-ISSN: 2673-4931
URL: 10.3390/environsciproc2023026180
Subject Category
Meteorology and Climatology
Earth Resources and Remote Sensing
Funding Number(s)
CONTRACT_GRANT: 80NSSC20M0282
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
PyroCb
smoke
global climate model
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