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To what extent can cirrus cloud seeding counteract global warming

Dados Bibliográficos

ID15548142
AutoresBlaž Gasparini (0000-0002-7177-0155, ETH Zurich, autor correspondente), Zachary McGraw (0000-0003-0964-3996, University of Oslo), Trude Storelvmo (0000-0002-0068-2430, University of Oslo), Ulrike Lohmann (0000-0001-8885-3785, ETH Zurich)
Ano2020
Volume15
Fascículo5
Páginas054002-054002
Data de publicação2020-01-30
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoEnvironmental Research Letters (JOURNAL)
Identificadores do periódicoISSN: 1748-9326 • E-ISSN: 1748-9326
EditoraIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/ab71a3
OpenAlexW3003243924
IdiomaEN
Citações recebidas2
Referências citadas72

The idea of modifying cirrus clouds to directly counteract greenhouse gas warming has gained momentum in recent years, despite disputes over its physical feasibility. Previous studies that analyzed modifications of cirrus clouds by seeding of ice nucleating particles showed large uncertainties in both cloud and surface climate responses, ranging from no effect or even a small warming to a globally averaged cooling of about 2.5 °C. We use two general circulation models that showed very different responses in previous studies, ECHAM6-HAM and CESM-CAM5, to determine which radiative and climatic responses to cirrus cloud seeding in a 1.5 × CO 2 world are common and which are not. Seeding reduces the net cirrus radiative effect for −1.8 W m −2 in CESM compared with only −0.8 W m −2 in ECHAM. Accordingly, the surface temperature decrease is larger in CESM, counteracting about 70% of the global mean temperature increase due to CO 2 and only 30% in ECHAM. While seeding impacts on mean precipitation were addressed in past studies, we are the first to analyze extreme precipitation responses to cirrus seeding. Seeding decreases the frequency of the most extreme precipitation globally. However, the extreme precipitation events occur more frequently in the Sahel and Central America, following the mean precipitation increase due to a northward shift of the Intertropical Convergence Zone. In addition, we use a quadratic climate damage metric to evaluate the amount of CO 2 -induced damage cirrus seeding can counteract. Seeding decreases the damage by about 50% in ECHAM, and by 85% in CESM over the 21 selected land regions. Climate damage due to CO 2 increase is significantly reduced as a result of seeding in all of the considered land regions

Agronomy · Atmospheric sciences · Cirrus · Climate change · Climatology · Cloud seeding · Geography · Global warming · Meteorology · Precipitation · Radiative forcing · Seeding · Atmospheric aerosols and clouds · Atmospheric chemistry and aerosols · Climate Change and Geoengineering · Environmental Science · Geology

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Obras citantes distintas2
Citações por ano0,4
Intervalo de citações2021 - 2024 (4)
Velocidade de citaçãorecent
Altamente citadoNão
Tipos de citaçãoNeutras: 2
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