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Geoengineering as an optimization problem

Bibliographic Data

ID15545201
AuthorsGeorge Ban‐Weiss (0000-0001-8211-2628, Carnegie Institution for Science, corresponding author), George A Ban-Weiss, Ken Caldeira (0000-0002-4591-643X)
Year2010
Volume5
Issue3
Pages034009-034009
Publication date2010-07-01
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/5/3/034009
OpenAlexW2161857173
LanguageEN
Citations received8
References cited14

There is increasing evidence that Earth’s climate is currently warming, primarily due to emissions of greenhouse gases from human activities, and Earth has been projected to continue warming throughout this century. Scientists have begun to investigate the potential for geoengineering options for reducing surface temperatures and whether such options could possibly contribute to environmental risk reduction. One proposed method involves deliberately increasing aerosol loading in the stratosphere to scatter additional sunlight to space. Previous modeling studies have attempted to predict the climate consequences of hypothetical aerosol additions to the stratosphere. These studies have shown that this method could potentially reduce surface temperatures, but could not recreate a low-CO 2 climate in a high-CO 2 world. In this study, we attempt to determine the latitudinal distribution of stratospheric aerosols that would most closely achieve a low-CO 2 climate despite high CO 2 levels. Using the NCAR CAM3.1 general circulation model, we find that having a stratospheric aerosol loading in polar regions higher than that in tropical regions leads to a temperature distribution that is more similar to the low-CO 2 climate than that yielded by a globally uniform loading. However, such polar weighting of stratospheric sulfate tends to degrade the degree to which the hydrological cycle is restored, and thus does not markedly contribute to improved recovery of a low-CO 2 climate. In the model, the optimal latitudinally varying aerosol distributions diminished the rms zonal mean land temperature change from a doubling of CO 2 by 94% and the rms zonal mean land precipitation minus evaporation change by 74%. It is important to note that this idealized study represents a first attempt at optimizing the engineering of climate using a general circulation model; uncertainties are high and not all processes that are important in reality are modeled

Aerosol · Atmospheric sciences · Climate change · Climate commitment · Climate model · Climatology · Effects of global warming · Geoengineering · Geography · Global warming · Greenhouse gas · Meteorology · Precipitation · Stratosphere · Sulfate aerosol · Atmospheric Ozone and Climate · Climate Change and Geoengineering · Environmental Science · Space exploration and regulation · Geology

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Unique citing works8
Citations per year0,5
Citation span2010 - 2026 (17)
Citation velocitycurrent
Highly citedNo
Citation typesNeutral: 8

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