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  An energetic perspective on hydrological cycle changes in the Geoengineering Model Intercomparison Project

Kravitz, B., Rasch, P., Forster, P., Andrews, T., Cole, J., Irvine, P., et al. (2013). An energetic perspective on hydrological cycle changes in the Geoengineering Model Intercomparison Project. Journal of Geophysical Research-Atmospheres, 118, 13087-13102. doi:10.1002/2013JD020502.

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 Creators:
Kravitz, B., Author
Rasch, P.J., Author
Forster, P.M., Author
Andrews, T., Author
Cole, J.N.S., Author
Irvine, P.J., Author
Ji, D., Author
Kristjánsson, J.E., Author
Moore, J.C., Author
Muri, H., Author
Niemeier, Ulrike1, Author           
Robock, A., Author
Singh, B., Author
Tilmes, S., Author
Watanabe, S., Author
Yoon, J.-H., Author
Affiliations:
1Middle and Upper Atmosphere, The Atmosphere in the Earth System, MPI for Meteorology, Max Planck Society, ou_913574              

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Free keywords: energetic perspective; geoengineering; hydrologic cycle; model intercomparison
 Abstract: Analysis of surface and atmospheric energy budget responses to CO 2 and solar forcings can be used to reveal mechanisms of change in the hydrological cycle. We apply this energetic perspective to output from 11 fully coupled atmosphere-ocean general circulation models simulating experiment G1 of the Geoengineering Model Intercomparison Project (GeoMIP), which achieves top-of-atmosphere energy balance between an abrupt quadrupling of CO2 from preindustrial levels (abrupt4xCO2) and uniform solar irradiance reduction. We divide the climate system response into a rapid adjustment, in which climate response is due to adjustment of the atmosphere and land surface on short time scales, and a feedback response, in which the climate response is predominantly due to feedback related to global mean temperature changes. Global mean temperature change is small in G1, so the feedback response is also small. G1 shows a smaller magnitude of land sensible heat flux rapid adjustment than in abrupt4xCO2 and a larger magnitude of latent heat flux adjustment, indicating a greater reduction of evaporation and less land temperature increase than abrupt4xCO2. The sum of surface flux changes in G1 is small, indicating little ocean heat uptake. Using an energetic perspective to assess precipitation changes, abrupt4xCO2 shows decreased mean evaporative moisture flux and increased moisture convergence, particularly over land. However, most changes in precipitation in G1 are in mean evaporative flux, suggesting that changes in mean circulation are small. Key Points Geoengineering feedback response is small Geoengineering can limit ocean heat uptake in a high CO2 climate Annual mean circulation changes under geoengineering may be small ©2013. American Geophysical Union. All Rights Reserved.

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Language(s): eng - English
 Dates: 2013-12-122013-12-16
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1002/2013JD020502
 Degree: -

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Title: Journal of Geophysical Research-Atmospheres
Source Genre: Journal
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Publ. Info: Washington, D.C. : American Geophysical Union
Pages: - Volume / Issue: 118 Sequence Number: - Start / End Page: 13087 - 13102 Identifier: ISSN: 0148-0227
CoNE: https://pure.mpg.de/cone/journals/resource/991042728714264_1