GSTDTAP  > 地球科学
DOI10.5194/acp-18-2769-2018
Sensitivity of the radiative forcing by stratospheric sulfur geoengineering to the amount and strategy of the SO2 injection studied with the LMDZ-S3A model
Kleinschmitt, Christoph1,2; Boucher, Olivier3; Platt, Ulrich1
2018-02-27
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2018
卷号18期号:4页码:2769-2786
文章类型Article
语种英语
国家Germany; France
英文摘要

The enhancement of the stratospheric sulfate aerosol layer has been proposed as a method of geoengineering to abate global warming. Previous modelling studies found that stratospheric aerosol geoengineering (SAG) could effectively compensate for the warming by greenhouse gases on the global scale, but also that the achievable cooling effect per sulfur mass unit, i.e. the forcing efficiency, decreases with increasing injection rate. In this study we use the atmospheric general circulation model LMDZ with the sectional aerosol module S3A to determine how the forcing efficiency depends on the injected amount of SO2, the injection height, and the spatio-temporal pattern of injection. We find that the forcing efficiency may decrease more drastically for larger SO2 injections than previously estimated. As a result, the net instantaneous radiative forcing does not exceed the limit of -2W m(-2) for continuous equatorial SO2 injections and it decreases (in absolute value) for injection rates larger than 20 TgS yr(-1). In contrast to other studies, the net radiative forcing in our experiments is fairly constant with injection height (in a range 17 to 23 km) for a given amount of SO2 injected. Also, spreading the SO2 injections between 30 degrees S and 30 degrees N or injecting only seasonally from varying latitudes does not result in a significantly larger (i.e. more negative) radiative forcing. Other key characteristics of our simulations include a consequent stratospheric heating, caused by the absorption of solar and infrared radiation by the aerosol, and changes in stratospheric dynamics, with a collapse of the quasi-biennial oscillation at larger injection rates, which has impacts on the resulting spatial aerosol distribution, size, and optical properties. But it has to be noted that the complexity and uncertainty of stratospheric processes cause considerable disagreement among different modelling studies of stratospheric aerosol geoengineering. This may be addressed through detailed model intercomparison activities, as observations to constrain the simulations of stratospheric aerosol geoengineering are not available and analogues (such as volcanic eruptions) are imperfect.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000426244400002
WOS关键词GENERAL-CIRCULATION MODEL ; MICROPHYSICAL SIMULATIONS ; TROPOPAUSE HEIGHT ; SULFATE AEROSOLS ; OZONE DEPLETION ; CLIMATE ; COAGULATION ; PARTICLES ; PINATUBO ; SIZE
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/31094
专题地球科学
作者单位1.Heidelberg Univ, Inst Environm Phys, Neuenheimer Feld 229, D-69120 Heidelberg, Germany;
2.Sorbonne Univ, CNRS, Inst Pierre Simon Laplace, Lab Meteorol Dynam, 4 Pl Jussieu, F-75252 Paris 05, France;
3.Sorbonne Univ, CNRS, Inst Pierre Simon Laplace, 4 Pl Jussieu, F-75252 Paris 05, France
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Kleinschmitt, Christoph,Boucher, Olivier,Platt, Ulrich. Sensitivity of the radiative forcing by stratospheric sulfur geoengineering to the amount and strategy of the SO2 injection studied with the LMDZ-S3A model[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2018,18(4):2769-2786.
APA Kleinschmitt, Christoph,Boucher, Olivier,&Platt, Ulrich.(2018).Sensitivity of the radiative forcing by stratospheric sulfur geoengineering to the amount and strategy of the SO2 injection studied with the LMDZ-S3A model.ATMOSPHERIC CHEMISTRY AND PHYSICS,18(4),2769-2786.
MLA Kleinschmitt, Christoph,et al."Sensitivity of the radiative forcing by stratospheric sulfur geoengineering to the amount and strategy of the SO2 injection studied with the LMDZ-S3A model".ATMOSPHERIC CHEMISTRY AND PHYSICS 18.4(2018):2769-2786.
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