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Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature

Publication ,  Journal Article
Tang, T; Shindell, D; Zhang, Y; Voulgarakis, A; Lamarque, JF; Myhre, G; Stjern, CW; Faluvegi, G; Samset, BH
Published in: Atmospheric Chemistry and Physics
July 16, 2020

Shortwave cloud radiative effects (SWCREs), defined as the difference of the shortwave radiative flux between all-sky and clear-sky conditions at the surface, have been reported to play an important role in influencing the Earth's energy budget and temperature extremes. In this study, we employed a set of global climate models to examine the SWCRE responses to CO2, black carbon (BC) aerosols, and sulfate aerosols in boreal summer over the Northern Hemisphere. We found that CO2 causes positive SWCRE changes over most of the NH, and BC causes similar positive responses over North America, Europe, and eastern China but negative SWCRE over India and tropical Africa. When normalized by effective radiative forcing, the SWCRE from BC is roughly 3-5 times larger than that from CO2. SWCRE change is mainly due to cloud cover changes resulting from changes in relative humidity (RH) and, to a lesser extent, changes in cloud liquid water, circulation, dynamics, and stability. The SWCRE response to sulfate aerosols, however, is negligible compared to that for CO2 and BC because part of the radiation scattered by clouds under all-sky conditions will also be scattered by aerosols under clear-sky conditions. Using a multilinear regression model, it is found that mean daily maximum temperature (Tmax) increases by 0.15 and 0.13K per watt per square meter (Wm..2) increase in local SWCRE under the CO2 and BC experiment, respectively. When domain-averaged, the contribution of SWCRE change to summer mean Tmax changes was 10 %-30% under CO2 forcing and 30 %-50% under BC forcing, varying by region, which can have important implications for extreme climatic events and socioeconomic activities.

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Published In

Atmospheric Chemistry and Physics

DOI

EISSN

1680-7324

ISSN

1680-7316

Publication Date

July 16, 2020

Volume

20

Issue

13

Start / End Page

8251 / 8266

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3702 Climate change science
  • 3701 Atmospheric sciences
  • 0401 Atmospheric Sciences
  • 0201 Astronomical and Space Sciences
 

Citation

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Tang, T., Shindell, D., Zhang, Y., Voulgarakis, A., Lamarque, J. F., Myhre, G., … Samset, B. H. (2020). Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature. Atmospheric Chemistry and Physics, 20(13), 8251–8266. https://doi.org/10.5194/acp-20-8251-2020
Tang, T., D. Shindell, Y. Zhang, A. Voulgarakis, J. F. Lamarque, G. Myhre, C. W. Stjern, G. Faluvegi, and B. H. Samset. “Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature.” Atmospheric Chemistry and Physics 20, no. 13 (July 16, 2020): 8251–66. https://doi.org/10.5194/acp-20-8251-2020.
Tang T, Shindell D, Zhang Y, Voulgarakis A, Lamarque JF, Myhre G, et al. Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature. Atmospheric Chemistry and Physics. 2020 Jul 16;20(13):8251–66.
Tang, T., et al. “Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature.” Atmospheric Chemistry and Physics, vol. 20, no. 13, July 2020, pp. 8251–66. Scopus, doi:10.5194/acp-20-8251-2020.
Tang T, Shindell D, Zhang Y, Voulgarakis A, Lamarque JF, Myhre G, Stjern CW, Faluvegi G, Samset BH. Response of surface shortwave cloud radiative effect to greenhouse gases and aerosols and its impact on summer maximum temperature. Atmospheric Chemistry and Physics. 2020 Jul 16;20(13):8251–8266.

Published In

Atmospheric Chemistry and Physics

DOI

EISSN

1680-7324

ISSN

1680-7316

Publication Date

July 16, 2020

Volume

20

Issue

13

Start / End Page

8251 / 8266

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3702 Climate change science
  • 3701 Atmospheric sciences
  • 0401 Atmospheric Sciences
  • 0201 Astronomical and Space Sciences