4.7 Article

Key drivers of ozone change and its radiative forcing over the 21st century

Journal

ATMOSPHERIC CHEMISTRY AND PHYSICS
Volume 18, Issue 9, Pages 6121-6139

Publisher

COPERNICUS GESELLSCHAFT MBH
DOI: 10.5194/acp-18-6121-2018

Keywords

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Funding

  1. NERC [NE/L501736/1]
  2. NSF
  3. Office of Science of the US Department of Energy

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Over the 21st century changes in both tropospheric and stratospheric ozone are likely to have important consequences for the Earth's radiative balance. In this study, we investigate the radiative forcing from future ozone changes using the Community Earth System Model (CESM1), with the Whole Atmosphere Community Climate Model (WACCM), and including fully coupled radiation and chemistry schemes. Using year 2100 conditions from the Representative Concentration Pathway 8.5 (RCP8.5) scenario, we quantify the individual contributions to ozone radiative forcing of (1) climate change, (2) reduced concentrations of ozone depleting substances (ODSs), and (3) methane increases. We calculate future ozone radiative forcings and their standard error (SE; associated with inter-annual variability of ozone) relative to year 2000 of (1) 33 +/- 104m Wm(-2), (2) 163 +/- 109m Wm(-2), and (3) 238 +/- 113m Wm(-2) due to climate change, ODSs, and methane, respectively. Our best estimate of net ozone forcing in this set of simulations is 430 +/- 130m Wm(-2) relative to year 2000 and 760 +/- 230m Wm(-2) relative to year 1750, with the 95% confidence interval given by +/- 30 %. We find that the overall long-term tropospheric ozone forcing from methane chemistry-climate feedbacks related to OH and methane lifetime is relatively small (46m Wm(-2)). Ozone radiative forcing associated with climate change and stratospheric ozone recovery are robust with regard to background climate conditions, even though the ozone response is sensitive to both changes in atmospheric composition and climate. Changes in stratospheric-produced ozone account for similar to 50% of the overall radiative forcing for the 2000-2100 period in this set of simulations, highlighting the key role of the stratosphere in determining future ozone radiative forcing.

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