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Impact of Increasing Stratospheric Water Vapor on Ozone Depletion and Temperature Change 被引量:16

Impact of Increasing Stratospheric Water Vapor on Ozone Depletion and Temperature Change
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摘要 Using a detailed, fully coupled chemistry climate model (CCM), the effect of increasing stratospheric H20 on ozone and temperature is investigated. Different CCM time-slice runs have been performed to investigate the chemical and radiative impacts of an assumed 2 ppmv increase in H20. The chemical effects of this H20 increase lead to an overall decrease of the total column ozone (TCO) by ~1% in the tropics and by a maximum of 12% at southern high latitudes. At northern high latitudes, the TCO is increased by only up to 5% due to stronger transport in the Arctic. A 2-ppmv H2O increase in the model's radiation scheme causes a cooling of the tropical stratosphere of no more than 2 K, but a cooling of more than 4 K at high latitudes. Consequently, the TCO is increased by about 2%-6%. Increasing stratospheric H2O, therefore, cools the stratosphere both directly and indirectly, except in the polar regions where the temperature responds differently due to feedbacks between ozone and H2O changes. The combined chemical and radiative effects of increasing H2O may give rise to more cooling in the tropics and middle latitudes but less cooling in the polar stratosphere. The combined effects of H2O increases on ozone tend to offset each other, except in the Arctic stratosphere where both the radiative and chemical impacts give rise to increased ozone. The chemical and radiative effects of increasing H2O cause dynamical responses in the stratosphere with an evident hemispheric asymmetry. In terms of ozone recovery, increasing the stratospheric H2O is likely to accelerate the recovery in the northern high latitudes and delay it in the southern high latitudes. The modeled ozone recovery is more significant between 2000 ~2050 than between 2050~2100, driven mainly by the larger relative change in chlorine in the earlier period. Using a detailed, fully coupled chemistry climate model (CCM), the effect of increasing stratospheric H20 on ozone and temperature is investigated. Different CCM time-slice runs have been performed to investigate the chemical and radiative impacts of an assumed 2 ppmv increase in H20. The chemical effects of this H20 increase lead to an overall decrease of the total column ozone (TCO) by ~1% in the tropics and by a maximum of 12% at southern high latitudes. At northern high latitudes, the TCO is increased by only up to 5% due to stronger transport in the Arctic. A 2-ppmv H2O increase in the model's radiation scheme causes a cooling of the tropical stratosphere of no more than 2 K, but a cooling of more than 4 K at high latitudes. Consequently, the TCO is increased by about 2%-6%. Increasing stratospheric H2O, therefore, cools the stratosphere both directly and indirectly, except in the polar regions where the temperature responds differently due to feedbacks between ozone and H2O changes. The combined chemical and radiative effects of increasing H2O may give rise to more cooling in the tropics and middle latitudes but less cooling in the polar stratosphere. The combined effects of H2O increases on ozone tend to offset each other, except in the Arctic stratosphere where both the radiative and chemical impacts give rise to increased ozone. The chemical and radiative effects of increasing H2O cause dynamical responses in the stratosphere with an evident hemispheric asymmetry. In terms of ozone recovery, increasing the stratospheric H2O is likely to accelerate the recovery in the northern high latitudes and delay it in the southern high latitudes. The modeled ozone recovery is more significant between 2000 ~2050 than between 2050~2100, driven mainly by the larger relative change in chlorine in the earlier period.
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2009年第3期423-437,共15页 大气科学进展(英文版)
基金 supported by National Natural Science Foundation of China (Grant Nos. 40575019, 40730949) the U.K. Natural Environ-ment Research Council (NERC)
关键词 stratospheric water vapor temperature change ozone depletion chemistry-climate model stratospheric water vapor temperature change, ozone depletion, chemistry-climate model
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  • 1Austin, J., N. Butchart, and K. P. Shine, 1992: Possibility of an Arctic ozone hole in a doubled-CO2 climate. Nature, 360, 221 -225.
  • 2Austin, J., N. Butchart, and J. Knight, 2000: Three- dimensional chemical model simulations of the ozone layer: 1979 -2015. Quart. J. Roy. Meteor. Soc., 126, 1533- 1556.
  • 3Austin, J., N. Butchart, and J. Knight, 2001: Three- dimensional chemical model simulations of the ozone layer: 2015- 2055. Quart. J. Roy. Meteor. Soc., 127, 959 -974.
  • 4Chipperfield, M. P., 1999: Multiannual simulation with a three-dimensional chemical transport model. J. Geophys. Res., 104, 1781- 1805.
  • 5Cullen, M. J. P.,1993: The unified forecast/climate model. Meteor. Mag., 122, 81- 94.
  • 6Dameris, M., V. Grewe, R. Hein, C. Schnadt, C. Bruhl, and B. Steil, 2001: Assessment of the future devel- opment of the ozone layer. Geophys. Res. Lett., 25, 3579-3582.
  • 7Dvortsov, V., and S., Solomon, 2001: Response of the stratospheric temperatures and ozone to past and fu- ture increases in stratospheric humidity. J. Geophys. Res., 106, 7505- 7514.
  • 8Evans, S. J., R. Toumi, J. E. Harries, M. P. Chipperfield, and J. M. Russel III, 1998: Trends in stratospheric humidity and the sensitivity of ozone to these trends. J. Geophys. Res., 103, 8715- 8725.
  • 9Forster, P. M.-de F., and K. P. Shine, 1999: Stratospheric water vapor changes as a possible contributor to observed stratospheric cooling. Geophys. Res. Lett., 26, 3309 -3312.
  • 10Forster, P. M. de F., and K. P. Shine, 2002: Assessing the climate impact of trend in strato- spheric water vapor. Geophys. Res. Lett., 29, doi: 10.1029/2001GL013909.

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