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Spatial Distributions of Atmospheric Radiative Fluxes and Heating Rates over China during Summer 被引量:1

Spatial Distributions of Atmospheric Radiative Fluxes and Heating Rates over China during Summer
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摘要 The latitude-altitude distributions of radiative fluxes and heating rates are investigated by utilizing CloudSat satellite data over China during summer. The Tibetan Plateau causes the downward shortwave fluxes of the lower atmosphere over central China to be smaller than the fluxes over southern and northern China by generating more clouds. The existence of a larger quantity of clouds over central China reflects a greater amount of solar radiation back into space. The vertical gradients of upward shortwave radiative fluxes in the atmosphere below 8 km are greater than those above 8 km. The latitudinal-altitude distributions of downward longwave radiative fluxes show a slantwise decreasing trend from low latitudes to high latitudes that gradually weaken in the downward direction. The upward longwave radiative fluxes also weaken in the upward direction but with larger gradients. The maximum heating rates by solar radiation and cooling rates by longwave infrared radiation are located over 28 40°N at 7 8 km mean sea level (MSL), and they are larger than the rates in the northern and southern regions. The heating and cooling rates match well both vertically and geographically. The latitude-altitude distributions of radiative fluxes and heating rates are investigated by utilizing CloudSat satellite data over China during summer. The Tibetan Plateau causes the downward shortwave fluxes of the lower atmosphere over central China to be smaller than the fluxes over southern and northern China by generating more clouds. The existence of a larger quantity of clouds over central China reflects a greater amount of solar radiation back into space. The vertical gradients of upward shortwave radiative fluxes in the atmosphere below 8 km are greater than those above 8 km. The latitudinal-altitude distributions of downward longwave radiative fluxes show a slantwise decreasing trend from low latitudes to high latitudes that gradually weaken in the downward direction. The upward longwave radiative fluxes also weaken in the upward direction but with larger gradients. The maximum heating rates by solar radiation and cooling rates by longwave infrared radiation are located over 28-40°N at 7-8 km mean sea level (MSL), and they are larger than the rates in the northern and southern regions. The heating and cooling rates match well both vertically and geographically.
出处 《Atmospheric and Oceanic Science Letters》 2010年第5期248-251,共4页 大气和海洋科学快报(英文版)
基金 supported by the National Natural Science Foundation of China(Grant Nos.40875084and40705012) the National Key Technologies R&D Program of China(Grant No.2008BAC40B00)
关键词 radiative flux shortwave heating rate long- wave cooling rate vertical distribution temporal and spatial distribution. CloudSat. Cloud Profilin Radar 辐射通量 低层大气 中国 升温速率 空间分布 低纬度地区 太阳辐射量 夏季
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  • 1Barkstrom, B. R., 1984: The Earth Radiation Budget Experiment (ERBE), Bull. Amer. Meteor Soc., 65, 1170-1185.
  • 2Chen, T., Y. Zhang, and W. B. Rossow, 2000: Sensitivity of atmos- pheric radiative heating rate profiles to variations of cloud layer overlap, J. Climate, 13, 2941-2959.
  • 3Harrison, E. F., P. Minnis, B. R. Barkstrom, et al., 1990: Seasonal variation of cloud radiative forcing derived from the Earth Ra- diation Budget Experiment, J. Geophys. Res., 95, 18687-18703.
  • 4Hartmann, D. L., H. H. Hendon, and R. A. Houze Jr., 1984: Some implications of the mesoscale circulations in tropical cloud clus- ters for large-scale dynamics and climate, J. Atmos. Sci., 41, 113-121.
  • 5Kiehl, J. T., J. J. Hack, and J. W. Hurrell, 1998: The energy budget of the NCAR Community Climate Model: CCM3, J. Climate, Ⅱ, 1151-1178.
  • 6Lacis, A. A., and J. E. Hansen, 1974: A parameterization for the absorption of solar radiation in the Earth's atmosphere, J. Atmos. Sci., 31, 118-133.
  • 7L'Ecuyer, T., D. Vane, G. Stephens, et al., 2007: Level 2 Fluxes and Heating Rates Product Process Description and Interface Con- trol Document version 5.1, 21pp, available online at http://www.cloudsat.cira.colostate.edu/ICD/2B-FLXHR/2B-FLX HR PD1CD 5.1.pdf,.
  • 8Lin, J., B. Mapes, M. Zhang, et al., 2004: Stratiform precipitation, vertical heating profiles, and the Madden-Julian oscillation, J. Atmos. Sci., 61,296-309.
  • 9Ramanathan, V., R. D. Cess, E. F. Harrison, et al., 1989: Cloud- radiative forcing and climate: Results from the Earth Radiation Budget Experiment, Science, 243, 57-63.
  • 10Sohn, B. J., 1999: Cloud-induced infrared radiative heating and its implications for large-scale tropical circulations, J. Atmos. Sci., 56, 2657-2672.

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