An investigation of the sensitivity of the clear‐sky outgoing longwave radiation to atmospheric temperature and water vapor
暂无分享,去创建一个
[1] B. Soden,et al. WATER VAPOR FEEDBACK AND GLOBAL WARMING 1 , 2003 .
[2] Keith P. Shine,et al. Simulated sensitivity of the earth's radiation budget to 'changes in cloud properties , 1995 .
[3] Roy W. Spencer,et al. How dry is the tropical free troposphere? : Implications for global warming theory , 1997 .
[4] N. Gillett,et al. Modelled and observed variability in atmospheric vertical temperature structure , 2000 .
[5] S. Klein,et al. The new GFDL global atmosphere and land model AM2-LM2: Evaluation with prescribed SST simulations , 2004 .
[6] Anthony J. Broccoli,et al. On the Use of Cloud Forcing to Estimate Cloud Feedback , 2004 .
[7] Stephen B. Fels,et al. The simplified exchange method revisited: An accurate, rapid method for computation of infrared cooling rates and fluxes , 1991 .
[8] S. Bony,et al. Influence of the vertical structure of the atmosphere on the seasonal variation of precipitable water and greenhouse effect , 1994 .
[9] Adjoint sensitivity of the Earth's radiation budget in the NCEP medium‐range forecasting model , 1998 .
[10] Stephen B. Fels,et al. The Simplified Exchange Approximation: A New Method for Radiative Transfer Calculations , 1975 .
[11] D. Murcray. Optical Properties of the Atmosphere , 1968 .
[12] L. J. Cox. Optical Properties of the Atmosphere , 1979 .
[13] R. Allan,et al. The dependence of clear‐sky outgoing long‐wave radiation on surface temperature and relative humidity , 1999 .
[14] S. M. Marlais,et al. An Overview of the Results of the Atmospheric Model Intercomparison Project (AMIP I) , 1999 .
[15] Radiative Sensitivity to Water Vapor under All-Sky Conditions , 2001 .
[16] John F. B. Mitchell,et al. Intercomparison and interpretation of climate feedback processes in 19 atmospheric general circulation models , 1990 .
[17] M. Webb,et al. The spectral signature of global warming , 1997 .
[18] R E Roberts,et al. Infrared continuum absorption by atmospheric water vapor in the 8-12-microm window. , 1976, Applied optics.
[19] V. Ramaswamy,et al. Diagnostic analysis of atmospheric moisture and clear-sky radiative feedback in the Hadley Centre and Geophysical Fluid Dynamics Laboratory (GFDL) climate models: DIAGNOSING CLEAR-SKY LONGWAVE RADIATIVE FEEDBACKS , 2002 .
[20] M. Iacono,et al. Line-by-Line Calculations of Atmospheric Fluxes and Cooling Rates: Application to Water Vapor , 1992 .
[21] Robert G. Ellingson,et al. The Intercomparison of Radiation Codes in Climate Models , 1991 .
[22] V. Ramaswamy,et al. Radiative effects of CH4, N2O, halocarbons and the foreign‐broadened H2O continuum: A GCM experiment , 1999 .
[23] Benjamin Kirtman,et al. Tropospheric Water Vapor and Climate Sensitivity , 1999 .
[24] Stephen B. Fels,et al. An efficient, accurate algorithm for calculating CO2 15 μm band cooling rates , 1981 .
[25] James J. Hack,et al. Cloud feedback in atmospheric general circulation models: An update , 1996 .
[26] Stephen B. Fels,et al. Improvements to the algorithm for computing CO2 transmissivities and cooling rates , 1985 .
[27] J. Hack,et al. Diagnostic study of climate feedback processes in atmospheric general circulation models , 1994 .
[28] Keith P. Shine,et al. Sensitivity of the Earth's climate to height-dependent changes in the water vapour mixing ratio , 1991, Nature.
[29] F. X. Kneizys,et al. Line shape and the water vapor continuum , 1989 .
[30] Raymond K. Garcia,et al. Downwelling spectral radiance observations at the SHEBA ice station: Water vapor continuum measurements from 17 to 26μm , 1999 .
[31] V. Ramaswamy,et al. Observed Dependence of Outgoing Longwave Radiation on Sea Surface Temperature and Moisture. , 1994 .