期刊文献+

大气逆辐射对草地下垫面地表温度的影响研究 被引量:3

Effect of Downwelling Atmospheric Radiation on Grass Land Surface Temperature
在线阅读 下载PDF
导出
摘要 根据SKYNET合肥站三年期间无云晴天4~50μm波段地表向上长波辐射R_(1u)和大气逆辐射R_(1d)的观测资料,定量分析了大气逆辐射对草地下垫面地表温度的影响。结果表明:大气逆辐射对地表温度日平均值的影响程度在夏季最大、秋季次之、冬季最小,当地表比辐射率ε=0.98时,地表视温度与地表温度日平均差值全年在0.96~1.41 K之间,7、8月份在1.3 K以上;任何季节,大气逆辐射对地表温度日分布的影响幅值均在夜间大、白天小、中午前后最小,冬季影响最为显著,地表视温度与地表温度的差值T_*—T_s均具有"V"型日分布特征;长波辐射比R_(1d)/R_(1u)越大,大气逆辐射对地表温度的影响程度越大,得出了T_*-T_s与长波辐射比以及地表比辐射率之间的定量统计关系。 The effect of downwelling atmospheric radiation (Rld) on grass land surface temperature (Ts) is analyzed based on the three-year observations of upwelling surface long-wave radiation (Rlu) and Rid in 4-50μm band on clear days at SKYNET Hefei site. Results indicate that the effect of Rid on mean daily Ts are stronger in summer than in fall and the weakest in winter. The mean daily difference between apparent surface temperature T, and Ts ranges from 0.96 K to 1.41 K through all year, with value larger than 1.3 K in July and August provided that land surface emissivity c equals to 0.98. The effect of Rid on diurnal variation of Ts is weakest at noon, greatest at night with the diurnal distribution of T* - Ts showing "V" shape for each season and the effect is most remarkable in winter. The larger the ratio Rld/Rlu, the greater the effect of Rid on Ts and the quantitative statistical relationship between the ratio Rld/Rlu, surface emissivity ε and T* - Ts are obtained under different seasonal conditions.
出处 《大气与环境光学学报》 CAS 2008年第6期407-414,共8页 Journal of Atmospheric and Environmental Optics
基金 中国科学院知识创新工程方向性项目(KGCX2-SW-413) 中国科学院合肥物质科学研究院院长基金项目
关键词 大气逆辐射 草地 地表温度 地表视温度 地表比辐射率 downwelling atmospheric radiation grass land surface temperature apparent surface temperature land surface emissivity
  • 相关文献

参考文献8

  • 1[1]Coil C,.Caselles V,Galve J M.Ground measurements for the validation of land surface temperatures derived from AATSR and MODIS data[J].Remote Sensing of Environment,2005,97:288-300.
  • 2[2]Sun D L,Pinkeer R R.Estimation of land surface temperature from a geostationaxy operational environmental satellite(Goes-8)[J].Journal of Geophysical Research,2003,108(D11):4326-4340.
  • 3[3]Kustas W P,Norman J M.Use of remote sensing for evapotranspiration monitoring over land surfaces[J].Hydrological Sciences Journal,1996 41:495-516.
  • 4[4]Jacob F,Petitcolin F,Schmugge T,et al.Comparison of land surface emissivity and radiometric temperature derived from MODIS and ASTER sensors[J].Remote Sensing of Environment,2004,90:137-152.
  • 5[5]Olioso A.Estimating the difference between brightness and surface temperature for a vegetal canopy[J].Agricultural and Forest Meteorology,1995,72:237-242.
  • 6[10]Svendsen H,Jensen H E,Jensen S E,et al.The effect of clear sky radiation on crop surface temperature determined by thermal thermometry[J].Agricultural and Forest Meteorology,1990,50:239-243.
  • 7[12]Zhou J,Yue G M,Jin C J,et al.Lidar observation of Asian dust over Hefei,China,in spring 2000[J].Journal of Geophysical Research,2002,107:1-8.
  • 8[13]Idso S B.A set of equations for full spectrum and 8 to 14μm and 10.5 to 12.5μm thermal radiation from cloudless skies[J].Water Resource Research,1981,17:295-304.

同被引文献13

引证文献3

二级引证文献22

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部