HR: 1330h
AN: A22A-1043 [PDF]
TI: Development of an Algorithm for Studying the Tropical Cirrus Properties From CRYSTAL-FACE Groung-Based
Infrared Measurements
AU: * Yang, P
EM: pyang@ariel.met.tamu.edu
AF: Texas A&M University, Department of Atmospheric Sciences, TAMU 3150, College Station, TX 77843
AU: Ji, Q
EM: ji@climate.gsfc.nasa.gov
AF: NASA Goddard Space Flight Center, Code 913, Greenbelt, MD 20771
AU: Guo, G
EM: gguo@ariel.met.tamu.edu
AF: Texas A&M University, Department of Atmospheric Sciences, TAMU 3150, College Station, TX 77843
AU: Tsay, S
EM: tsay@climate.gsfc.nasa.gov
AF: NASA Goddard Space Flight Center, Code 913, Greenbelt, MD 20771
AB:
The radiation budget, climate change and feedback processes involving clouds are important. In the tropics, the radiative
heating/cooling and forcing are strongly modulated by cirrus clouds due to the fact that these clouds occur frequently and
ubiquitously. Here we report an algorithm for inferring the microphysical and radiative properties of cirrus clouds ( i.e.,
effective size, ice water path, optical thickness and cloud emissivity) from ground-based high-spectral-resolution infrared
observations. This approach is based on the fact that the downward radiance is sensitive to the cloud optical thickness in
the 800-1200 cm-1 atmospheric window region. Additionally, the spectral slope of the brightness temperature for the downward
radiance is sensitive to both the effective radius of ice crystals and the optical thickness of cirrus clouds. This spectral
feature of atmospheric infrared radiation allows us to retrieve three microphysical properties of cirrus clouds
simultaneously. In practice, we employ a "curve enveloping" technique to avoid the effect of a "non-absorption band shift".
Thirty in-situ size distributions are used to calculate the mean scattering properties of ice crystals in cirrus clouds. The
clear sky optical thickness and downward radiance are simulated by a line-by-line radiative transfer model and the
discrete-ordinate-method radiative transfer model, respectively. Furthermore, we use sky images and normalized lidar
backscatter profiles to identify cloudy and cloud-free conditions. As a case study, we apply the present algorithm to the
retrieval of cirrus properties on the basis of the surface infrared spectrum acquired during the Cirrus Regional Study of
Tropical Anvils and Cirrus Layers-Florida Area Cirrus Experiment (CRYSTAL-FACE) in July 2002.
DE: 3359 Radiative processes
DE: 3367 Theoretical modeling
DE: 5464 Remote sensing
SC: Atmospheric Sciences [A]
MN: 2003 Fall Meeting