HR: 0830h
AN: A31E-0094 [PDF]
TI: Retrieval and Validation of Surface Long Wave Radiation Budget From CERES
AU: * Inamdar, A K
EM: ainamdar@ucsd.edu
AF: Anand K. Inamdar, Center for Clouds, Chemistry & Climate
Scripps Institution of Oceanography, UCSD, La Jolla, CA 92093-0221 United States
AU: Kratz, D P
EM: d.p.kratz@larc.nasa.gov
AF: Dave P. Kratz, NASA Langley Research Center
Radiation Sciences Branch, Hampton, VA 23681 United States
AB:
Parameterizations that produce surface radiation fluxes directly from the top of atmosphere fluxes and other meteorological
variables are presented. In particular, the techniques employ the top-of-atmosphere measurements made by the CERES
instrument on board the TRMM and other EOS satellites (TERRA and AQUA) in combination with other meteorological variables to
analyze the energetics of the tropospheric column and surface. The analysis is separated into land and ocean regions. The key
parameters derived include, 1) the atmospheric greenhouse effect, in both broadband and window (8 - 12 micron), which is the
reduction in the clear-sky outgoing long-wave radiation representing the radiative heating of the surface-atmospheric
column, and 2) the back-radiation from the atmosphere to the surface, again in broadband and window, representing the
radiative heating of the surface by the atmosphere. The latter parameter is archived in the EOS data base and accessible from
the NASA Langley Research Center CERES data archives. The results reported here constitute long-wave model A in the Single
Satellite Footprint (SSF) data set. Both the parameters referred to above represent a measure of the atmospheric greenhouse
effect. Instantaneous/footprint scale broadband fluxes have been validated against in situ measurements made at the
Atmospheric Radiation Program (ARM) Central and extended facilities and at the other surface sites of the Baseline Surface
Radiation Network (BSRN) and the Climate Monitoring and Diagnostics Laboratory (CMDL). The agreement is within the stipulated
objectives of the broad EOS program.
Further analysis of the seasonal and geographical distribution of the surface radiation flux components in the continuum and
broadband channels provides observational support for the key role played by the water vapor continuum in modulating the
energy balance of the surface and the atmospheric column. Regions with enhanced moisture levels experience a sharp increase
in emissions to the surface, especially in the window region which contributes in large part to the enhanced radiative
cooling of the surface and the atmospheric column.
DE: 1640 Remote sensing
DE: 1694 Instruments and techniques
DE: 3314 Convective processes
DE: 3339 Ocean/atmosphere interactions (0312, 4504)
DE: 3360 Remote sensing
SC: Atmospheric Sciences [A]
MN: 2003 Fall Meeting