HR: 0800h
AN: A11C-0070 [Abstracts]
TI: Smoke Over Haze: Comparative Analysis of Satellite, Surface Radiometer and Airborne In-Situ
Measurements of Aerosol Optical Properties and Radiative Forcing Over the Eastern US
AU: * Vant-Hull, B
EM: brianvh@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Li, Z
EM: zli@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Li, Z
EM: zli@atmos.umd.edu
AF: Department of Chemistry, University of Maryland, College Park, MD 20742
United States
AU: Taubman, B
EM: btaubman@atmos.umd.edu
AF: Earth Systems Science Interdisciplinary Center, University of Maryland, College Park, MD 20742
United States
AU: Marufu, L
EM: marufu@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Marufu, L
EM: marufu@atmos.umd.edu
AF: Earth Systems Science Interdisciplinary Center, University of Maryland, College Park, MD 20742
United States
AU: Levy, R
EM: levy@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Levy, R
EM: levy@atmos.umd.edu
AF: NASA/GSFC, code 913, Greenbelt, MD 20771
United States
AU: Chang, F
EM: fchang@essic.umd.edu
AF: Department of Chemistry, University of Maryland, College Park, MD 20742
United States
AU: Doddridge, B
EM: bruce@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Dickerson, R
EM: russ@atmos.umd.edu
AF: Department of Meteorology, University of Maryland, College Park, MD 20742
United States
AU: Dickerson, R
EM: russ@atmos.umd.edu
AF: Earth Systems Science Interdisciplinary Center, University of Maryland, College Park, MD 20742
United States
AB:
In July 2002 Canadian forest fires produced a major smoke episode that blanketed the U.S. East Coast. Properties of the
smoke aerosol were measured in-situ from aircraft, complementing operational AERONET and MODIS remote sensed aerosol
retrievals. This study compares single scattering albedo and phase function derived from the in-situ measurements and
AERONET retrievals in order to evaluate their consistency for application to satellite retrievals of optical depth and
radiative forcing. These optical properties were combined with MODIS reflectance observations to calculate optical depth.
The use of AERONET optical properties yielded optical depths 2% to 16% lower than those directly measured by AERONET. The
use of in-situ derived optical properties resulted in optical depths 22% to 43% higher than AERONET measurements. These
higher optical depths are attributed primarily to the higher absorption measured in-situ, which is roughly twice that
retrieved by AERONET. The resulting satellite retrieved optical depths were in turn used to calculate integrated radiative
forcing at both the surface and TOA. Comparisons to surface (SurfRad and ISIS) and to satellite (CERES) broadband radiometer
measurements demonstrate that the use of optical properties derived from the aircraft measurements provided a better
broadband forcing estimate (21% error) than those derived from AERONET (33% error). Thus AERONET derived optical
properties produced better fits to optical depth measurements, while in-situ properties resulted in better fits to forcing
measurements. These apparent inconsistencies underline the significant challenges facing the aerosol community in achieving
column closure between narrow and broadband measurements and calculations.
DE: 1610 Atmosphere (0315, 0325)
DE: 1640 Remote sensing
DE: 0305 Aerosols and particles (0345, 4801)
DE: 0320 Cloud physics and chemistry
DE: 0345 Pollution--urban and regional (0305)
SC: Atmospheric Sciences [A]
MN: 2004 AGU Fall Meeting