Optical characteristics of the aerosol in Spain and Austria and its effect on radiative forcing
Open Access
- 8 October 2002
- journal article
- aerosol and-clouds
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research: Atmospheres
- Vol. 107 (D19), AAC 9-1-AAC 9-18
- https://doi.org/10.1029/2001jd001472
Abstract
The horizontal and vertical attenuation of the aerosol, the sky radiance, and the light absorption coefficient of the aerosol have been determined at wavelengths in the visible. From this set of data the following optical characteristics of the atmospheric aerosol could be derived: vertical optical depth, horizontal extinction and absorption coefficient, scattering phase function, asymmetry parameter, and single scattering albedo. Campaigns have been performed in Almería, Spain, and Vienna, Austria. The aerosol undergoes a considerable variation, as experienced by many other studies. Sometimes the vertical and the horizontal measurements gave similar data; on other days the aerosol at the surface and the aerosol aloft were completely different. The “clearest” aerosol always had the smallest single scattering albedo and thus relatively the highest light absorption. The optical characteristics of the aerosol in the two very different locations were very similar. Using the measured optical data, a radiative transfer calculation was performed, and the radiation reaching the ground was calculated. Comparing the values for the clear aerosol and the days with higher aerosol load, the radiative forcing due to the additional aerosol particles could be determined. The forcing of the aerosol at the ground is always negative, and at the top of the atmosphere it is close to zero or slightly negative. Its dependence on wavelength and zenith angle is presented. The preindustrial aerosol in Europe was estimated, and the forcing due to the present‐day aerosol was determined. At the surface it is negative, but at the top of the atmosphere it is close to zero or positive. This is caused by the light absorption of the European aerosol, which is higher than in most other locations.Keywords
This publication has 41 references indexed in Scilit:
- Aerosol optical properties during the Lindenberg Aerosol Characterization Experiment (LACE 98)Journal of Geophysical Research: Atmospheres, 2002
- Physical properties of the Indian aerosol plume derived from six‐wavelength lidar Observations on 25 March 1999 of the Indian Ocean ExperimentGeophysical Research Letters, 2000
- A model for the natural and anthropogenic aerosols over the tropical Indian Ocean derived from Indian Ocean Experiment dataJournal of Geophysical Research: Atmospheres, 1999
- Measurements of dry aerosol optical properties during LACE 98Journal of Aerosol Science, 1999
- Comparison of observed and modeled direct aerosol forcing during TARFOXJournal of Geophysical Research: Atmospheres, 1999
- Aerosol‐induced radiative flux changes off the United States mid‐Atlantic coast: Comparison of values calculated from sunphotometer and in situ data with those measured by airborne pyranometerJournal of Geophysical Research: Atmospheres, 1999
- The effect of anthropogenic sulfate and soot aerosol on the clear sky planetary radiation budgetGeophysical Research Letters, 1995
- Size distribution and scattering phase function of aerosol particles retrieved from sky brightness measurementsJournal of Geophysical Research: Atmospheres, 1994
- Diesel emissions in ViennaAtmospheric Environment (1967), 1988
- The contribution of elemental carbon to the optical properties of rural atmospheric aerosolsAtmospheric Environment (1967), 1986