Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth

Measurements carried out on the island of Lampedusa, in the central Mediterranean, on 7 September 2005, show the occurrence of a quasi-periodic oscillation of aerosol optical depth, column water vapour, and surface irradiance in different spectral bands. The oscillation has a period of about 13 min...

Full description

Bibliographic Details
Main Authors: A. di Sarra, D. Fuà, D. Meloni
Format: Article
Language:English
Published: Copernicus Publications 2013-06-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/13/5647/2013/acp-13-5647-2013.pdf
id doaj-230905e99967492490943a5042753e3d
record_format Article
spelling doaj-230905e99967492490943a5042753e3d2020-11-24T20:54:26ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242013-06-0113115647565410.5194/acp-13-5647-2013Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depthA. di SarraD. FuàD. MeloniMeasurements carried out on the island of Lampedusa, in the central Mediterranean, on 7 September 2005, show the occurrence of a quasi-periodic oscillation of aerosol optical depth, column water vapour, and surface irradiance in different spectral bands. The oscillation has a period of about 13 min and is attributed to the propagation of a gravity wave able to modify the vertical structure of the planetary boundary layer, as also confirmed by satellite images. The wave occurred during a Saharan dust event. The oscillation amplitude is about 0.1 for the aerosol optical depth, and about 0.4 cm for the column water vapour. The modulation of the downward surface irradiances is in opposition of phase with respect to aerosol optical depth and water vapour column variations. The perturbation of the downward irradiance produced by the aerosols is determined by comparing the measured irradiances with estimated irradiances at a fixed value of the aerosol optical depth, and by correcting for the effect of the water vapour in the shortwave spectral range. The direct radiative forcing efficiency, i.e., the radiative perturbation of the net surface irradiance produced by a unit of optical depth aerosol layer, is determined at different solar zenith angles as the slope of the irradiance perturbation versus the aerosol optical depth. The estimated direct surface forcing efficiency at about 60° solar zenith angle is −(181 ± 17) W m<sup>−2</sup> in the shortwave, and −(83 ± 7) W m<sup>−2</sup> in the photosynthetic spectral range. The estimated daily average forcing efficiencies are of about −79 and −46 W m<sup>−2</sup> for the shortwave and photosynthetic spectral range, respectively.http://www.atmos-chem-phys.net/13/5647/2013/acp-13-5647-2013.pdf
collection DOAJ
language English
format Article
sources DOAJ
author A. di Sarra
D. Fuà
D. Meloni
spellingShingle A. di Sarra
D. Fuà
D. Meloni
Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
Atmospheric Chemistry and Physics
author_facet A. di Sarra
D. Fuà
D. Meloni
author_sort A. di Sarra
title Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
title_short Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
title_full Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
title_fullStr Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
title_full_unstemmed Estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
title_sort estimate of surface direct radiative forcing of desert dust from atmospheric modulation of the aerosol optical depth
publisher Copernicus Publications
series Atmospheric Chemistry and Physics
issn 1680-7316
1680-7324
publishDate 2013-06-01
description Measurements carried out on the island of Lampedusa, in the central Mediterranean, on 7 September 2005, show the occurrence of a quasi-periodic oscillation of aerosol optical depth, column water vapour, and surface irradiance in different spectral bands. The oscillation has a period of about 13 min and is attributed to the propagation of a gravity wave able to modify the vertical structure of the planetary boundary layer, as also confirmed by satellite images. The wave occurred during a Saharan dust event. The oscillation amplitude is about 0.1 for the aerosol optical depth, and about 0.4 cm for the column water vapour. The modulation of the downward surface irradiances is in opposition of phase with respect to aerosol optical depth and water vapour column variations. The perturbation of the downward irradiance produced by the aerosols is determined by comparing the measured irradiances with estimated irradiances at a fixed value of the aerosol optical depth, and by correcting for the effect of the water vapour in the shortwave spectral range. The direct radiative forcing efficiency, i.e., the radiative perturbation of the net surface irradiance produced by a unit of optical depth aerosol layer, is determined at different solar zenith angles as the slope of the irradiance perturbation versus the aerosol optical depth. The estimated direct surface forcing efficiency at about 60° solar zenith angle is −(181 ± 17) W m<sup>−2</sup> in the shortwave, and −(83 ± 7) W m<sup>−2</sup> in the photosynthetic spectral range. The estimated daily average forcing efficiencies are of about −79 and −46 W m<sup>−2</sup> for the shortwave and photosynthetic spectral range, respectively.
url http://www.atmos-chem-phys.net/13/5647/2013/acp-13-5647-2013.pdf
work_keys_str_mv AT adisarra estimateofsurfacedirectradiativeforcingofdesertdustfromatmosphericmodulationoftheaerosolopticaldepth
AT dfua estimateofsurfacedirectradiativeforcingofdesertdustfromatmosphericmodulationoftheaerosolopticaldepth
AT dmeloni estimateofsurfacedirectradiativeforcingofdesertdustfromatmosphericmodulationoftheaerosolopticaldepth
_version_ 1716794548635566080