A case study of the radiative effect of aerosols over Europe: EUCAARI-LONGREX
Anna R. Esteve, E. J. Highwood, Claire L. Ryder
Abstract
Anna R. Esteve, E. J. Highwood, Claire L. Ryder
Abstract
Abstract. The radiative effect of anthropogenic aerosols over Europe during the 2008 EUCAARI-LONGREX campaign has been calculated using measurements collected by the FAAM BAe-146 aircraft and radiative transfer modelling. The aircraft sampled anthropogenically perturbed air masses across north-western Europe under anticyclonic conditions with aerosol optical depths ranging from 0.047 to 0.357. For one specially designed "radiative closure" flight, simulated irradiances have been compared to radiation measurements in a case of aged European aerosol in order to explore the validity of model assumptions and the degree of "radiative closure" that can be attained for the spatial and temporal variability and measurement uncertainties. Secondly, the diurnally averaged aerosol radiative effect throughout EUCAARI-LONGREX has been calculated. Surface radiative effect ranged between −3.9 and −22.8 Wm−2 (mean −11 ± 5 Wm−2) whilst top of the atmosphere (TOA) values were between −2.1 and −12.0 Wm−2 (mean −5 ± 3 Wm−2). We have quantified the uncertainties in our calculations due to the way in which aerosols and other parameters are represented in a radiative transfer model. The largest uncertainty in the aerosol radiative effect at both the surface and the TOA comes from the spectral resolution of the information used in the radiative transfer model (~ 17 %) and the aerosol description (composition and size distribution) used in the Mie calculations of the aerosol optical properties included in the radiative transfer model (~ 7 %). The aerosol radiative effect at the TOA is also highly sensitive to the surface albedo (~ 12 %).
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Abstract. The radiative effect of anthropogenic aerosols over Europe during the 2008 EUCAARI-LONGREX campaign has been calculated using measurements collected by the FAAM BAe-146 aircraft and radiative transfer modelling. The aircraft sampled anthropogenically perturbed air masses across north-western Europe under anticyclonic conditions with aerosol optical depths ranging from 0.047 to 0.357. For one specially designed "radiative closure" flight, simulated irradiances have been compared to radiation measurements in a case of aged European aerosol in order to explore the validity of model assumptions and the degree of "radiative closure" that can be attained for the spatial and temporal variability and measurement uncertainties. Secondly, the diurnally averaged aerosol radiative effect throughout EUCAARI-LONGREX has been calculated. Surface radiative effect ranged between −3.9 and −22.8 Wm−2 (mean −11 ± 5 Wm−2) whilst top of the atmosphere (TOA) values were between −2.1 and −12.0 Wm−2 (mean −5 ± 3 Wm−2). We have quantified the uncertainties in our calculations due to the way in which aerosols and other parameters are represented in a radiative transfer model. The largest uncertainty in the aerosol radiative effect at both the surface and the TOA comes from the spectral resolution of the information used in the radiative transfer model (~ 17 %) and the aerosol description (composition and size distribution) used in the Mie calculations of the aerosol optical properties included in the radiative transfer model (~ 7 %). The aerosol radiative effect at the TOA is also highly sensitive to the surface albedo (~ 12 %).
Key concepts: Radiative transfer, Aerosol, Atmospheric radiative transfer codes, Radiative flux, Atmospheric sciences, Environmental science, Atmosphere (unit), Albedo (alchemy)