• DocumentCode
    1490736
  • Title

    Climatology of the Aerosol Extinction-to-Backscatter Ratio from Sun-Photometric Measurements

  • Author

    Pedrós, Roberto ; Estellés, Víctor ; Sicard, Michaël ; Gómez-Amo, JoséLuis ; Utrillas, María Pilar ; Martínez-Lozano, José A. ; Rocadenbosch, F. ; Pérez, C. ; Recio, JoséMaría Baldasano

  • Author_Institution
    Solar RadiatiDepartment of Earth Phys., Univ. of Valencia, Valencia, Spain
  • Volume
    48
  • Issue
    1
  • fYear
    2010
  • Firstpage
    237
  • Lastpage
    249
  • Abstract
    The elastic lidar equation contains two unknown atmospheric parameters, namely, the particulate optical extinction and backscatter coefficients, which are related through the lidar ratio (i.e., the particulate-extinction-to-backscatter ratio). So far, independent inversion of the lidar signal has been carried out by means of Raman lidars (usually limited to nighttime measurements), high-spectral-resolution lidars, or scanning elastic lidars under the assumption of a homogeneously vertically stratified atmosphere. In this paper, we present a procedure to obtain the lidar ratio at 532 nm by a combined Sun-photometer-aerosol-model inversion, where the viability of the solution is largely reinforced by assimilating categorized air-mass back-trajectory information. Thus, iterative lidar-ratio tuning to reconstruct the Sun-photometric aerosol optical depth (AOD) is additionally constrained by the air-mass back trajectories provided by the hybrid single-particle Lagrangian integrated-trajectory model. The retrieved lidar ratios are validated with inversions of lidar data based on the Klett-Fernald-Sasano algorithm and with the Aerosol Robotic Network (AERONET)-retrieved lidar ratios. The estimated lidar ratios concur with the AERONET-retrieved lidar ratios and with those of the well-known KFS inversion constrained with Sun-photometric AOD values and embedded single-scattering models. The proposed method can be applied to routinely extract climatological values of the lidar ratio using measurements of direct solar irradiance (more numerous than those of sky radiance).
  • Keywords
    aerosols; atmospheric optics; atmospheric techniques; data assimilation; extinction coefficients; light scattering; optical radar; photometry; remote sensing by laser beam; sunlight; AERONET retrieved lidar ratios; Aerosol Robotic Network; KFS inversion; Klett-Fernald-Sasano algorithm; aerosol extinction-backscatter ratio; aerosol model inversion; air mass back trajectory information; data assimilation; direct solar irradiance; elastic lidar equation; hybrid single particle Lagrangian integrated trajectory model; iterative lidar ratio tuning; lidar data inversion; particulate optical backscatter coefficient; particulate optical extinction coefficient; sun photometric aerosol optical depth; sun photometric measurements; wavelength 532 nm; Aerosols; Sun photometer; back trajectories; extinction-to-backscatter ratio; lidar;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2009.2027699
  • Filename
    5276814