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
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;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2009.2027699