6533b85dfe1ef96bd12bdc7f

RESEARCH PRODUCT

Effective cloud optical depth and enhancement effects for broken liquid water clouds in Valencia (Spain)

María P. UtrillasD. SerranoM. J. MarínJosé A. Martínez-lozanoManuel Nuñez

subject

Atmospheric Science010504 meteorology & atmospheric sciencesMeteorologybusiness.industryCloud coverIrradianceSolar zenith angleCloud computingRadiation010502 geochemistry & geophysics01 natural sciencesCloud optical depthOvercastRange (statistics)Environmental sciencebusinessAstrophysics::Galaxy Astrophysics0105 earth and related environmental sciences

description

Partly cloudy skies with liquid water clouds have been analysed, founding that it is essential to distinguish data if the Sun is obstructed or not by clouds. Both cases can be separated considering simultaneously the Cloud Modification Factor (CMF) and the clearness index (kt). For partly cloudy skies and the Sun obstructed the effective cloud optical depth (τ) has been obtained by the minimization method for overcast skies. This method was previously developed by the authors but, in this case, taking into account partial cloud cover. This study has been conducted for the years 2011–2015 with the multiple scattering model SBDART and irradiance measurements for the UV Erythemal Radiation (UVER) and the broadband ranges. Afterwards a statistical analysis of τ has shown that the maximum value is much lower than for overcast skies and there is more discrepancy between the two spectral ranges regarding the results for overcast skies. In order to validate these results the effective cloud optical depth has been correlated with several transmission factors, giving similar fit parameters to those obtained for overcast skies except for the clearness index in the UVER range. As our method is not applicable for partly cloudy skies with the visible Sun, the enhancement of radiation caused by clouds when the Sun is visible has been studied. Results show that the average enhancement CMF values are the same for both ranges although enhancement is more frequent for low cloud cover in the UVER and medium-high cloud cover in the broadband range and it does not depend on the solar zenith angle.

https://doi.org/10.1016/j.atmosres.2017.05.008