High Turbidity Solis Clear Sky Model: Development and Validation
The Solis clear sky model is a spectral scheme based on radiative transfer calculations and the Lambert–Beer relation. Its broadband version is a simplified fast analytical version; it is limited to broadband aerosol optical depths lower than 0.45, which is a weakness when applied in countries with...
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doaj-0e7342a19338476fa791ead15dd1580c2020-11-24T23:14:12ZengMDPI AGRemote Sensing2072-42922018-03-0110343510.3390/rs10030435rs10030435High Turbidity Solis Clear Sky Model: Development and ValidationPierre Ineichen0Department F.-A. Forel for Environmental and Aquatic Sciences, Institute for Environmental Sciences, University of Geneva, 1205 Genève, SwitzerlandThe Solis clear sky model is a spectral scheme based on radiative transfer calculations and the Lambert–Beer relation. Its broadband version is a simplified fast analytical version; it is limited to broadband aerosol optical depths lower than 0.45, which is a weakness when applied in countries with very high turbidity such as China or India. In order to extend the use of the original simplified version of the model for high turbidity values, we developed a new version of the broadband Solis model based on radiative transfer calculations, valid for turbidity values up to 7, for the three components, global, beam, and diffuse, and for the four aerosol types defined by Shettle and Fenn. A validation of low turbidity data acquired in Geneva shows slightly better results than the previous version. On data acquired at sites presenting higher turbidity data, the bias stays within ±4% for the beam and the global irradiances, and the standard deviation around 5% for clean and stable condition data and around 12% for questionable data and variable sky conditions.http://www.mdpi.com/2072-4292/10/3/435Solis schemeclear skyradiation modelradiative transferhigh turbiditywater vapor |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pierre Ineichen |
spellingShingle |
Pierre Ineichen High Turbidity Solis Clear Sky Model: Development and Validation Remote Sensing Solis scheme clear sky radiation model radiative transfer high turbidity water vapor |
author_facet |
Pierre Ineichen |
author_sort |
Pierre Ineichen |
title |
High Turbidity Solis Clear Sky Model: Development and Validation |
title_short |
High Turbidity Solis Clear Sky Model: Development and Validation |
title_full |
High Turbidity Solis Clear Sky Model: Development and Validation |
title_fullStr |
High Turbidity Solis Clear Sky Model: Development and Validation |
title_full_unstemmed |
High Turbidity Solis Clear Sky Model: Development and Validation |
title_sort |
high turbidity solis clear sky model: development and validation |
publisher |
MDPI AG |
series |
Remote Sensing |
issn |
2072-4292 |
publishDate |
2018-03-01 |
description |
The Solis clear sky model is a spectral scheme based on radiative transfer calculations and the Lambert–Beer relation. Its broadband version is a simplified fast analytical version; it is limited to broadband aerosol optical depths lower than 0.45, which is a weakness when applied in countries with very high turbidity such as China or India. In order to extend the use of the original simplified version of the model for high turbidity values, we developed a new version of the broadband Solis model based on radiative transfer calculations, valid for turbidity values up to 7, for the three components, global, beam, and diffuse, and for the four aerosol types defined by Shettle and Fenn. A validation of low turbidity data acquired in Geneva shows slightly better results than the previous version. On data acquired at sites presenting higher turbidity data, the bias stays within ±4% for the beam and the global irradiances, and the standard deviation around 5% for clean and stable condition data and around 12% for questionable data and variable sky conditions. |
topic |
Solis scheme clear sky radiation model radiative transfer high turbidity water vapor |
url |
http://www.mdpi.com/2072-4292/10/3/435 |
work_keys_str_mv |
AT pierreineichen highturbiditysolisclearskymodeldevelopmentandvalidation |
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