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Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms

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dc.contributor.author Sun, Z
dc.contributor.author Gebremichael, M
dc.contributor.author Wang, Q
dc.contributor.author Wang, J
dc.contributor.author Sammis, TW
dc.contributor.author Nickless, A
dc.date.accessioned 2013-11-06T09:13:22Z
dc.date.available 2013-11-06T09:13:22Z
dc.date.issued 2013-09
dc.identifier.citation Sun, Z, Gebremichael, M, Wang, Q, Wang, J, Sammis, T.W and Nickless, A. 2013. Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms. Remote sensing, vol. 5(10), pp 4735-4752 en_US
dc.identifier.issn 2072-4292
dc.identifier.uri http://www.mdpi.com/2072-4292/5/10/4735
dc.identifier.uri http://hdl.handle.net/10204/7029
dc.description Copyright: 2013 MDPI. This is an Open Access journal. The journal authorizes the publication of the information herewith contained. Published in Remote sensing, vol. 5(10), pp 4735-4752 en_US
dc.description.abstract Net radiation is a key component of the energy balance, whose estimation accuracy has an impact on energy flux estimates from satellite data. In typical remote sensing evapotranspiration (ET) algorithms, the outgoing shortwave and longwave components of net radiation are obtained from remote sensing data, while the incoming shortwave (R(subS)) and longwave (R(subL)) components are typically estimated from weather data using empirical equations. This study evaluates the accuracy of empirical equations commonly used in remote sensing ET algorithms for estimating R(subS) and R(subL) radiation. Evaluation is carried out through comparison of estimates and observations at five sites that represent different climatic regions from humid to arid. Results reveal (1) both R(subS) and R(subL) estimates from all evaluated equations well correlate with observations (R2 = 0.92), (2) R(subS) estimating equations tend to overestimate, especially at higher values, (3) R(subL) estimating equations tend to give more biased values in arid and semi-arid regions, (4) a model that parameterizes the diffuse component of radiation using two clearness indices and a simple model that assumes a linear increase of atmospheric transmissivity with elevation give better R(subS) estimates, and (5) mean relative absolute errors in the net radiation (R(subn)) estimates caused by the use of R(subS) and R(subL) estimating equations varies from 10% to 22%. This study suggests that Rn estimates using recommended incoming radiation estimating equations could improve ET estimates en_US
dc.language.iso en en_US
dc.publisher MDPI en_US
dc.relation.ispartofseries Workflow;11672
dc.subject Net radiation en_US
dc.subject Satellite data en_US
dc.subject Remote sensing evapotranspiration en_US
dc.title Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms en_US
dc.type Article en_US
dc.identifier.apacitation Sun, Z., Gebremichael, M., Wang, Q., Wang, J., Sammis, T., & Nickless, A. (2013). Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms. http://hdl.handle.net/10204/7029 en_ZA
dc.identifier.chicagocitation Sun, Z, M Gebremichael, Q Wang, J Wang, TW Sammis, and A Nickless "Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms." (2013) http://hdl.handle.net/10204/7029 en_ZA
dc.identifier.vancouvercitation Sun Z, Gebremichael M, Wang Q, Wang J, Sammis T, Nickless A. Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms. 2013; http://hdl.handle.net/10204/7029. en_ZA
dc.identifier.ris TY - Article AU - Sun, Z AU - Gebremichael, M AU - Wang, Q AU - Wang, J AU - Sammis, TW AU - Nickless, A AB - Net radiation is a key component of the energy balance, whose estimation accuracy has an impact on energy flux estimates from satellite data. In typical remote sensing evapotranspiration (ET) algorithms, the outgoing shortwave and longwave components of net radiation are obtained from remote sensing data, while the incoming shortwave (R(subS)) and longwave (R(subL)) components are typically estimated from weather data using empirical equations. This study evaluates the accuracy of empirical equations commonly used in remote sensing ET algorithms for estimating R(subS) and R(subL) radiation. Evaluation is carried out through comparison of estimates and observations at five sites that represent different climatic regions from humid to arid. Results reveal (1) both R(subS) and R(subL) estimates from all evaluated equations well correlate with observations (R2 = 0.92), (2) R(subS) estimating equations tend to overestimate, especially at higher values, (3) R(subL) estimating equations tend to give more biased values in arid and semi-arid regions, (4) a model that parameterizes the diffuse component of radiation using two clearness indices and a simple model that assumes a linear increase of atmospheric transmissivity with elevation give better R(subS) estimates, and (5) mean relative absolute errors in the net radiation (R(subn)) estimates caused by the use of R(subS) and R(subL) estimating equations varies from 10% to 22%. This study suggests that Rn estimates using recommended incoming radiation estimating equations could improve ET estimates DA - 2013-09 DB - ResearchSpace DP - CSIR KW - Net radiation KW - Satellite data KW - Remote sensing evapotranspiration LK - https://researchspace.csir.co.za PY - 2013 SM - 2072-4292 T1 - Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms TI - Evaluation of clear-sky incoming radiation estimating equations typically used in remote sensing evapotranspiration algorithms UR - http://hdl.handle.net/10204/7029 ER - en_ZA


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