A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo

The increasing use of renewable energies as a source of electricity has led to a fundamental transition of the power supply system. The integration of fluctuating weather-dependent energy sources into the grid already has a major impact on its load flows. As a result, the interest in forecasting win...

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Main Authors: Isabel Urbich, Jörg Bendix, Richard Müller
Format: Article
Language:English
Published: MDPI AG 2018-06-01
Series:Remote Sensing
Subjects:
Online Access:http://www.mdpi.com/2072-4292/10/6/955
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spelling doaj-66508e8f5bb54b42995a8974f7cb57982020-11-25T01:27:30ZengMDPI AGRemote Sensing2072-42922018-06-0110695510.3390/rs10060955rs10060955A Novel Approach for the Short-Term Forecast of the Effective Cloud AlbedoIsabel Urbich0Jörg Bendix1Richard Müller2Faculty of Geography, Deutscher Wetterdienst, Frankfurter Straße 135, 63067 Offenbach, GermanyPhilipps-Universität Marburg, Deutschhausstraße 12, 35032 Marburg, GermanyFaculty of Geography, Deutscher Wetterdienst, Frankfurter Straße 135, 63067 Offenbach, GermanyThe increasing use of renewable energies as a source of electricity has led to a fundamental transition of the power supply system. The integration of fluctuating weather-dependent energy sources into the grid already has a major impact on its load flows. As a result, the interest in forecasting wind and solar radiation with a sufficient accuracy over short time periods (<4 h) has grown. In this study, the short-term forecast of the effective cloud albedo based on optical flow estimation methods is investigated. The optical flow method utilized here is TV-L1 from the open source library OpenCV. This method uses a multi-scale approach to capture cloud motions on various spatial scales. After the clouds are displaced, the solar surface radiation will be calculated with SPECMAGIC NOW, which computes the global irradiation spectrally resolved from satellite imagery. Due to the high temporal and spatial resolution of satellite measurements, the effective cloud albedo and thus solar radiation can be forecasted from 5 min up to 4 h with a resolution of 0.05°. The validation results of this method are very promising, and the RMSE of the 30-min, 60-min, 90-min and 120-min forecast equals 10.47%, 14.28%, 16.87% and 18.83%, respectively. The paper gives a brief description of the method for the short-term forecast of the effective cloud albedo. Subsequently, evaluation results will be presented and discussed.http://www.mdpi.com/2072-4292/10/6/955effective cloud albedosolar surface irradianceoptical flowcloud motion vectorsrenewable energies
collection DOAJ
language English
format Article
sources DOAJ
author Isabel Urbich
Jörg Bendix
Richard Müller
spellingShingle Isabel Urbich
Jörg Bendix
Richard Müller
A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
Remote Sensing
effective cloud albedo
solar surface irradiance
optical flow
cloud motion vectors
renewable energies
author_facet Isabel Urbich
Jörg Bendix
Richard Müller
author_sort Isabel Urbich
title A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
title_short A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
title_full A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
title_fullStr A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
title_full_unstemmed A Novel Approach for the Short-Term Forecast of the Effective Cloud Albedo
title_sort novel approach for the short-term forecast of the effective cloud albedo
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2018-06-01
description The increasing use of renewable energies as a source of electricity has led to a fundamental transition of the power supply system. The integration of fluctuating weather-dependent energy sources into the grid already has a major impact on its load flows. As a result, the interest in forecasting wind and solar radiation with a sufficient accuracy over short time periods (<4 h) has grown. In this study, the short-term forecast of the effective cloud albedo based on optical flow estimation methods is investigated. The optical flow method utilized here is TV-L1 from the open source library OpenCV. This method uses a multi-scale approach to capture cloud motions on various spatial scales. After the clouds are displaced, the solar surface radiation will be calculated with SPECMAGIC NOW, which computes the global irradiation spectrally resolved from satellite imagery. Due to the high temporal and spatial resolution of satellite measurements, the effective cloud albedo and thus solar radiation can be forecasted from 5 min up to 4 h with a resolution of 0.05°. The validation results of this method are very promising, and the RMSE of the 30-min, 60-min, 90-min and 120-min forecast equals 10.47%, 14.28%, 16.87% and 18.83%, respectively. The paper gives a brief description of the method for the short-term forecast of the effective cloud albedo. Subsequently, evaluation results will be presented and discussed.
topic effective cloud albedo
solar surface irradiance
optical flow
cloud motion vectors
renewable energies
url http://www.mdpi.com/2072-4292/10/6/955
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