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Evaluating the spatio-temporal performance of sky imager based solar irradiance analysis and forecasts.

Authors :
Schmidt, T.
Kalisch, J.
Lorenz, E.
Heinemann, D.
Source :
Atmospheric Chemistry & Physics; 2015, Vol. 15 Issue 19, p26997-27039, 43p, 2 Color Photographs, 2 Diagrams, 4 Charts, 6 Graphs
Publication Year :
2015

Abstract

Clouds are the dominant source of variability in surface solar radiation and uncertainty in its prediction. However, the increasing share of solar energy in the world-wide electric power supply increases the need for accurate solar radiation forecasts. In this work, we present results of a shortest-term global horizontal irradiance (GHI) forecast experiment based on hemispheric sky images. A two month dataset with images from one sky imager and high resolutive GHI measurements from 99 pyranometers distributed over 10km by 12km is used for validation. We developed a multi-step model and processed GHI forecasts up to 25min with an update interval of 15 s. A cloud type classification is used to separate the time series in different cloud scenarios. Overall, the sky imager based forecasts do not outperform the reference persistence forecasts. Nevertheless, we find that analysis and forecast performance depend strongly on the predominant cloud conditions. Especially convective type clouds lead to high temporal and spatial GHI variability. For cumulus cloud conditions, the analysis error is found to be lower than that introduced by a single pyranometer if it is used representatively for the whole area in distances from the camera larger than 1-2 km. Moreover, forecast skill is much higher for these conditions compared to overcast or clear sky situations causing low GHI variability which is easier to predict by persistence. In order to generalize the cloud-induced forecast error, we identify a variability threshold indicating conditions with positive forecast skill. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
16807316
Volume :
15
Issue :
19
Database :
Complementary Index
Journal :
Atmospheric Chemistry & Physics
Publication Type :
Academic Journal
Accession number :
110320791
Full Text :
https://doi.org/10.5194/acpd-15-26997-2015