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http://dx.doi.org/10.5370/KIEE.2012.61.7.1007

A Study on Dynamic Modeling of Photovoltaic Power Generator Systems using Probability and Statistics Theories  

Cho, Hyun-Cheol (울산과학대학교 전기전자학부)
Publication Information
The Transactions of The Korean Institute of Electrical Engineers / v.61, no.7, 2012 , pp. 1007-1013 More about this Journal
Abstract
Modeling of photovoltaic power systems is significant to analytically predict its dynamics in practical applications. This paper presents a novel modeling algorithm of such system by using probability and statistic theories. We first establish a linear model basically composed of Fourier parameter sets for mapping the input/output variable of photovoltaic systems. The proposed model includes solar irradiation and ambient temperature of photovoltaic modules as an input vector and the inverter power output is estimated sequentially. We deal with these measurements as random variables and derive a parameter learning algorithm of the model in terms of statistics. Our learning algorithm requires computation of an expectation and joint expectation against solar irradiation and ambient temperature, which are analytically solved from the integral calculus. For testing the proposed modeling algorithm, we utilize realistic measurement data sets obtained from the Seokwang Solar power plant in Youngcheon, Korea. We demonstrate reliability and superiority of the proposed photovoltaic system model by observing error signals between a practical system output and its estimation.
Keywords
Photovoltaic system; Stochastic modeling; Probability; Statistic theory;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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