DocumentCode :
55499
Title :
Predicting Variability of High-Penetration Photovoltaic Systems in a Community Microgrid by Analyzing High-Temporal Rate Data
Author :
Shadmand, Mohammad B. ; Balog, Robert S. ; Johnson, M.D.
Author_Institution :
Dept. of Electr. & Comput. Eng., Texas A&M Univ., College Station, TX, USA
Volume :
5
Issue :
4
fYear :
2014
fDate :
Oct. 2014
Firstpage :
1434
Lastpage :
1442
Abstract :
Interest in renewable energy sources continues to gain popularity. However, a major fundamental limitation exists that prevents widespread adoption: variability of electricity generated. Distributed generation (DG) grid-tied photovoltaic (PV) systems with centralized battery back-up can mitigate the variability of PV systems and be optimized to reduce cost by analyzing high-temporal rate data. Thus, it is an attractive system to meet “go green” mandates, while also providing reliable electricity. The focus of this paper is to analyze the variability of a high-penetration PV scenario when incorporated into the microgrid concept. The proposed system design approach is based on high-temporal rate instead of the more commonly used hourly data rate. The methodology presented in this paper employs a technoeconomic approach to determine the optimal system design to guarantee reliable electricity supply with lowest investment. The proposed methodology is used to demonstrate that the variability of the PV resource can be quantified by determining the number of PV arrays and their corresponding distance in the microgrid and then mitigate with optimized storage.
Keywords :
distributed power generation; photovoltaic power systems; power generation reliability; secondary cells; DG grid-tied PV systems; PV arrays; PV system variability mitigation; centralized battery back-up; community microgrid; cost reduction; distributed generation; electricity generation variability; electricity supply reliability; go green mandates; high-penetration photovoltaic systems; high-temporal rate data analysis; microgrid concept; optimal system design; optimized storage; renewable energy sources; technoeconomic approach; Batteries; Microgrids; Photovoltaic systems; Power system reliability; Smart grids; Distributed PV systems; PV-storage system; microgrid; photovoltaic (PV); smart grid; variability analysis;
fLanguage :
English
Journal_Title :
Sustainable Energy, IEEE Transactions on
Publisher :
ieee
ISSN :
1949-3029
Type :
jour
DOI :
10.1109/TSTE.2014.2345745
Filename :
6891361
Link To Document :
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