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Generating capacity adequacy evaluation of large-scale, grid-connected photovoltaic systems 被引量:1

Generating capacity adequacy evaluation of large-scale, grid-connected photovoltaic systems
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摘要 Large-scale, grid-connected photovoltaic sys- tems have become an essential part of modem electric power distribution systems. In this paper, a novel approach based on the Markov method has been proposed to investigate the effects of large-scale, grid-connected photovoltaic systems on the reliability of bulk power systems. The proposed method serves as an applicable tool to estimate performance (e.g., energy yield and capacity) as well as reliability indices. The Markov method frame- work has been incorporated with the' multi-state models to develop energy states of the photovoltaic systems in order to quantify the effects of the photovoltaic systems on the power system adequacy. Such analysis assists planners to make adequate decisions based on the economical expectations as well as to ensure the recovery of the investment costs over time. The failure states of the components of photovoltaic systems have been considered to evaluate the sensitivity analysis and the adequacy indices including loss of load expectation, and expected energy not supplied. Moreover, the impacts of transitions between failures on the reliability calculations as well as on the long- term operation of the photovoltaic systems have been illustrated. Simulation results on the Roy Billinton test system has been shown to illustrate the procedure of the proposed frame work and evaluate the reliability benefits of using large-scale, grid-connected photovoltaic system on the bulk electric power systems. The proposed method can be easily extended to estimate the operating and maintenance costs for the financial planning of the photovoltaic system projects. Large-scale, grid-connected photovoltaic sys- tems have become an essential part of modem electric power distribution systems. In this paper, a novel approach based on the Markov method has been proposed to investigate the effects of large-scale, grid-connected photovoltaic systems on the reliability of bulk power systems. The proposed method serves as an applicable tool to estimate performance (e.g., energy yield and capacity) as well as reliability indices. The Markov method frame- work has been incorporated with the' multi-state models to develop energy states of the photovoltaic systems in order to quantify the effects of the photovoltaic systems on the power system adequacy. Such analysis assists planners to make adequate decisions based on the economical expectations as well as to ensure the recovery of the investment costs over time. The failure states of the components of photovoltaic systems have been considered to evaluate the sensitivity analysis and the adequacy indices including loss of load expectation, and expected energy not supplied. Moreover, the impacts of transitions between failures on the reliability calculations as well as on the long- term operation of the photovoltaic systems have been illustrated. Simulation results on the Roy Billinton test system has been shown to illustrate the procedure of the proposed frame work and evaluate the reliability benefits of using large-scale, grid-connected photovoltaic system on the bulk electric power systems. The proposed method can be easily extended to estimate the operating and maintenance costs for the financial planning of the photovoltaic system projects.
出处 《Frontiers in Energy》 SCIE CSCD 2016年第3期308-318,共11页 能源前沿(英文版)
关键词 adequacy assessment Markov method large-scale grid-connected photovoltaic(PV) systems long-termoperation adequacy assessment, Markov method, large-scale grid-connected photovoltaic(PV) systems, long-termoperation
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  • 1Xu J, Yang Y, Cai B, Wang Q, Xiu D. All-ceramic solar collector and all-ceramic solar roof. Journal of the Energy Institute, 2014, 87 (1): 43-47.
  • 2Chiradeja P, Ramakumar R. An approach to quantify the technical benefits of distributed generation. IEEE Transactions on Energy Conversion, 2004, 19(4): 764-773.
  • 3Enslin J H R, Snyman D B. Combined low-cost, high-efficient inverter, peak power tracker and regulator for PV application. IEEE Transactions on Power Electronics, 1991, 6(1): 73-82.
  • 4Song J, Krishnamurthy V, Kwasinski A, Sharma R. Development of a Markov-chain-based energy storage model for power supply availability assessment of photovoltaic generation plants. IEEE Transactions on Sustainable Energy, 2013, 4(2): 491-500.
  • 5Landgrebe A R, Donley S W. Battery storage in residential applications of energy from photovoltaic sources. Applied Energy, 1983, 15(2): 127-137.
  • 6Singh C, Kim Y. An efficient technique for reliability analysis of power systems including time dependent sources. IEEE Transac- tions on Power Systems, 1988, 3(3): 1090-1096.
  • 7Ristow A, Begovic M, Pregelj A, Rohatgi A. Development of a methodology for improving photovoltaic inverter reliability. IEEE Transactions on Industrial Electronics, 2008, 55(7): 2581-2592.
  • 8Dhople S V, Dominguez-Garcia A D. Estimation of photovoltaic system reliability and performance metrics. IEEE Transactions on Power Systems, 2012, 27(1): 554--563.
  • 9Hong Y Y, Lian R C. Optimal sizing of hybrid Wind/PV/Diesel generation in a stand-alone power system using Markov-based genetic algorithm. IEEE Transactions on Power Delivery, 2012, 27 (2): 640-647.
  • 10Kanchev H, Lu D, Colas F, Lazarov V, Francois B. Energy management and operational planning of a microgrid with a PV- based active generator for smart grid applications. IEEE Transac- tions on Industrial Electronics, 2011, 58(10): 4583-4592.

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