Simulation of photovoltaic grid-connected generation system with maximum power point tracking and voltage control strategy

被引:0
作者
Wu H. [1 ]
Tao X. [1 ]
Ding M. [1 ]
机构
[1] Photovoltaic System Research Center of Ministry of Education, Hefei University of Technology
来源
Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering | 2010年 / 26卷 / 01期
关键词
Algorithms; Maximum power point tracking; Photovoltaic grid-connected; Power generation; Simulation; Voltage control;
D O I
10.3969/j.issn.1002-6819.2010.01.047
中图分类号
学科分类号
摘要
The fluctuating of the reactive load could largely affect the terminal voltage in distribution systems. By controlling the AC voltage of grid-connected bus in photovoltaic generation system, it could improve the voltage level of distribution systems. Based on the structure of the photovoltaic grid-connected system, it established the dual-loop feedback control strategy. The voltage loop was considered as the external loop, and the grid-connected current loop as the internal loop. The grid-connected current was decoupled into active current and reactive current via the abc/dqo coordinates transformation. The DC voltage reference from the maximum power point tracking (MPPT) used to adjust the active current, and the AC voltage reference from the system voltage used to dominate the reactive current. In this way, it achieved the MPPT and voltage control technology of the three phase photovoltaic grid-connected generation. The simulation results show that the MPPT and voltage control strategy can not only implement the maximum power point tracking but also control the AC voltage of grid-connected bus. It can further upgrade the application future of photovoltaic grid-connected generation system.
引用
收藏
页码:267 / 271
页数:4
相关论文
共 17 条
  • [11] Zhang G., Zhang T., Ding M., Et al., Combined control of active power filter and PV grid connected generation, Automation of Electric Power Systems, 31, 8, pp. 61-66, (2007)
  • [12] Cheng L., Yan W., Wang Z., Et al., Optimization planning of reactive power compensation for rural power grids by improved genetic algorithm, Transactions of the CSAE, 22, 4, pp. 126-130, (2006)
  • [13] Meng X., Piao Z., Wang J., Reactive power optimal approach in rural distribution systems accounting for load uncertainty, Transactions of the CSAE, 25, 9, pp. 182-187, (2009)
  • [14] Xia J., Niu H., Yang M., Voltage and reactive power optimization algorithm incorporating off-load tap changer transformer in distribution systems, Transactions of the CSAE, 24, 8, pp. 118-122, (2008)
  • [15] Zheng S., Xia W., Study on control strategy of three phase photovoltaic grid-connected system, Electrical Engineering, 3, pp. 43-46, (2007)
  • [16] Hua C., Lin J., A modified tracking algorithm formaximum power tracking of solar array, Energy Conversion and Management, 45, 6, pp. 911-925, (2004)
  • [17] Mao M., Yu S., Su J., Versatile matlab simulation model for photovoltaic array with MPPT function, Journal of System Simulation, 17, 5, pp. 1248-1251, (2005)