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Maximum power point tracking techniques for photovoltaic systems

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Techniki śledzenia maksymalnego punktu mocy dla systemu fotowoltaicznego
Konferencja
Międzynarodowa Konferencja "POWER ELECTRONICS AND INTELLIGENT CONTROL FOR ENERGY CONSERVATION", PELINCEC 2005, Warszawa, 16-19 październik 2005
Języki publikacji
EN
Abstrakty
EN
This paper presents a comparative study among maximum power point tracking methods for photovoltaic systems. The comparison takes into account steady state error, dynamic response and efficiency in a large power range. In special, an extensive bibliography and a classification of many maximum power point tracking methods is presented. Computational simulations with fast changes in the solar radiance have been done and the best maximum power point tracking technique is chosen.
PL
W artykule przedstawiono analizę porównawczą metod śledzenia maksymalnego punktu mocy systemów fotowoltanicznych. Porównanie uwzględnia błąd w stanie ustalonym i dynamicznym oraz sprawność w szerokim zakresie mocy. Dodatkowo została przedstawiona klasyfikacja wielu metod śledzenia maksymalnego punktu mocy oraz obszerna bibliografia. Wykonano symulacje dla szybkich zmian promieniowania słonecznego i wybrano najlepszą technikę śledzenia maksymalnego punktu mocy.
Rocznik
Strony
49--56
Opis fizyczny
Bibliogr. 32 poz., rys., tab.
Twórcy
autor
autor
autor
  • Universidade Federal de Pernambuco, Brazil
Bibliografia
  • [1] B. K. Bose el al, "Microcomputer control of a residential photovoltaic power conditioning system," IEEE Trans, on Industry Applications, vol. 21, no. 5, pp. 1182-1191, September 1985
  • [2] J. Appelbaum, "The operation of loads powered by separate sources or by a common source of solar cells," IEEE Trans, on Energy Conversion, vol. 4, no. 3, pp. 351-357, September 1989.
  • [3] J. Appelbaum and M. S. Sarma, "The operation of permanent magnet DC motors powered by a common source of solar cells," IEEE Trans, on Energy Conversion, vol. 4, no. 4, pp. 635-642, December 1989.
  • [4] O. Wasynczuk, "Dynamic behavior of a class of photovoltaic power systems," IEEE Trans, on Power Apparatus and Systems, vol. 102, no. 9, pp. 3031-3037, September 1983.
  • [5] F. Harashima et al, "Microprocessor-controlled SIT inverter for solar energy system," IEEE Trans, on Industrial Electronics, vol. 34, no. 1, pp. 50-55, February 1987.
  • [6] W. Xiao and W. G. Dunford, "A modified adaptive hill climbing MPPT method for photovoltaic power systems," IEEE Power Electronics Specialists Conference, pp. 1957-1963, 2004.
  • [7] Y. C. Kuo, T. J. Liang, and J. F. Chen, "Novel maximum power-point-tracking controller for photovoltaic energy conversion system", IEEE Trans, on Industrial Electronics, vol. 48, no. 3, pp. 594-601, June 2001.
  • [8] J. J. Schoeman and J. D. van Wyk, "A simplified maximal power controller for terrestrial photovoltaic panel arrays," IEEE Power Electronics Specialists Conference, pp. 361-367, 1982.
  • [9] D. P. Hohm and M. E. Ropp, "Comparative study of maximum power point tracking algorithms using an experimental, programmable, maximum power point tracking test bed," IEEE Photovoltaic Specialists Conference, pp. 1699-1702, 2000.
  • [10] A. S. Kislovski, "Power tracking methods in photovoltaic applications," IEEE Power Conversion Proceedings, pp. 513-528, 1993.
  • [11] W. Swiegers and J. H. R. Enslin, "An Integrated maximum power point tracker for photovoltaic panels," IEEE International Symposium on Industrial Electronics, pp. 40-44, 1998.
  • [12] C. Hua, J. Lin, and C. Shen, "Implementation of a DSP-controlled photovoltaic system with peak power tracking," IEEE Trans, on Industrial Electronics, vol. 45, no. 1, pp. 99-107, February 1998.
  • [13] X. Liu and L. A. C. Lopes, "An improved perturbation and observation maximum power point tracking algorithm for PV arrays," IEEE Power Electronics Specialists Conference, pp. 2005-2010, 2004.
  • [14] E. Koutroulis, K. Kalaitzakis, and N. C. Voulgaris, "Development of a microcontroller-based, photovoltaic maximum power point tracking control system," IEEE Trans, on Power Electronics, vol. 16, no. 1, pp. 46-54, January 2001.
  • [15] T. Senjyu and K. Uezato, "Maximum power point tracker using fuzzy control for photovoltaic arrays," IEEE International Conference on Industrial Technology, pp. 143-147, 1994.
  • [16] N. Femia, G. Petrone, G. Spagnuolo, and M. Vitelli, "Optimizing sampling rate of P&O MPPT technique," IEEE Power Electronics Specialists Conference, pp. 1945-1949, 2004.
  • [17] N. Femia, G. Petrone, G. Spagnuolo, and M. Vitelli, "Optimizing duty-cycle perturbation of P&O MPPT technique," IEEE Power Electronics Specialists Conference, pp. 1939-1944, 2004.
  • [18] K. H. Hussein, I. Muta, T. Hoshino, and M. Osakada, "Maximum photovoltaic power tracking: an algorithm for rapidly changing atmospheric conditions," IEE Proc. Generation, Transmission and Distribution, vol. 142, pp. 59-64, Jan. 1995.
  • [19] A. Brambilla, "New approach to photovoltaic arrays maximum power point tracking," IEEE Power Electronics Specialists Conference, pp. 632-637, 1998.
  • [20] T. Y. Kim, H. G. Ahn, S. K. Park, and Y. K. Lee, "A novel maximum power point tracking control for photovoltaic power system under rapidly changing solar radiation," IEEE International Symposium on Industrial Electronics, pp. 1011-1014, 2001.
  • [21] I. H. Altas nd A. M. Sharaf, "A novel on-line MPP search algorithm for PV arrays," IEEE Trans, on Energy Conservation, vol. 11, no. 4, pp. 748-754, December 1996.
  • [22] M. Matsui, T. Kitano, D. Xu, and Z. Yang, "A new maximum photovoltaic power tracking control scheme based on power equilibrium at DC link," IEEE Industry Applications Conference, pp. 804-809, 1999.
  • [23] G. J. Yu, Y. S. Jung, J. Y. Choi, I. Choy, J. H. Song, and G. S. Kim, "A novel two-mode MPPT control algorithm based on comparative study of existing algorithms," IEEE Photovoltaic Specialists Conference, pp. 1531-1534, 2002.
  • [24] K. K. Tse, M. T. Ho, H. S. H. Chung, and S. Y. Hui, "A novel maximum power power point tracker for PV panels using switching frequency modulation," IEEE Trans, on Power Electronics, vol. 17, no. 6, pp. 980-989, November 2002.
  • [25] Y. Chen, K. Smedley, F. Vacher, and J. Brouwer, "A new maximum power point tracking controller for photovoltaic power generation," IEEE Applied Power Electronics Conference and Exposition, pp. 58-62, 2003.
  • [26] S. Jain and V. Agarwal, "A new algorithm for rapid tracking of approximate maximum power point in photovoltaic systems", IEEE Power Electronics Letters, vol. 2, no.1, pp. 16-19, May/June 2004.
  • [27] K. H. Hussein and I. Muta, "Modified algorithms for photovoltaic maximum power point tracking," Joint Conference of Electrical and Electronics Engineers in Kyushu, Japan, pp. 301, 1991.
  • [28] C. Hua and C. Shen, "Comparative study of peak power tracking techniques for solar storage systems," IEEE Applied Power Electronics Conference and Exposition, pp. 679-685, 1998.
  • [29] M. Park, B. T. Kim, and I. K. Yu, "A novel simulation method for PV power generation systems using real weather conditions," IEEE International Symposium on Industrial Electronics, pp. 526-530, 2001.
  • [30] Y. C. Kuo, T. J. Liang, and J. F. Chen, "A high-efficiency single-phase three-wire photovoltaic energy conversion system," IEEE Trans, on Industrial Electronics, vol. 50, no. 1, pp. 116-122, February 2003.
  • [31] P. Shanker and J. M. S. Kim, "A new current programming technique using predictive control," IEEE 16th International Telecommunications Energy Conference, pp. 428-434, 1994.
  • [32] C. Hua and C. Shen, "Control of DC/DC converters for solar energy system with maximum power tracking," International Conference on Industrial Electronics, Control and Instrumentation, pp. 827-832, 1997.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAR0-0014-0060
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