• DocumentCode
    2443015
  • Title

    Maximum output control of photovoltaic (PV) array

  • Author

    Takashima, Takeshi ; Tanaka, Tadayoshi ; Amano, Masatsugu ; Ando, Yuji

  • Author_Institution
    Energy Fundamentals Div., Electrotech. Lab., Tsukuba, Japan
  • Volume
    1
  • fYear
    2000
  • fDate
    2000
  • Firstpage
    380
  • Abstract
    A photovoltaic (PV) system output depends on environmental parameters such as the solar insolation and the PV module temperature. If it is possible to predict the maximum power point under the outdoor environment and to operate at that point, the PV system can generate the maximum output every time. In this paper, a maximum power point control method that maximizes the output of a PV array is proposed. This method determines the maximum output operation point from the I-V characteristics introducing empirically the effects of the solar insolation and the module temperature. The authors derived two main parameters from this analysis; one is the power gain G, and another is the environmental operation parameter X. At the operation point determined by this method, G becomes larger than that of under the same environmental conditions. G becomes large with the increase of X, and the large X mainly means low solar insolation. The characteristics of PV module which will supply more power especially at large X should satisfy the following points; the fill factor of the module should be lower and the short circuit current of the module should be larger than those of arrays currently available in the market
  • Keywords
    control system analysis; control system synthesis; optimal control; photovoltaic power systems; power control; power system control; solar cell arrays; I-V characteristics; PV module temperature; PV power systems; environmental operation parameter; environmental parameters; fill factor; maximum output control; maximum power point control method; maximum power point prediction; photovoltaic array; power gain; short circuit current; solar insolation; Buildings; Circuits; Costs; Equations; Photovoltaic systems; Power generation; Power supplies; Solar power generation; Temperature dependence; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Energy Conversion Engineering Conference and Exhibit, 2000. (IECEC) 35th Intersociety
  • Conference_Location
    Las Vegas, NV
  • Print_ISBN
    1-56347-375-5
  • Type

    conf

  • DOI
    10.1109/IECEC.2000.870713
  • Filename
    870713