• DocumentCode
    3533147
  • Title

    Performance investigation of linear control and nonlinear control based-on flatness approach for a DC link stabilized fuel cell/supercapacitor hybrid power plant

  • Author

    Thounthong, P. ; Sikkabut, S. ; Sethakul, P. ; Hinaje, M. ; Raël, S. ; Davat, B.

  • Author_Institution
    Dept. of Teacher Training in Electr. Eng., King Mongkut´´s Univ. of Technol. North Bangkok, Bangkok, Thailand
  • fYear
    2011
  • fDate
    14-16 June 2011
  • Firstpage
    682
  • Lastpage
    689
  • Abstract
    In this paper, the control approaches of linear proportional-integral (PI) and nonlinear flatness-based estimation for dc link stabilization for fuel cell/supercapacitor hybrid power plants are compared. For high power applications, 4-phase parallel boost converters are implemented with a switching interleaving technique for a fuel cell (FC) converter, and 4-phase parallel bidirectional converters are implemented with a switching interleaving technique for a supercapacitor converter in the laboratory. As controls, mathematical models (reduced-order models) of the FC converter and the supercapacitor converter are given. The prototype small-scale power plant studied is composed of a PEMFC system (the Nexa Ballard FC power generator: 1.2 kW, 46 A) and a supercapacitor module (100 F, 32 V, based on Maxwell Technologies Company). Simulation (by Matlab/Simulink) and experimental results demonstrate that the nonlinear differential flatness-based control provides improved dc bus stabilization relative to a classical linear PI control method.
  • Keywords
    PI control; fuel cell power plants; hybrid power systems; nonlinear control systems; power convertors; power generation control; proton exchange membrane fuel cells; supercapacitors; 4-phase parallel bidirectional converters; 4-phase parallel boost converters; DC link stabilized fuel cell; capacitance 100 F; current 46 A; flatness approach; linear PI control method; linear proportional-integral; nonlinear control; nonlinear flatness-based estimation; power 1.2 kW; supercapacitor converter; supercapacitor hybrid power plant; switching interleaving technique; voltage 32 V; Fuel cells; Mathematical model; Pi control; Power conversion; Power generation; Supercapacitors; Converters; fuel cells; nonlinear control; supercapacitor; voltage control;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Clean Electrical Power (ICCEP), 2011 International Conference on
  • Conference_Location
    Ischia
  • Print_ISBN
    978-1-4244-8929-9
  • Electronic_ISBN
    978-1-4244-8928-2
  • Type

    conf

  • DOI
    10.1109/ICCEP.2011.6036354
  • Filename
    6036354