DocumentCode :
2650387
Title :
Fuel cell power regulation based-on differential flatness theory for high-power converter applications
Author :
Thounthong, Phatiphat ; Sikkabut, Suwat ; Sethakul, Panarit ; Pierfederici, Serge ; Davat, Bernard
Author_Institution :
Dept. of Teacher Training in Electr. Eng., King Mongkut´´s Univ. of Technol. North Bangkok, Bangkok, Thailand
fYear :
2010
fDate :
6-8 Sept. 2010
Firstpage :
1
Lastpage :
6
Abstract :
This paper presents an innovative control law for a distributed dc generation supplied by fuel cell (FC) generator. Basically, an FC is always connected with a power electronic converter. This kind of system is non-linear behavior. Classically, to control the voltage, the current or the power in the converter, linearized technique is often used to study the stability and to select the controller parameters of the nonlinear converter. In this paper, a non-linear control algorithm based on the flatness property of the system is proposed. Flatness provides a convenient framework for meeting a number of performance specifications on the power converter. Utilizing the flatness property, one proposes simple solutions to the system performance and stabilization problems. Design controller parameters are autonomous of the operating point. To validate the proposed method, a prototype FC power converter (1.2-kW) is realized in laboratory. The proposed control law based on flatness property is implemented by digital estimation in dSPACE 1104 controller card. Experimental results with a polymer electrolyte membrane FC (PEMFC) of 1200 W, 46 A in a laboratory corroborate the excellent control scheme.
Keywords :
distributed power generation; electric current control; nonlinear control systems; power control; power convertors; power electronics; proton exchange membrane fuel cells; stability; voltage control; PEMFC; current 46 A; current control; dSPACE 1104 controller card; differential flatness theory; distributed dc generation; fuel cell generator; fuel cell power regulation; nonlinear control algorithm; polymer electrolyte membrane FC; power 1.2 kW; power control; power electronic converter; stabilization problems; voltage control; Control systems; Converters; Fuel cells; Inductors; Mathematical model; Power control; Voltage control; Converters; Interleaved; flatness-based control; fuel cells FCs; nonlinear; power control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Machines (ICEM), 2010 XIX International Conference on
Conference_Location :
Rome
Print_ISBN :
978-1-4244-4174-7
Electronic_ISBN :
978-1-4244-4175-4
Type :
conf
DOI :
10.1109/ICELMACH.2010.5608031
Filename :
5608031
Link To Document :
بازگشت