DocumentCode :
3097335
Title :
Sliding mode control and simulation of a hybrid Fuel-Cell Ultracapacitor power system
Author :
Azib, T. ; Talj, R. ; Bethoux, O. ; Marchand, C.
Author_Institution :
Lab. de Genie Electr. de Paris (LGEP), Univ. Paris Sud VI, Gif-sur-Yvette, France
fYear :
2010
fDate :
4-7 July 2010
Firstpage :
3425
Lastpage :
3430
Abstract :
This paper deals with a robust control strategy for modern distributed generation systems made up of hybrid PEM (proton exchange membrane) Fuel Cell (FC) and Ultracapacitors (UCs) power system. Particularly, for future fuel cell a vehicle application is presented. Given the constraint of the FC dynamics and the complexity of the energy management, a second order sliding mode control (SMC) strategy is designed to improve the robustness and the performance of the system. This control strategy, based on frequency decomposition of the load specifications, uses a cascaded closed loop control. It takes into account the slow dynamics of FC and the state of charge (SOC) of the UCs. FC output power is determined according to the low frequency (LF) load requirement and the UC SOC. UCs value is determined according to the high frequency (HF) load requirement. Therefore, two voltage control loops are designed. The DC bus voltage is regulated by the UCs source using a classical proportional integrator (PI) controller. The UCs SOC voltage is regulated by the FC source using a sliding mode (SM) controller, which improves the global performance of the controlled system. An analysis of the simulation results is conducted using Matlab/Simulink software in order to verify the effectiveness of the proposed control strategy. It confirms that the developed model and its control strategy exhibit excellent performance.
Keywords :
closed loop systems; distributed power generation; fuel cell power plants; fuel cell vehicles; power distribution control; proton exchange membrane fuel cells; robust control; supercapacitors; three-term control; variable structure systems; voltage control; PI controller; cascaded closed loop control; distributed generation systems; fuel cell vehicle application; hybrid PEM fuel cell power system; hybrid fuel cell ultracapacitor power system; proportional integrator controller; robust control; sliding mode control; voltage control; Energy management; Fuel cells; Hybrid power systems; Mathematical model; Supercapacitors; System-on-a-chip; Voltage control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Electronics (ISIE), 2010 IEEE International Symposium on
Conference_Location :
Bari
Print_ISBN :
978-1-4244-6390-9
Type :
conf
DOI :
10.1109/ISIE.2010.5636361
Filename :
5636361
Link To Document :
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