A linear quadratic regulator control of a stand-alone PEM fuel cell power plant

PDF(656 KB)
PDF(656 KB)
Frontiers in Energy ›› 2014, Vol. 8 ›› Issue (1) : 62-72. DOI: 10.1007/s11708-013-0291-5
RESEARCH ARTICLE

A linear quadratic regulator control of a stand-alone PEM fuel cell power plant

作者信息 +

A linear quadratic regulator control of a stand-alone PEM fuel cell power plant

Author information +
History +

Abstract

This paper introduces a technique based on linear quadratic regulator (LQR) to control the output voltage at the load point versus load variation from a stand-alone proton exchange membrane (PEM) fuel cell power plant (FCPP) for a group housing use. The controller modifies the optimal gains ki by minimizing a cost function, and the phase angle of the AC output voltage to control the active and reactive power output from an FCPP to match the terminal load. The control actions are based on feedback signals from the terminal load, output voltage and fuel cell feedback current. The topology chosen for the simulation consists of a 45 kW proton exchange membrane fuel cell (PEMFC), boost type DC/DC converter, a three-phase DC/AC inverter followed by an LC filter. Simulation results show that the proposed control strategy operated at low commutation frequency (2 kHz) offers good performances versus load variations with low total harmonic distortions (THD) , which is very useful for high power applications.

Keywords

modeling of proton exchange membrane fuel cell (PEMFC) / controlling of PEMFC / linear quadratic regulator (LQR) / DC/DC converter / DC/AC inverter

引用本文

导出引用
. . Frontiers in Energy. 2014, 8(1): 62-72 https://doi.org/10.1007/s11708-013-0291-5

参考文献

[1]
Wang L, Husar A, Zhou T, Liu H. A parametric study of PEM fuel cell performances. International Journal of Hydrogen Energy, 2003, 28(11): 1263-1272
CrossRef ADS Google scholar
[2]
Yalcinoz T, Alam M S. Improved dynamic performance of hybrid PEM fuel cells and ultracapacitors for portable applications. International Journal of Hydrogen Energy, 2008, 33(7): 1932-1940
CrossRef ADS Google scholar
[3]
Farooque M, Maru H C. Fuel cells—the clean and efficient power generators. Proceedings of the IEEE, 2001, 89(12): 1819-1829
CrossRef ADS Google scholar
[4]
Ellis M W, von Spakovsky M R, Nelson D J. Fuel cell systems: efficient, flexible energy conversion for the 21st century. Proceedings of the IEEE, 2001, 89(12): 1808-1818
CrossRef ADS Google scholar
[5]
Hashem Nehrir M, Wang C, Shaw S R. Fuel cells: promising devices for distributed generation. IEEE Power & Energy Magazine, 2006, 4(1): 47-53
CrossRef ADS Google scholar
[6]
Larmine J E, Dicks A. Fuel Cell Systems Explained. Chichester, England: John Wiley and Sons, 2000
[7]
EG&G Technical Services, Inc.Fuel Cell Hand Book. 7th ed. U.S. Dept. Of Energy, Office of Fossil Fuel, National Energy Technology Laboratory, West Virginia, 2000
[8]
El-Sharkh M Y, Rahman A, Alam M S, Byrne P C, Sakla A A, Thomas T. Analysis of active and reactive power control of a stand-alone PEM fuel cell power plant. IEEE Transactions on Power Systems, 2004, 19(4): 2022-2028
CrossRef ADS Google scholar
[9]
Tanrioven M, Alam M S. Modeling, control, and power quality evaluation of PEM fuel cell-based power supply system for residential use. IEEE Transactions on Industry Applications, 2006, 42(6): 1582-1589
CrossRef ADS Google scholar
[10]
El-Sharkh M Y, Rahman A, Alam M S. Neural networks-based control of active and reactive power of a stand-alone PEM fuel cell power plant. Journal of Power Sources, 2004, 135(1-2): 88-94
CrossRef ADS Google scholar
[11]
Padulles J, Ault G W, McDonald J R. An integrated SOFC plant dynamic model for power systems simulation. Journal of Power Sources, 2000, 86(1-2): 495-500
CrossRef ADS Google scholar
[12]
El-Sharkh M Y, Rahman A, Alam M S, Sakla A A, Byrne P C, Thomas T. Analysis of active and reactive power control of a stand-alone PEM fuel cell power plant. IEEE Transactions on Power Systems, 2004, 19(4): 2022-2028
CrossRef ADS Google scholar
[13]
Hamelin J, Agbossou K, Laperriere A, Laurencelle F, Bose T K. Dynamic behavior of a PEM fuel cell stack for stationary application. International Journal of Hydrogen Energy, 2001, 26(6): 625-629
CrossRef ADS Google scholar
[14]
Arsov G L. Improved parametric PSpice model of a PEM fuel cell. In: 11th International Conference on optimization of Electrical and Electronics Equipment, Brasov, Romania, 2008, 203-208
[15]
Cheng K W E, Sutanto D, Ho Y L, Law K K. Exploring the power conditioning system for fuel cell. In: 32nd IEEE Annual Power Electronics Specialists Conference. Vancouver, Canada, 2001, 2197-2202
[16]
Andersen G K, Klumpner C, Kjaer S B, Blaabjerg F. A new green power inverter for fuel cells. In: IEEE 33rd Annual Power Electronics Specialists Conference. Queensland, Australia, 2002, 727-733
[17]
Mohan N, Undeland T M, Robbins W P. Power Electronics Converters, Applications and Design. 3rd ed. Jon Wiley & Sons, 2001
[18]
Boualaga R, Amar B, Ammar M, Loron L. Parameters and states estimation with linear quadratic regulator applied to uninterruptible power supplies (UPS). In: IEEE 32 th Annual IEEE Conference on Industrial Electronics. Paris, France, 2006, 2055-2060
[19]
Ogata K. Discrete-Time Control Systems. Prentice-Hall, 1987

版权

2014 Higher Education Press and Springer-Verlag Berlin Heidelberg
PDF(656 KB)

Accesses

Citation

Detail

段落导航
相关文章

/