DocumentCode :
2739841
Title :
Dynamic control of fuel cell air supply system with power management
Author :
Karunarathne, Lakmal ; Economou, John T. ; Knowles, Kevin
Author_Institution :
Dept. of Eng. & Appl. Sci., Cranfield Univ., Swindon, UK
fYear :
2011
fDate :
20-23 June 2011
Firstpage :
856
Lastpage :
861
Abstract :
A power management system is introduced to control the current flow between a Polymer Exchange Membrane fuel cell and a Li-Ion battery. Depending on the load current and the battery state of charge, the power management system decides the amount of the load power shared with each power source. The hybrid system operating power is divided into three categories which are named as Start-up state, Charging state and High power state based on the propulsion motor current. A unidirectional DC/DC power converter boosts the fuel cell system voltage and operates in voltage control mode or current control mode depending on the operating power state. Similarly, a bidirectional power converter is developed to boost the battery voltage to the DC bus voltage during the high power state. The bidirectional converter operates in buck mode during the charging power state. Based on the fuel cell current decided by the power management system, the fuel cell air supply system controller varies the inlet air pressure and flow rate to prevent the fuel cell oxygen concentration loss. The referenced model is used to obtain the optimum air pressure which produces maximum net power from the fuel cell system. Then, the air supply system is controlled to obtained the optimum pressure ratio and hence maximized the net power output. The fuel cell system power output with optimum compressure power is compared with the constant compressure power. The results shows that, the dynamic control of the air supply system with the power management decisions increase the fuel cell system net power output considerably.
Keywords :
DC-DC power convertors; electric current control; fuel cells; power system control; power system management; secondary cells; voltage control; bidirectional converter; buck mode; charging state; compressure power; fuel cell air supply system controller; fuel cell oxygen concentration loss; fuel cell system voltage; high power state; hybrid system operating power; lithium ion battery; load current; load current flow control; polymer exchange membrane fuel cell; power management system; power source; propulsion motor current; start-up state; unidirectional DC-DC power converter; voltage control mode; Batteries; Computer architecture; Current control; Fuel cells; Hybrid power systems; Propulsion; Voltage control; fuel cell air supply system; fuel cells; power converters; power management;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control & Automation (MED), 2011 19th Mediterranean Conference on
Conference_Location :
Corfu
Print_ISBN :
978-1-4577-0124-5
Type :
conf
DOI :
10.1109/MED.2011.5982975
Filename :
5982975
Link To Document :
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