DocumentCode
3947
Title
Modeling and Nonlinear Control of a Fuel Cell/Supercapacitor Hybrid Energy Storage System for Electric Vehicles
Author
El Fadil, H. ; Giri, Fouad ; Guerrero, Josep M. ; Tahri, A.
Author_Institution
Lab. Genie des Syst., Ibn Tofail Univ., Kenitra, Morocco
Volume
63
Issue
7
fYear
2014
fDate
Sept. 2014
Firstpage
3011
Lastpage
3018
Abstract
This paper deals with the problem of controlling a hybrid energy storage system (HESS) for electric vehicles. The storage system consists of a fuel cell (FC), serving as the main power source, and a supercapacitor (SC), serving as an auxiliary power source. It also contains a power block for energy conversion consisting of a boost converter connected with the main source and a boost-buck converter connected with the auxiliary source. The converters share the same dc bus, which is connected to the traction motor through an inverter. These power converters must be controlled to meet the following requirements: 1) tight dc bus voltage regulation, 2) perfect tracking of the SC current to its reference, and 3) asymptotic stability of the closed-loop system. A nonlinear controller is developed, on the basis of the system nonlinear model, making use of Lyapunov stability design techniques. The latter accounts for the power converters´ large-signal dynamics and for the FC nonlinear characteristics. It is demonstrated using both a formal analysis and simulations that the developed controller meets all desired objectives.
Keywords
Lyapunov methods; fuel cell vehicles; hybrid electric vehicles; invertors; nonlinear control systems; power convertors; supercapacitors; traction; FC nonlinear characteristics; HESS; Lyapunov stability design techniques; SC current; asymptotic stability; auxiliary power source; boost-buck converter; closed-loop system; dc bus voltage regulation; electric vehicles; energy conversion; fuel cell; fuel cell-supercapacitor hybrid energy storage system; inverter; nonlinear controller; power block; power converter; traction motor; Control systems; Fuel cells; Mathematical model; Supercapacitors; Vehicles; Voltage control; DC??DC power converters; electric vehicle; fuel cell (FC); nonlinear control; supercapacitor (SC);
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/TVT.2014.2323181
Filename
6814912
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