DocumentCode :
1364074
Title :
An Energy Management Controller to Optimally Trade Off Fuel Economy and Drivability for Hybrid Vehicles
Author :
Opila, Daniel F. ; Wang, Xiaoyong ; McGee, Ryan ; Gillespie, R. Brent ; Cook, Jeffrey A. ; Grizzle, Jessy W.
Author_Institution :
Dept. of Mechanical Engineering, University of Michigan,
Volume :
20
Issue :
6
fYear :
2012
Firstpage :
1490
Lastpage :
1505
Abstract :
Hybrid vehicle fuel economy performance is highly sensitive to the energy management strategy used to regulate power flow among the various energy sources and sinks. Optimal non-causal solutions are easy to determine if the drive cycle is known a priori. It is very challenging to design causal controllers that yield good fuel economy for a range of possible driver behavior. Additional challenges come in the form of constraints on powertrain activity, such as shifting and starting the engine, which are commonly called “drivability” metrics and can adversely affect fuel economy. In this paper, drivability restrictions are included in a shortest path stochastic dynamic programming (SP-SDP) formulation of the real-time energy management problem for a prototype vehicle, where the drive cycle is modeled as a stationary, finite-state Markov chain. When the SP-SDP controllers are evaluated with a high-fidelity vehicle simulator over standard government drive cycles, and compared to a baseline industrial controller, they are shown to improve fuel economy more than 11% for equivalent levels of drivability. In addition, the explicit tradeoff between fuel economy and drivability is quantified for the SP-SDP controllers.
Keywords :
Dynamic programming; Energy management; Fuel economy; Hybrid electric vehicles; Supervisory control; Dynamic programming; fuel economy; hybrid electric vehicle; powertrain control; supervisory control;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2011.2168820
Filename :
6062659
Link To Document :
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