Title :
Hybrid Electric Vehicle Model Predictive Control Torque-Split Strategy Incorporating Engine Transient Characteristics
Author :
Yan, Fengjun ; Wang, Junmin ; Huang, Kaisheng
Author_Institution :
Dept. of Mech. & Aerosp. Eng., Ohio State Univ., Columbus, OH, USA
fDate :
7/1/2012 12:00:00 AM
Abstract :
This paper presents a model predictive control (MPC) torque-split strategy that incorporates diesel engine transient characteristics for parallel hybrid electric vehicle (HEV) powertrains. To improve HEV fuel efficiency, torque split between the diesel engine and the electric motor and the decision as to whether the engine should be on or off are important. For HEV applications where the engines experience frequent transient operations, including start-stop, the effect of the engine transient characteristics on the overall HEV powertrain fuel economy becomes more pronounced. In this paper, by incorporating an experimentally validated real-time-capable transient diesel-engine model into the MPC torque-split method, the engine transient characteristics can be well reflected on the HEV powertrain supervisory control decisions. Simulation studies based on an HEV model with actual system parameters and an experimentally validated diesel-engine model indicate that the proposed MPC supervisory strategy considering diesel engine transient characteristics possesses superior equivalent fuel efficiency while maintaining HEV driving performance.
Keywords :
diesel engines; fuel economy; hybrid electric vehicles; power transmission (mechanical); predictive control; torque control; HEV driving performance; HEV fuel efficiency; HEV model; HEV powertrain fuel economy; HEV powertrain supervisory control decisions; HEV powertrains; MPC supervisory strategy; MPC torque-split method; MPC torque-split strategy; diesel engine transient characteristics; electric motor; hybrid electric vehicle model; model predictive control; parallel hybrid electric vehicle; predictive control torque-split strategy; real-time-capable transient diesel-engine model; superior equivalent fuel efficiency; torque split; Batteries; Diesel engines; Fuels; Hybrid electric vehicles; Torque; Transient analysis; Hybrid electric vehicle (HEV); model predictive control (MPC); torque split;
Journal_Title :
Vehicular Technology, IEEE Transactions on
Conference_Location :
5/4/2012 12:00:00 AM
DOI :
10.1109/TVT.2012.2197767