DocumentCode :
237690
Title :
Improving the stability and fuel economy for Belt-Starter Generator Mild HEV at idle speed using model predict control
Author :
Feng-Chi Hsieh ; Yin-Dar Huang ; Yu-Wen Peng
Author_Institution :
Hua-Chuang Automobile Inf. Tech. Center, Taipei, Taiwan
fYear :
2014
fDate :
18-22 Aug. 2014
Firstpage :
916
Lastpage :
921
Abstract :
A multi-input single-output (MISO) controller using model predictive control is proposed for improving stability and fuel economy at idle speed for the Belt-Starter Generator (BSG) Mild Hybrid. Unlike the conventional algorithm which uses the electronic throttle control (ETC) and spark advance as actuators, ETC and torque of BSG are simultaneously employed as control inputs for maximum authority to maintain idle speed at desired value. The recursive least square technique is employed to identify the engine as a first-order MISO linear model. A nonlinear engine model established in Matlab/Simulink is used to evaluate the proposed and conventional algorithms. The proposed algorithm is also implemented on a V2 engine. Simulation results show that the proposed algorithm has less speed deviation than the conventional one under the presence of torque disturbances and model uncertainties. Since the spark timing can be kept at optimal condition, the fuel consumption of proposed algorithm is smaller than that of the conventional one.
Keywords :
actuators; angular velocity control; belts; electric generators; fuel economy; hybrid electric vehicles; internal combustion engines; least squares approximations; predictive control; stability; starting; BSG; ETC; MISO controller; Matlab-Simulink; V2 engine; actuators; belt-starter generator mild HEV; electronic throttle control; first-order MISO linear model; fuel consumption; fuel economy; hybrid electric vehicle; idle speed control; model predict control; model predictive control; model uncertainties; multiinput single-output controller; nonlinear engine model; recursive least square technique; spark advance; spark timing; speed deviation; stability; torque disturbances; Engines; Equations; Heuristic algorithms; Mathematical model; Sparks; Torque; Valves;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Automation Science and Engineering (CASE), 2014 IEEE International Conference on
Conference_Location :
Taipei
Type :
conf
DOI :
10.1109/CoASE.2014.6899435
Filename :
6899435
Link To Document :
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