DocumentCode :
2284250
Title :
Effect of advanced thermal management systems on hybrid electric drive units
Author :
Nessim, Waleed ; Zhang, Fujun ; Changlu, Zhao ; Zhenxia, Zhu
Author_Institution :
Laboratory of Vehicle Power-train System, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, China
fYear :
2012
fDate :
18-21 Sept. 2012
Firstpage :
1
Lastpage :
6
Abstract :
In recent years, a significant interest in hybrid electric power unit has arisen globally due to its reliability and efficiency. This paper will discuss the benefits of using advanced thermal management systems in hybrid electric drivetrain, and the different control strategies that can be used to enhance system performance. A detailed one dimensional (1D) simulation model for power split hybrid electric system was developed which consists of three cooling circuits. This model is characterized by a complete modularity and permits the simulation of any new design configuration to investigate the effect of advanced thermal management on system performance. Proportional Integration Derivative (PID) module was used to apply the control strategies. The system behavior has been optimized using Design of Experiment (DoE) method. The simulation results showed a superb fuel economy (4:11) % that solves the problems of high operating costs, also decreasing time of cold start by 50% and increasing the high temperature of the coolant up to 125°C. The motor and generator temperature controlled to the optimum temperature which operate them at the maximum efficiency. These results can be used to be the basis of the final system layout and thermal management strategy.
Keywords :
design of experiments; electric drives; fuel economy; thermal management (packaging); advanced thermal management; cooling circuits; design of experiment method; fuel economy; generator temperature; hybrid electric drive units; hybrid electric drivetrain; hybrid electric power unit; motor temperature; one dimensional simulation model; power split hybrid electric system; proportional integration derivative module; thermal management systems; Coolants; Generators; Heat engines; Hybrid power systems; Thermal management; energy management; fuel economy; hybrid drive; thermal management; warm up;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Strategic Technology (IFOST), 2012 7th International Forum on
Conference_Location :
Tomsk
Print_ISBN :
978-1-4673-1772-6
Type :
conf
DOI :
10.1109/IFOST.2012.6357678
Filename :
6357678
Link To Document :
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