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Integrated energy management strategy of powertrain and cooling system for PHEV
Authors:Xing Xu  Tao Zhang  Shaohua Wang  Zhiguang Zhou
Institution:1. School of Automotive and Traffic Engineering, Jiangsu University, Zhenjiang, China;2. Automotive Engineering Research Institute, Jiangsu University, Zhenjiang, ChinaORCID Iconhttps://orcid.org/0000-0003-2119-9429;3. New Energy Development Department Powertrain Technology Center, Chery Automobile Company, Wuhu, China
Abstract:ABSTRACT

Energy management strategy (EMS) is crucial in improving the fuel economy of plug-in hybrid electric vehicle (PHEV). Existing studies on EMS mostly manage powertrain and cooling system separately which cannot get the minimum total energy consumption. This paper aims to propose a novel EMS for a new type of dual-motor planetary-coupled PHEV, which considers cooling power demand and effect of temperature on fuel economy. Temperature-modified engine model, lithium-ion battery model, two motors, and cooling system models are established. Firstly, the separated EMS (S-EMS) is designed which manages powertrain and cooling system separately. Sequentially, after the analysis of thermal characteristics of the powertrain and cooling system, the thermal-based EMS (T-EMS) is then proposed to manage two systems coordinately. In T-EMS, cooling power demand and the charging/discharging energy of motors are calculated as equivalent fuel consumption and integrated into the object function. Besides, a fuzzy controller is also established to deicide the fuel-electricity equivalent factor with consideration of the effect of temperature and state of charge on powertrain efficiency. Finally, the hardware-in-loop experiment is carried out to validate the real-time effect of EMS under the New European Driving Cycle. The result shows that cooling power demand and temperature can significantly affect the fuel economy of the vehicle. T-EMS shows better performance in fuel economy than S-EMS. The equivalent fuel consumption of the cooling system of T-EMS decreases by 27% compared with that of S-EMS. The total equivalent fuel consumption over the entire trip of PHEV using T-EMS is reduced by 9.7%.
Keywords:Plug-in hybrid electric vehicle  thermal-based energy management strategy  cooling consumption  temperature  efficiency
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