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Design Optimization of Thermal Management System for Electric VehicleUtilizing CFD Analysis, DFMEA and CES

机译:电动机型CFD分析,DFMEA和CES的热管理系统设计优化

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Thermal management design for electric vehicles (EV) is very important in order to manage the thermal dissipated by operating components. This research aims at performing design optimization of a thermal management system for battery modules, controller and electric motor in EV. A combination of passive and active cooling systems is proposed where air cooled is used in battery modules, water cooling for controller and water jacket for electric motor. Design Failure Mode and Effect Analysis (DFMEA) method is deployed to identify the potential failure modes and causes so that improvements can be made for battery modules, controller and electric motor. The design for all of the components and the thermal management system were done with CATIA V5. The material selections process for the designs was based on the analysis using Cambridge Engineering Selector (CES EduPack). Final design was utilizing water cooled for electric motor and controller while using air cooled for battery modules. It was found that best material for electric motor and controller water jacket is with aluminum alloy 6060 while air cooled ducting using High Density Poly Ethylene (FIDPE) and battery housing using Polycyclohexylenedimethylene Terephthalate (PCT). The thermal management system for battery modules is simulated using ANSYS CFD software. Results from simulation were validated with manual calculation and have shown good agreement based on the data collected at various vehicle speeds.
机译:电动车辆的热管理设计(EV)非常重要,以便通过操作部件管理热量耗散。本研究旨在对EV中的电池模块,控制器和电动机进行热管理系统进行设计优化。提出了一种被动和主动冷却系统的组合,其中空气冷却用于电池模块,电动机的控制器和水套的水冷却。设计故障模式和效果分析(DFMEA)方法部署以识别电位故障模式和原因,从而可以为电池模块,控制器和电动机进行改进。所有组件和热管理系统的设计都是用CATIA V5完成的。设计的材料选择过程基于使用剑桥工程选择器(CES Edupack)的分析。最终设计利用电动机和控制器冷却的水,同时使用空气冷却为电池模块。结果发现,电动机和控制器水套的最佳材料配有铝合金6060,而使用高密度聚乙烯(FIDPE)和电池壳体的空气冷却管道,使用多环己二甲基对苯二甲酸酯(PCT)。使用ANSYS CFD软件模拟电池模块的热管理系统。模拟结果验证了手动计算,并根据以各种车辆速度收集的数据显示良好的一致性。

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