A Dynamic Simulation Framework for the Analysis of Battery Electric Vehicle Thermal Management Systems

Tyler J. Shelly, J. Weibel, D. Ziviani, E. Groll
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引用次数: 7

Abstract

As vehicle electrification is expanding in response to more stringent emissions standards and shifting consumer preferences, extending the driving range remains critical to broadening the adoption of battery electric vehicles (BEV). This challenge can be addressed in part through more efficient operation of the thermal management system in BEVs, which has a significant influence on range and performance, especially under extreme weather conditions. This study develops a simulation framework for the analysis of a BEV thermal management systems under long-range test procedures defined by the Multi-Cycle Test (MCT). A baseline thermal management system configuration is defined to reflect those typically found in long-range BEVs, so as to provide insight into the design and performance of current systems. Parametric studies are conducted across a range of ambient conditions from 0 °C to 40 °C and drive cycles including urban/city (UDDS), highway (HFEDS), and constant speed cycles. Operating temperature setpoints for the cabin, battery, electronics, and other components are met using the standard system configuration, albeit with significant deleterious impacts on vehicle range and cycle control. At low ambient temperatures, a maximum 30% decrease in driving range is predicted. Across the parametric values investigated, the choice of cabin setpoint temperature affects the driving range on the order of ~10% across heating and cooling cases. The transient drive cycle response for representative cooling cases is presented and reveals oscillations in system behavior about the chosen setpoints; these oscillations are a direct result of the secondary loop liquid cooling architecture. As a result of the present study, perspectives on alternative system configurations that offer battery thermal management and cabin comfort as well as the integration of waste heat recovery are outlined as future work.
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纯电动汽车热管理系统分析的动态仿真框架
随着更严格的排放标准和消费者偏好的转变,汽车电气化正在扩大,延长行驶里程对于扩大纯电动汽车(BEV)的采用仍然至关重要。这一挑战可以通过更有效地运行纯电动汽车的热管理系统来解决,热管理系统对行驶里程和性能有重大影响,特别是在极端天气条件下。本研究开发了一个模拟框架,用于分析由多循环测试(MCT)定义的远程测试程序下的BEV热管理系统。基线热管理系统配置的定义是为了反映远程纯电动汽车的典型配置,从而提供对当前系统设计和性能的深入了解。参数研究是在0°C到40°C的环境条件下进行的,驾驶周期包括城市/城市(UDDS)、高速公路(HFEDS)和恒速循环。驾驶室、电池、电子设备和其他部件的工作温度设定值使用标准系统配置来满足,尽管这会对车辆的续航里程和循环控制产生重大的有害影响。在较低的环境温度下,预计行驶里程最多减少30%。在所调查的参数值中,客舱设定点温度的选择在加热和冷却情况下对行驶里程的影响约为10%。给出了典型冷却工况的瞬态驱动周期响应,揭示了所选设定值下系统行为的振荡;这些振荡是二次回路液体冷却结构的直接结果。根据目前的研究结果,对提供电池热管理和客舱舒适性以及废热回收集成的替代系统配置的观点被概述为未来的工作。
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