Adaptive Integrated Thermal Management System for a Stable Driving Environment in Battery Electric Vehicles

Jaehyun Bae, D. Hyun, Jaeyoung Han
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Abstract

With an increase in global warming, battery electric vehicles (BEVs), which are environmentally friendly, have been rapidly commercialized to replace conventional vehicles with internal combustion engines. Unlike traditional internal combustion engine vehicles, the powertrain system of BEVs operates with high efficiency, resulting in lower heat generation. This poses a challenge for cabin heating under low-temperature conditions. Conversely, under high-temperature conditions, the operating temperature of a high-voltage battery (HVB) is lower than the ambient air temperature, which makes cooling through ambient air challenging. To overcome these challenges, in this study, we proposed an integrated thermal management system (ITMS) based on a heat pump system capable of stable thermal management under diverse climatic conditions. Furthermore, to assess the ability of the proposed ITMS to perform thermal management under various climatic conditions, we integrated a detailed powertrain system model incorporating BEV specifications and the proposed ITMS model based on the heat pump system. The ITMS model was evaluated under high-load-driving conditions, specifically the HWFET scenario, demonstrating its capability to perform stable thermal management not only under high-temperature conditions, such as at 36 °C, but also under low-temperature conditions, such as at −10 °C, through the designated thermal management modes.
为电池电动汽车提供稳定驾驶环境的自适应集成热管理系统
随着全球变暖的加剧,环保型电池电动汽车(BEV)已迅速商业化,以取代传统的内燃机汽车。与传统内燃机汽车不同,BEV 的动力总成系统运行效率高,发热量低。这给低温条件下的车厢加热带来了挑战。相反,在高温条件下,高压电池(HVB)的工作温度低于环境空气温度,这给通过环境空气降温带来了挑战。为了克服这些挑战,我们在本研究中提出了一种基于热泵系统的集成热管理系统(ITMS),该系统能够在不同气候条件下实现稳定的热管理。此外,为了评估所提出的 ITMS 在各种气候条件下执行热管理的能力,我们整合了一个包含 BEV 规格的详细动力总成系统模型和所提出的基于热泵系统的 ITMS 模型。在高负荷驱动条件下,特别是在 HWFET 情景下,对 ITMS 模型进行了评估,结果表明该模型不仅能够在 36 °C 等高温条件下执行稳定的热管理,而且还能在 -10 °C 等低温条件下通过指定的热管理模式执行稳定的热管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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