Insulating sandwich housing structures for the thermal management of battery packs

F. Weidmann
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引用次数: 1

Abstract

Modern electric vehicle battery thermal management systems provide sophisticated means to control the temperature of its battery cells within the optimal temperature range. This is crucial as Lithium-Ion battery cells result in reduced lifespans if exposed to temperatures above 50°C. On the other hand, temperatures below 10°C lead to a reduced capacity and with respect to electric vehicles in reduced driving ranges. The OPTEMUS project therefore develops a thermal insulating battery module housing that thermally disconnects the battery cells from the ambient temperature, providing a more stable temperature profile and more efficient thermal management of the battery. Different housing materials and designs have been developed to provide thermal insulating properties while also withstanding mechanical forces. Based on a concept module design of Fraunhofer LBF, two different fiber reinforced plastic sandwich structures have been manufactured with insulating foam cores and analyzed with respect to their cellular structures and resulting thermal properties. The cellular structure was detected three-dimensionally via computer tomography analysis. The manufactured sub-module housings were tested in a climatic chamber at −10°C and compared to a benchmark housing design based on aluminum as construction material. Results showed that the cell temperatures decrease 250 to 400 % slower using foam core sandwich structures as housing material compared to an aluminum housing while providing large scale manufacturability via the injection molding process.
用于电池组热管理的绝缘夹层外壳结构
现代电动汽车电池热管理系统提供了复杂的手段来控制其电池单元的温度在最佳温度范围内。这是至关重要的,因为如果暴露在50°C以上的温度下,锂离子电池的寿命会缩短。另一方面,低于10°C的温度会导致容量减少,电动汽车的行驶里程也会减少。因此,OPTEMUS项目开发了一种隔热电池模块外壳,可以将电池与环境温度热隔离,从而提供更稳定的温度分布和更有效的电池热管理。不同的住房材料和设计已经发展到提供隔热性能,同时也承受机械力。基于Fraunhofer LBF的概念模块设计,用绝缘泡沫芯制造了两种不同的纤维增强塑料夹层结构,并对其细胞结构和热性能进行了分析。通过计算机断层扫描分析对细胞结构进行三维检测。制造的子模块外壳在- 10°C的气候室中进行了测试,并与基于铝作为建筑材料的基准外壳设计进行了比较。结果表明,与铝外壳相比,使用泡沫芯夹层结构作为外壳材料的电池温度下降速度要慢250 - 400%,同时通过注射成型工艺提供了大规模的可制造性。
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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