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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Passive cooling of Li-Ion cells with direct-metal-laser-sintered aluminium heat exchangers filled with phase change materials
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Passive cooling of Li-Ion cells with direct-metal-laser-sintered aluminium heat exchangers filled with phase change materials

机译:用直接金属激光烧结铝热交换器的锂离子电池被动冷却,填充相变材料

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摘要

Operating Li-Ion cells at adverse temperatures can lead to performance decrease and faster ageing effect. A thermal management system (TMS) designed to guarantee the cells isothermal condition is therefore necessary. Phase Change Materials (PCM) can form part of an efficient TMS based on passive cooling. However, when Li-Ion cells are exposed to extreme electrical regimes, PCMs cannot recover all of the latent heat due to their low thermal conductivity. This study experimentally investigates the isothermal performance of PCMs integrated with Direct-Metal-Laser-Sintered (DMLS) aluminium heat exchangers (HEX) as a passive TMS. The DMLS HEXs are employed to enhance the equivalent thermal conductivity of the TMS and thermally connect the Li-Ion cell to the PCM. The TMS performance is evaluated in terms of cell average surface temperature and temperature uniformity. Single and consecutive cycles at different discharge rates are imposed to simulate intermittent and constant loads. To assess the TMS sensitivity to the thermal boundary conditions, the HEX is either insulated or surrounded by the ambient air. Under single discharge cycles, the cell temperature rise and temperature disuniformity decrease using the PCM HEX in both thermal boundary conditions compared to relying on air natural convection. Under consecutive cycles, the temperature rise is minimised when the PCM HEX is not insulated. These results show that PCMs show great potential as a passive TMS for a variety of Li-Ion cells' operating conditions. However, the optimisation of the PCM-TMS design is found to be case-dependent.
机译:在不利温度下操作锂离子电池可导致性能降低和更快的老化效果。因此,需要一种用于保证细胞等温条件的热管理系统(TMS)。相变材料(PCM)可以基于被动冷却的有效TMS的一部分。然而,当锂离子电池暴露于极端电气状态时,PCM不能由于其低导热率而恢复所有潜热。本研究通过直接金属激光烧结(DMLS)铝热交换器(HEX)为无源TMS,实验研究了与直接金属激光烧结(DMLS)铝热交换器(HEX)集成的PCM的等温性能。使用DMLS十六进制以增强TMS的等同导热率,并将锂离子电池热连接到PCM。根据细胞平均表面温度和温度均匀性评估TMS性能。施加不同放电率的单个和连续循环,以模拟间歇性和恒定的负载。为了评估对热边界条件的TMS敏感性,六角端由环境空气绝缘或包围。在单排循环下,与依赖于空气自然对流相比,使用热边界条件中的PCM Hex在热边界条件下,细胞温度升高和温度差异减少。在连续循环下,当PCM六角未绝缘时,温度升高被最小化。这些结果表明,PCMS作为各种锂离子电池的操作条件的无源TMS显示出很大的潜力。但是,发现PCM-TMS设计的优化是依赖的。

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