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A novel thermal management structure using serpentine phase change material coupled with forced air convection for cylindrical battery modules

机译:一种新的热管理结构,使用蛇形相变材料与圆柱电池模块强制空气对流相结合

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摘要

The temperature control technology based on phase change material (PCM) demonstrates excellent performance in the field of battery thermal management. However, the compact and bulky structure of the traditional composite PCM (CPCM) module reduces the energy density of the battery pack greatly, and is unfavorable to the secondary heat dissipation. In this work, we develop a novel PCM cooling structure by substituting the common block-shaped CPCM (B-CPCM) module with serpentine CPCM (S-CPCM) plates. The S-CPCM plates with high shape stability provide a much larger surface area and many air flow channels in comparison to the B-CPCM module, thus endowing the module with outstanding secondary heat dissipation capability. For example, under the same fan power of forced air convection (5.2 W), the S-CPCM module delivers a much lower maximum temperature than the B-CPCM module (51.9 vs. 54.2 degrees C) during the repeated charge-discharge process. As highlighted here, on the basis of guaranteeing the cooling performance, the S-CPCM cooling structure also saves similar to 70% of the CPCM amount, and thereby the energy density of the battery module is increased by 13.8 Wh kg(-1).
机译:基于相变材料(PCM)的温度控制技术展示了电池热管理领域的出色性能。然而,传统复合PCM(CPCM)模块的紧凑和庞大结构大大降低了电池组的能量密度,并且对二次散热不利。在这项工作中,我们通过用蛇形CPCM(S-CPCM)板代替共同的块状CPCM(B-CPCM)模块来开发一种新型PCM冷却结构。具有高形状稳定性的S-CPCM板提供了更大的表面积和许多空气流量通道与B-CPCM模块相比,因此赋予了具有出色的二次散热能力的模块。例如,在强制空气对流(5.2W)的相同风扇功率下,S-CPCM模块在重复充电放电过程中提供比B-CPCM模块(51.9与54.2℃)的最高温度低得多。如这里突出显示的,在保证冷却性能的基础上,S-CPCM冷却结构也可以节省类似于CPCM量的70%,从而电池模块的能量密度增加13.8WHKG(-1)。

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