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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical analysis of temperature uniformity of a liquid cooling battery module composed of heat-conducting blocks with gradient contact surface angles
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Numerical analysis of temperature uniformity of a liquid cooling battery module composed of heat-conducting blocks with gradient contact surface angles

机译:液体冷却电池模块温度均匀性的数值分析,具有梯度接触表面角度的热传导块组成

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Battery thermal management has an important significance for electronic vehicles to maintain a suitable temperature range and reduce local temperature differences. In this study, a novel liquid cooling battery thermal management system (BTMS) that uses a straight microchannel flat tube and heat-conducting blocks with gradient contact surface angles is proposed to improve the temperature uniformity of cylindrical lithium-ion battery module. A three-dimensional transient heat transfer model is conducted to investigate the thermal performance of the proposed battery module with 48 cells arranged on both sides of a straight microchannel flat tube. The effects of contact surface angle (alpha(i)), gradient angle increment (Delta alpha) and inlet velocity of the fluid medium on the cooling performance are discussed. The results indicated that the module with a gradient contact surface angle, which implies gradually increasing the heat transfer area, further improved the temperature uniformity of the battery module compared to that with an unchanged alpha(i). In addition, the increase of the inlet velocity does have a positive effect on both the reduction of maximum temperatures and enhancement of uniform temperature distribution. When Delta alpha is 15 degrees and the inlet velocity of the fluid medium is 0.015 m/s, the temperature difference (Delta T) of the battery module can reach 2.58 degrees C at the end of discharge. In addition, the preheating performance of the battery module at subzero temperature is also discussed. The results show that the temperature uniformity increase with the increase of the gradient angle, thus when Delta alpha is 15 degrees, the temperature difference of the battery module can be controlled to 8.05 degrees C.
机译:电池热管理对电子车辆保持合适的温度范围并降低局部温度差异具有重要意义。在该研究中,提出了一种新的液体冷却电池热管理系统(BTMS),其使用直筒通道扁平管和具有梯度接触表面角度的导热块,以提高圆柱形锂离子电池模块的温度均匀性。进行三维瞬态传热模型以研究所提出的电池模块的热性能,其中48个单元布置在直筒通道扁平管的两侧。讨论了接触表面角度(α(i)),梯度角度增量(Delta alpha)和流体介质对冷却性能的速度。结果表明,具有梯度接触表面角度的模块,其意味着逐渐增加传热面积,与具有不变的α(i)相比,进一步提高了电池模块的温度均匀性。此外,入口速度的增加确实对均匀温度的降低和均匀温度分布的增强具有积极影响。当Delta alpha为15度并且流体介质的入口速度为0.015 m / s时,电池模块的温度差(Δt)在放电结束时可以达到2.58℃。此外,还讨论了在亚单温度下的电池模块的预热性能。结果表明,随着梯度角度的增加,温度均匀性增加,因此当Delta alpha为15度时,电池模块的温差可以控制在8.05℃。

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