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Experimental and numerical study on a novel hybrid battery thermal management system integrated forced-air convection and phase change material

机译:结合强制对流和相变材料的新型混合动力电池热管理系统的实验和数值研究

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摘要

A novel hybrid battery thermal management system, combining air-forced convection with phase change material, is proposed. The effectiveness of the system is proved experimentally. The maximum temperature difference and the maximum temperature are controlled within the optimum range in the proposed thermal management system even though the dynamic charge/discharge current rate is 4 C rate. Meanwhile, the thermal performance is also compared under the passive and active strategy. The result shows that the thermal performance under the active mode is obviously superior to that under the passive mode. Comparing with the passive mode, the maximum temperature difference and the maximum temperature in the active mode are reduced 1.2 degrees C and 16 degrees C under 3 C rate, respectively. Moreover, the mathematical model, based on the three dimension heat transfer model coupled with the electrochemical model, is carried out and then validated with experimental data. Taking advantage of the mathematical model, the space of designed structures is further optimized.
机译:提出了一种将空气对流与相变材料相结合的新型混合动力电池热管理系统。实验证明了该系统的有效性。即使动态充电/放电电流率为4 C,在建议的热管理系统中,最大温度差和最大温度也控制在最佳范围内。同时,还比较了被动和主动策略下的热性能。结果表明,主动模式下的热性能明显优于被动模式下的热性能。与被动模式相比,主动模式下的最大温度差和最大温度在3 C速率下分别降低了1.2摄氏度和16摄氏度。此外,建立了基于三维传热模型和电化学模型的数学模型,并用实验数据进行了验证。利用数学模型,可以进一步优化设计结构的空间。

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