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Investigation of the Thermal Performance of a Wavy Channel Liquid Cooling System for Electric Vehicle Batteries using Computational Fluid Dynamics

机译:基于计算流体力学的电动汽车波浪通道液体冷却系统热性能研究

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摘要

Given the looming threat of climate change, to which the carbon emissions of the transport sector are a major contributor, electric vehicles have risen as a low-emission, high-performance alternative to traditional vehicles. However, electric vehicles suffer from low market penetration, largely due to short battery life and thus high battery replacement expenditure. High battery temperatures due to heat generation during use are a leading cause of their short lifespan. Battery cooling systems are therefore critical components of electric vehicles. This study investigates a wavy channel liquid cooling system using computational fluid dynamics. Its thermal performance is determined at different discharging rates, and the effects of the number of batteries per module and coolant inlet temperature are determined. The internal temperature gradient of the battery is also investigated. The study finds that an increase in discharge rate leads to an increase both in temperature and maximum temperature difference. Increasing the number of batteries per module is not found to have any significant effect. The coolant temperature is found to affect the battery temperatures, but not the maximum temperature difference. However, in spite of the satisfactory average temperatures attained in some cases, the internal temperature gradient and maximum temperature of the battery is found to be excessively high. Therefore, modifications to the geometry and the exploration of supplementary cooling media are recommended.
机译:鉴于迫在眉睫的气候变化威胁,交通运输部门的碳排放是其中的主要贡献者,电动汽车已成为传统汽车的低排放,高性能替代品。然而,电动汽车的市场渗透率低,主要是由于电池寿命短,因此更换电池支出高。在使用过程中由于发热而导致的高温电池是其使用寿命短的主要原因。因此,电池冷却系统是电动汽车的关键组件。本研究使用计算流体动力学研究波浪形通道液体冷却系统。在不同的放电速率下确定其热性能,并确定每个模块的电池数量和冷却液入口温度的影响。还研究了电池的内部温度梯度。研究发现,放电速率的增加会导致温度和最大温差的增加。没有发现增加每个模块的电池数量会产生明显的影响。发现冷却液温度会影响电池温度,但不会影响最大温差。然而,尽管在某些情况下获得了令人满意的平均温度,但是发现电池的内部温度梯度和最高温度过高。因此,建议修改几何形状并探索补充冷却介质。

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