Thermoelectric Heating and Cooling System With Integrated Thermal Energy Storage (Thermal Battery) for Electric Vehicles

Annika Hacker, R. Gorthala, Maria-Isabel Carnasciali
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引用次数: 3

Abstract

Electric vehicles (EVs) are receiving more attention these days because they are environmentally friendly (no emissions) and are much quieter than internal combustion engine vehicles with rapidly decreasing prices. One of the serious limitations of EVs is the limited driving range. When conventional heating and air conditioning systems are used in winter and summer, the driving range is reduced further because they consume a lot of electric energy stored in the batteries. A thermoelectric cooling system integrated with thermal energy storage has been identified as an attractive alternative to traditional air conditioning in electric vehicles. The main goal of such a system is to minimize the amount of electricity that is drawn for air-conditioning from the electric battery of the vehicle, thus eliminating further reduction in driving range. Not only is the alternative more light weight than the conventional vapor compression based air-conditioning system, it also reduces the amount of electricity drawn from the battery. The proposed system is comprised of thermal energy storage (TES) employing phase change materials (PCMs), thermoelectric electric modules, and a fan. The TES, also referred to as a thermal battery here, can be charged before at home or at a charging station before driving like the electric battery, and is discharged when used in driving. This study involved the design and development of a TES for EVs employing computational fluid dynamics and heat transfer analyses. The model includes all the key components such as thermoelectric (Peltier) modules, heat sinks and the PCM. Various simulations for thermal battery charging and discharging have been conducted to demonstrate the feasibility of incorporating TES coupled with thermoelectric modules.
电动汽车集成蓄热(热电池)的热电加热和冷却系统
最近,电动汽车(ev)因其环保(无排放)、比价格迅速下降的内燃机汽车更安静而备受关注。电动汽车的一个严重限制是行驶里程有限。当传统的供暖和空调系统在冬季和夏季使用时,行驶里程进一步减少,因为它们消耗了大量储存在电池中的电能。集成了热能储存的热电冷却系统已被确定为一种有吸引力的替代传统的电动汽车空调。这种系统的主要目标是尽量减少车辆电池用于空调的电量,从而避免进一步减少行驶里程。这种替代方案不仅比传统的蒸汽压缩空调系统更轻,而且还减少了从电池中消耗的电量。该系统由采用相变材料(PCMs)的热能存储(TES)、热电模块和风扇组成。TES在这里也被称为热电池,可以像电池一样在家里或开车前在充电站充电,在开车时使用时放电。本研究涉及使用计算流体动力学和传热分析设计和开发电动汽车TES。该模型包括所有关键部件,如热电(Peltier)模块,散热器和PCM。对热电池充放电进行了各种模拟,以证明将TES与热电模块结合在一起的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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