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Thermodynamic studies and maximum power point tracking in thermoelectric generator-thermoelectric cooler combined system

机译:热电发电机-热电冷却器组合系统的热力学研究和最大功率点跟踪

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Thermoelectric generator (TEG) operated thermoelectric cooler (TEC) is a highly compatible combination for low-cooling power application. The conventional TEG-TEC combined systems have low operating efficiency and low cooling power because maximum power output from the TEG is not fully utilized. This paper proposes and analyses the combined system with maximum power point tracking technique (MPPT) to maximize the cooling power and overall efficiency. This paper also presents the effect of TEG, TEC source temperature and the effect of heat transfer area in the performance of the combined system. The thermodynamic models of the combined system are developed in MATLAB simulink environment with temperature dependent material properties and analysed for variable operating temperatures. It has been found that, in the irreversible thermodynamic model of the combined system with MPPT, when the hot and cold side of TEG and TEC are kept at a temperature difference of 150 K and 10K respectively, the power output of TEG increases from 20.49W to 43.92W, cooling power of TEC increases from 32.66 W to 46.51 W and the overall combined system efficiency increases from 2.606% to 4.375% respectively when compared with the irreversible combined system without MPPT. The characteristics improvements obtained by this practice in the combined system for the above mentioned operating conditions is also true for other range of operating temperatures. It is also been observed that the external irreversibilities decreases the cooling power and the overall system efficiency of the combined system by 36.49% and by 16.9% respectively. (C) 2015 Elsevier Ltd. All rights reserved.
机译:热电发电机(TEG)操作的热电冷却器(TEC)是用于低冷却功率应用的高度兼容的组合。常规的TEG-TEC组合系统具有较低的运行效率和较低的冷却功率,因为​​未充分利用TEG的最大功率输出。本文提出并分析了具有最大功率点跟踪技术(MPPT)的组合系统,以最大程度地提高冷却功率和整体效率。本文还介绍了TEG,TEC源温度和传热面积对组合系统性能的影响。在MATLAB simulink环境中开发了组合系统的热力学模型,该模型具有与温度相关的材料属性,并分析了可变的工作温度。已经发现,在具有MPPT的组合系统的不可逆热力学模型中,当TEG和TEC的热侧和冷侧分别保持在150 K和10K的温差时,TEG的功率输出从20.49W增加与不带MPPT的不可逆组合系统相比,TEC的冷却功率从32.66 W增加到43.92 W,达到46.51 W,组合系统的整体效率从2.606%增加到4.375%。对于上述操作条件,在组合系统中通过这种实践获得的特性改进对于其他范围的操作温度也同样适用。还观察到,外部不可逆性使组合系统的冷却功率和整体系统效率分别降低了36.49%和16.9%。 (C)2015 Elsevier Ltd.保留所有权利。

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