Enhanced Heat Transfer in Thermoelectric Generator Heat Exchanger for Sustainable Cold Chain Logistics: Entropy and Exergy Analysis

Y. Fu, Yanzhe Li
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Abstract

This study investigates the application of thermoelectric power generation devices in conjunction with cold chain logistics transport vehicles, focusing on their efficiency and performance. Our experimental results highlight the impact of thermoelectric module characteristics, such as thermal conductivity and the filling thickness of copper foam, on the energy utilization efficiency of the system. The specific experimental setup involved a simulated logistics cold chain transport vehicle exhaust waste heat recovery thermoelectric power generation system, consisting of a high-temperature exhaust heat exchanger channel and two side cooling water tanks. Thermoelectric modules (TEMs) were installed between the heat exchanger and the water tanks to use the temperature difference and convert heat energy into electrical energy. The analysis demonstrates that using high-performance thermoelectric modules with a lower thermal conductivity results in better utilization of the temperature difference for power generation. Additionally, the insertion of porous metal copper foam within the heat exchanger channel enhances convective heat transfer, leading to an improved performance. Furthermore, the study examines the concepts of exergy and entropy generation, providing insights into the system energy conversion processes and efficiency. Overall, this research offers valuable insights for optimizing the design and operation of thermoelectric generators in cold chain logistics transport vehicles to enhance energy utilization and sustainability.
增强热电发生器热交换器的传热,实现可持续冷链物流:熵和放能分析
本研究调查了热电发电装置在冷链物流运输车辆中的应用,重点关注其效率和性能。我们的实验结果强调了热电模块特性(如热导率和泡沫铜填充厚度)对系统能源利用效率的影响。具体的实验装置包括一个模拟物流冷链运输车辆尾气余热回收热电发电系统,该系统由一个高温尾气热交换器通道和两个侧冷却水箱组成。热电模块(TEM)安装在热交换器和水箱之间,利用温差将热能转化为电能。分析表明,使用热导率较低的高性能热电模块可以更好地利用温差发电。此外,在热交换器通道内插入多孔金属铜泡沫可增强对流传热,从而提高性能。此外,研究还探讨了放能和熵生成的概念,为系统能量转换过程和效率提供了深入的见解。总之,这项研究为优化冷链物流运输车辆热电发电机的设计和运行,提高能源利用率和可持续性提供了宝贵的见解。
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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