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Co-optimized design of microchannel heat exchangers and thermoelectric generators

机译:微通道换热器和热电发生器的共同优化设计

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摘要

Designs of heat exchangers have mostly been disconnected to the performance of thermoelectric generator (TEG) systems. The development work, mostly focused on thermoelectric materials, required a significant amount of engineering parametric analysis. In this work, a micro plate-fin heat exchanger applied to a TEG is investigated and optimized to maximize the output power and the cost performance of generic TEG systems. The cost per performance is counted by a measure of price per power output ($/W). The channel width, channel height, fin thickness of heat exchanger, and fill factor of TEG are theoretically optimized for a wide range of pumping power. In conjunction with effective numeric tests, the model discusses the optimum size of the system components' dimensions at two area sizes of the substrate plate of heat exchanger. Results show that at every pumping power, there are particular values of channel width and fin thickness that provide maximum output power in the TEG. In addition, for producing maximum cost performance at lower pumping power, larger channel width and channel height and smaller fill factor are required. The results also illustrate that there is a unique pumping power for fixed thickness of fin and ceramic substrates that provides minimum cost per performance for the TEG systems. The theoretical results of the micro heat exchanger are in a good agreement with the experimental investigation data.
机译:换热器的设计大部分与热电发生器(TEG)系统的性能无关。开发工作主要集中在热电材料上,需要大量的工程参数分析。在这项工作中,对应用于TEG的微板翅式热交换器进行了研究和优化,以使通用TEG系统的输出功率和成本性能最大化。每项性能的成本通过每单位功率输出的价格($ / W)来计算。理论上,通道宽度,通道高度,热交换器的翅片厚度和TEG的填充因数针对各种泵送功率进行了优化。结合有效的数值测试,该模型讨论了换热器基板两个面积尺寸下系统组件尺寸的最佳尺寸。结果表明,在每种泵浦功率下,通道宽度和鳍片厚度都有特定的值,可在TEG中提供最大的输出功率。另外,为了在较低的泵浦功率下产生最大的成本性能,需要较大的通道宽度和通道高度以及较小的填充系数。结果还表明,对于固定厚度的鳍片和陶瓷基板,具有独特的泵浦功率,可为TEG系统的每项性能提供最低的成本。微型换热器的理论结果与实验研究数据吻合良好。

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