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Modeling and analysis of the influence of Thomson effect on micro-thermoelectric coolers considering interfacial and size effects

机译:考虑界面和尺寸效应的微热电冷却器对汤姆森效应影响的建模与分析

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摘要

Micro-thermoelectric coolers have great potential in the thermal management of highly integrated electronic devices, especially the local cooling. This paper develops a numerical model to explore the influence of Thomson effect on the cooling performance of micro-thermoelectric coolers, capturing interfacial and size effects. The presented model is validated with a commercial micro-thermoelectric cooler. And, analyses are carried out with respect to micro-thermoelectric coolers of different sizes, under different temperatures and cooling loads. The results indicate that a positive Thomson coefficient can improve the cooling capacity, and higher current and thickness correspond to greater impact of Thomson effect. In addition, the decrease of minimum cooling temperature caused by Thomson effect is even more obvious under higher cooling load. The results also show that the influence of Thomson effect on the maximum cooling temperature difference gradually becomes weaker as the cross area to thickness ratio increases. For heat fluxes of 100 W/cm(2) and 200 W/cm(2), the minimum cooling temperature can be respectively reduced by 2.1 K and 4.1 K, considering Thomson effect. In addition, for the thickness of 10 mu m, the increment of maximum cooling temperature difference gradually declines from 2.2 K to 1.1K as the cross area to thickness ratio increases. (C) 2020 Elsevier Ltd. All rights reserved.
机译:微电器冷却器在高度集成的电子设备的热管理中具有很大的潜力,尤其是局部冷却。本文开发了一个数字模型,探讨了汤姆森影响对微电器冷却器的冷却性能的影响,捕获界面和尺寸效应。呈现的模型用商用微电冷却器验证。并且,分析是关于不同尺寸的微电器冷却器,在不同的温度和冷却载荷下进行。结果表明,正汤逊系数可以提高冷却能力,更高的电流和厚度对应于汤姆森效应的更大影响。此外,在较高的冷却负荷下,由汤姆森效应引起的最小冷却温度的降低甚至更明显。结果还表明,随着横向面积与厚度比的增加,Thomson效应对最大冷却温度差的影响逐渐变得越来越弱。对于100W / cm(2)和200w / cm(2)的热通量,考虑到汤姆森效应,最小冷却温度可分别减少2.1 k和4.1 k。另外,对于10μm的厚度,随着横向面积增加,最大冷却温度差的增量从2.2k到1.1k逐渐下降到1.1k。 (c)2020 elestvier有限公司保留所有权利。

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