Analysis of reducing thermal resistance between the PCM and ambient air for improving the power generation characteristics of PCM-based thermoelectric power generators

K. Suemori, Yusuke Komazaki, Nobuko Fukuda
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Abstract

A power generator comprising a thermoelectric device (TED) and a phase change material (PCM) allows energy harvesting from ambient temperature variations, which exist ubiquitously; thus, such a device has received considerable attention as an energy harvester that can operate at any location. We developed a model for estimating the characteristics of a power generator in ambient air, whose temperature is forcibly changed between two temperature values, such as when an air conditioner is turned on and off. We calculated the influence of latent heat and thermal conductivity of the PCM on the characteristics of power generators with various thermal resistances between the TED/PCM interface and ambient air. Latent heat and thermal conductivity of the PCM affect the amount of heat energy (Q) transfer between the ambient air and PCM and the energy conversion efficiency (ηE), respectively, where the amount of electric energy is given by Q × ηE. The increase in Q caused by an increase in the latent heat of the PCM was almost independent of the thermal resistance between the TED/PCM interface and air. However, the increase in ηE caused by an increase in the thermal conductivity of the PCM decreased as the thermal resistance between the TED/PCM interface and air increased. These results indicate that the techniques to improve the power generation characteristics by increasing the thermal conductivity of PCM, which have been frequently investigated in recent years, are effective only when the thermal resistance between the TED/PCM interface and ambient air is small.
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分析如何降低 PCM 与环境空气之间的热阻,以改善基于 PCM 的热电发电机的发电特性
由热电装置(TED)和相变材料(PCM)组成的发电装置可以从环境温度变化中收集能量,而环境温度变化无处不在;因此,这种装置作为一种可以在任何地点运行的能量收集器受到了广泛关注。我们开发了一个模型,用于估算环境空气中发电装置的特性,环境空气的温度会在两个温度值之间强行变化,例如空调开启和关闭时。我们计算了 PCM 的潜热和热传导率对 TED/PCM 界面与环境空气之间具有不同热阻的发电机特性的影响。PCM 的潜热和热导率分别影响环境空气和 PCM 之间的热能传递量 (Q) 和能量转换效率 (ηE),其中电能的传递量由 Q × ηE 给出。PCM 潜热增加引起的 Q 值增加几乎与 TED/PCM 界面和空气之间的热阻无关。然而,随着 TED/PCM 界面与空气之间热阻的增加,PCM 热导率增加引起的 ηE 增加也随之减少。这些结果表明,近年来经常研究的通过提高 PCM 的热导率来改善发电特性的技术,只有在 TED/PCM 界面与环境空气之间的热阻较小时才有效。
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