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基于石墨烯气凝胶负载的形状稳定相变材料的热电能量收集分析

Analysis of Thermoelectric Energy Harvesting with Graphene Aerogel-Supported Form-Stable Phase Change Materials.

作者信息

Yu Chengbin, Song Young Seok

机构信息

Department of Materials Science and Engineering, Research Institute of Advanced Materials (RIAM), Seoul National University, Seoul 08826, Korea.

Department of Fiber Convergence Materials Engineering, Dankook University, Yongin-si 16890, Gyeonggi-do, Korea.

出版信息

Nanomaterials (Basel). 2021 Aug 26;11(9):2192. doi: 10.3390/nano11092192.

Abstract

Graphene aerogel-supported phase change material (PCM) composites sustain the initial solid state without any leakage problem when they are melted. The high portion of pure PCM in the composite can absorb or release a relatively large amount of heat during heating and cooling. In this study, these form-stable PCM composites were used to construct a thermoelectric power generator for collecting electrical energy under the external temperature change. The Seebeck effect and the temperature difference between the two sides of the thermal device were applied for thermoelectric energy harvesting. Two different PCM composites were used to collect the thermoelectric energy harvesting due to the different phase transition field in the heating and cooling processes. The graphene nano-platelet (GNP) filler was embedded to increase the thermal conductivities of PCM composites. Maximum output current was investigated by utilizing these two PCM composites with different GNP filler ratios. The thermoelectric energy harvesting efficiencies during heating and cooling were 62.26% and 39.96%, respectively. In addition, a finite element method (FEM) numerical analysis was conducted to model the output profiles.

摘要

石墨烯气凝胶负载相变材料(PCM)复合材料在熔化时能保持初始固态,不存在任何泄漏问题。复合材料中高比例的纯PCM在加热和冷却过程中可吸收或释放相对大量的热量。在本研究中,这些形状稳定的PCM复合材料被用于构建一个热电发电机,以在外部温度变化下收集电能。利用塞贝克效应和热装置两侧的温差来进行热电能量收集。由于加热和冷却过程中的相变场不同,使用了两种不同的PCM复合材料来收集热电能量。嵌入石墨烯纳米片(GNP)填料以提高PCM复合材料的热导率。通过使用这两种具有不同GNP填料比例的PCM复合材料研究了最大输出电流。加热和冷却过程中的热电能量收集效率分别为62.26%和39.96%。此外,还进行了有限元方法(FEM)数值分析以模拟输出曲线。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0442/8470080/150dd37bbdd4/nanomaterials-11-02192-g001.jpg

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