用于储能技术的氧化石墨烯增强相变材料微胶囊

Bowei Du, Mingyue Wang, Qingzhou Zhao, Xiaofei Hu, Shujiang Ding
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摘要

相变材料具有潜热大、体积变化小、易于控制等优点,被认为是最有前途的储能方法之一。pcm广泛应用于太阳能采暖、工业余热利用、建筑行业节能等领域。为了避免PCMs的泄漏、相分离和挥发性问题,封装技术通常使用有机聚合物材料作为微胶囊的外壳结构。此外,利用无机材料增强相变微胶囊的热性能是近年来研究的热门方法。特别是采用高导热性的氧化石墨烯(GO)作为常见的导热添加剂来改善相变微胶囊的热性能。由于其两亲性,氧化石墨烯与PCM微胶囊结合可以实现多种纳米结构的热能储存。本文从相变微胶囊的构型、氧化石墨烯与相变微胶囊的结合方法、氧化石墨烯的位置和含量、相变/氧化石墨烯微胶囊的应用四个方面进行了综述。本工作试图探讨PCM/GO微胶囊的制备方法和导热性能,这有助于更好地促进针对应用的设计,并大大提高PCM微胶囊在各种应用中的热性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phase change materials microcapsules reinforced with graphene oxide for energy storage technology
Phase change materials (PCMs) are considered one of the most promising energy storage methods owing to their beneficial effects on a larger latent heat, smaller volume change, and easier controlling than other materials. PCMs are widely used in solar energy heating, industrial waste heat utilization, energy conservation in the construction industry, and other fields. To avoid leakage, phase separation, and volatile problems of PCMs, the encapsulation technique typically uses organic polymer materials as shell structures of microcapsules. Furthermore, using inorganic materials to enhance the thermal property of phase change microcapsules is a popular approach in recent research. Especially, graphene oxide (GO) with high thermal conductivity was used as a common thermal conducting additive to improve the thermal performance of phase change microcapsules. Due to its amphiphilic property, GO combined with PCM microcapsules can achieve a variety of nanostructures for thermal energy storage. In this paper, four aspects have been summarized: configuration of PCMs, methods of combining GO with phase change microcapsules, position and content of GO, and applications of PCM/GO microcapsules. This work attempts to discuss preparation methods and heat-conducting properties of the PCM/GO microcapsules, which helps to better promote the application-targeted design and greatly improve the thermal properties of PCM microcapsules for various applications.
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