基于相变材料的热存储聚合物(纳米)复合材料的进展:聚焦热塑性基材和陶瓷/碳填料

Seung Ho Lee , Ashjeev Luvnish , Xiao Su , Qingshi Meng , Ming Liu , Hsu-Chiang Kuan , Wasim Saman , Michel Bostrom , Jun Ma
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摘要

本文探讨了(i)聚合物(纳米)复合材料在热交换器制造中替代传统金属的潜力,以及(ii)相变材料在热能储存中的应用。与金属相比,块状聚合物的热传导率较低,但具有重量轻、耐腐蚀和成本效益高等优点。论文强调了增强聚合物导热性的方法,特别是在热塑性塑料中加入陶瓷和碳基填料等填料的方法。研究探讨了生产导热聚合物复合材料的技术,如双螺杆挤出和注塑成型。研究还调查了有机 PCM 的利用情况,重点是通过添加各种纳米添加剂来增强其热量。这些发展共同为设计用于 PCM 储存的创新热塑性热交换器铺平了道路。综述最终确定了需要进一步研究的领域,特别是在可靠制造聚碳酸酯/石墨烯纳米小板复合材料以及通过先进的传热设计和模拟优化聚合物热交换器的热性能方面。这些研究成果将有助于实现低成本、高效率的聚合物热交换器,促进热能储存系统的发展,减少全球变暖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancements in polymer (Nano)composites for phase change material-based thermal storage: A focus on thermoplastic matrices and ceramic/carbon fillers

Advancements in polymer (Nano)composites for phase change material-based thermal storage: A focus on thermoplastic matrices and ceramic/carbon fillers

This article explores (i) the potential of polymer (nano)composites as alternatives to conventional metals in the manufacture of heat exchangers and (ii) the application of Phase Change Materials (PCMs) for thermal energy storage. Bulk polymers, despite their lower thermal conductivity in comparison with metals, have advantages such as lightweight, corrosion resistance and cost-effectiveness. The paper emphasizes methods of enhancing polymers' thermal conductivity, particularly by incorporating fillers such as ceramics and carbon-based fillers into thermoplastics. Techniques such as twin-screw extrusion and injection molding are examined for producing thermally conductive polymer composites. The study also investigates the utilization of organic PCMs, focusing on their thermal enhancement through the addition of various nanoadditives. These developments collectively pave the way for designing innovative thermoplastic heat exchangers for PCM storage. The review culminates in identifying areas requiring further research, particularly in the reliable manufacture of polycarbonate/graphene nanoplatelet composites and the optimization of the thermal performance of polymer heat exchangers through advanced heat transfer designs and simulations. The findings could lead to the realization of low-cost and efficient polymer-based heat exchangers, contributing to the evolution of thermal energy storage systems and the reduction of global warming.

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