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Recent advances on thermal conductivity enhancement of phase change materials for energy storage system: A review

机译:储能系统相变材料导热性能的最新进展:综述

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Phase change materials (PCMs) possess very high heat storage capacity and are capable of maintaining a constant temperature during phase change, which makes them most prominent candidates for solar energy storage systems, heating, and cooling systems. The low thermal conductivity of PCM results in slow heat transfer and low heat storage and release rate, which is a major drawback for their practical applications. This review focuses on the enhancement of thermal conductivity by the introduction of highly thermally conductive metallic and carbon-based nanoparticles, metallic foams, expanded graphite and encapsulation of PCM. Carbon-based nanoparticles including carbon fiber, carbon nanotubes, and graphene show better performance than metal-based nanoparticles due to lower density and better dispersion. The thermal conductivity of the composite phase change material (CPCM) depends on the shape, size, aspect ratio and concentration of nanoparticles. The thermal conductivity of CPCM increases by increasing concentration and aspect ratio of the additive. Metallic foam and expanded graphite possess high thermal conductivity and good thermo-physical properties and also prevent leakage of PCM during phase change. The porosity of foam has a huge impact on thermal conductivity than pore size. Encapsulated PCM has well-enhanced thermal conductivity and long-lifetime due to the high thermal conductive shell which also protects the PCM from direct contact with the environment. (C) 2018 Elsevier Ltd. All rights reserved.
机译:相变材料(PCM)具有很高的储热能力,并且能够在相变过程中保持恒定的温度,这使其成为太阳能存储系统,加热和冷却系统的最主要候选者。 PCM的低导热率导致缓慢的传热以及较低的储热和释放速率,这是其实际应用的主要缺点。这篇综述的重点是通过引入高导热性的金属和碳基纳米颗粒,金属泡沫,膨胀石墨和PCM的封装来提高导热性。包括碳纤维,碳纳米管和石墨烯在内的碳基纳米颗粒由于具有较低的密度和更好的分散性,因此比金属基纳米颗粒表现出更好的性能。复合相变材料(CPCM)的热导率取决于纳米颗粒的形状,大小,长宽比和浓度。 CPCM的导热系数通过增加添加剂的浓度和长宽比来增加。金属泡沫和膨胀石墨具有高导热性和良好的热物理性能,并且还可以防止相变过程中PCM泄漏。泡沫的孔隙率对热导率的影响比孔径大。封装的PCM由于具有高导热外壳,因此具有很好的导热性和较长的使用寿命,这也可以保护PCM免于直接与环境接触。 (C)2018 Elsevier Ltd.保留所有权利。

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