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Studies on graphene-based high modulus foams and low melting alloy-based shape stable phase change materials

机译:基于石墨烯的高模量泡沫和低熔点合金形状稳定相变材料的研究

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摘要

Nanocarbon-based porous materials have been widely used to improve the thermal conductivity and shape stability of phase change materials (PCMs). Low melting alloys are a new class of promising PCMs, and they are challenged by low shape stability during phase transition process. Normal nanocarbon-based porous materials are not strong enough to load low melting alloys due to the high density of alloys. Here, we prepared graphenebased strong foams by a multi-cycles immersing-drying method to address this problem. The foams had low density (0.12 g/cm(3)), high compressive strength (>400 KPa), high compressive modulus (highest: 95.3 MPa), extremely high specific compressive modulus (1560 MPa.cm(3)/g), high thermal conductivity (76 mW/mK), and quasi-closed cell structures. The mechanical enhancements were mainly attributed to a capillary force-based selftightening mechanism. The forms could effectively load low melting alloys, resulting in composite PCMs with high thermal conductivity (similar to 10 W/mK), high volumetric latent heat (150-250 MJ/m(3)), high shape stability, and high heat sink performance.
机译:纳米碳基多孔材料被广泛用于改善相变材料(PCMs)的导热性和形状稳定性。低熔点合金是一类很有前途的新型相变材料,在相变过程中其形状稳定性很低。由于合金的高密度,普通纳米碳基多孔材料的强度不足以装载低熔点合金。为了解决这个问题,我们采用多周期浸没干燥的方法制备了石墨烯基强泡沫。泡沫具有低密度(0.12 g/cm(3))、高抗压强度(>400 KPa)、高压缩模量(最高:95.3 MPa)、极高的比压缩模量(1560 MPa.cm(3)/g)、高导热系数(76 mW/mK)和准闭孔结构。机械增强主要归因于基于毛细管力的自紧机制。这种形式可以有效地装载低熔点合金,从而形成具有高导热性(类似于10 W/mK)、高体积潜热(150-250 MJ/m(3))、高形状稳定性和高散热性能的复合相变材料。

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