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Effects of graphene concentration, relative density and cellular morphology on the thermal conductivity of polycarbonate–graphene nanocomposite foams

机译:石墨烯浓度,相对密度和细胞形态对聚碳酸酯 - 石墨烯纳米复合泡沫塑料导热系数的影响

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摘要

The thermal conductivity of polycarbonate–graphene nanocomposite foams was studied as a function of relative density, developed cellular structure and graphene concentration. Two types of supercritical CO2 foaming processes were employed to obtain foams with a wide range of relative densities and cellular morphologies. The thermal conductivity of\udunfoamed nanocomposites increased in more than two times upon addition of 5 wt% graphene. Foaming led to lowered thermal conductivity values, as low as 0.03 W/(m K), with thermal conductivity being mainly controlled by relative density and in a lower extent by graphene concentration. Higher thermal conductivities were obtained with increasing relative density and cell size, as well as with increasing graphene concentration, especially in those cases where improved graphene dispersion was achieved with foaming. Thermal conductivity values displayed a better fit when using a three-phase model when\udcompared to the two-phase model previously proposed for polymer composite foams.
机译:研究了聚碳酸酯-石墨烯纳米复合泡沫的热导率与相对密度,发达的孔结构和石墨烯浓度的关系。两种类型的超临界CO2发泡过程用于获得具有相对密度和泡孔形貌广泛的泡沫。加入5 wt%的石墨烯后,未发泡纳米复合材料的热导率增加了两倍以上。发泡导致导热系数降低,低至0.03 W /(m K),导热系数主要由相对密度控制,而石墨烯浓度则较小。随着相对密度和泡孔尺寸的增加以及石墨烯浓度的增加,可以获得更高的导热率,特别是在通过发泡获得改善的石墨烯分散性的情况下。与以前对聚合物复合泡沫塑料提出的两相模型相比,当使用三相模型时,导热系数值显示出更好的拟合度。

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