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Effective Thermal Conductivity of Metal-Dielectric Composites at the Non-dilute Limit

机译:金属-电介质复合材料在非稀释极限下的有效导热系数

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摘要

Based on the Bruggeman integral principle and Ordonez-Miranda et al. (J. Appl. Phys. 111, 044319 (2012)) model, formulas for predicting the effective thermal conductivity of composites containing not only low but also high concentrations of spherical and cylindrical metallic particles embedded in a dielectric matrix are derived and analyzed. In the dilute limit of particles, the obtained results coincide with those previously reported in the literature. In the non-dilute limit, on the other hand, the thermal conductivity of the composites shows a remarkable enhancement, which increases with the relative radius of the particles with respect to the coupling length. It is shown that the effect of electron-phonon coupling on the thermal conductivity of composites gets strength at high-volume fractions of particles and is cancelled out for high interfacial thermal resistances. The proposed model could be useful for predicting the thermal conductivity of particulate composites with metallic particles with sizes from macro/micro- to nanoscales.
机译:基于Bruggeman积分原理和Ordonez-Miranda等。 (J. Appl。Phys。111,044319(2012))模型,推导并分析了预测复合材料有效导热系数的公式,这些复合材料不仅包含低浓度而且包含高浓度的嵌入在电介质基质中的球形和圆柱形金属颗粒。在颗粒的稀释极限内,获得的结果与先前文献中报道的结果一致。另一方面,在非稀释极限下,复合材料的热导率显示出显着的提高,其随颗粒相对于耦合长度的相对半径的增加而增加。结果表明,电子-声子耦合对复合材料热导率的影响在颗粒的高体积分数下获得强度,并被高界面热阻抵消。所提出的模型可用于预测具有从宏观/微米到纳米尺度的金属颗粒的颗粒复合材料的热导率。

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