Numerical homogenization of thermal conductivity of particle-filled thermal interface material by fast Fourier transform method

材料科学 复合材料 热导率 均质化(气候) 体积分数 热传导 散热膏 有限元法 热的 粒子(生态学) 结构工程 热力学 海洋学 物理 地质学 工程类 生物多样性 生物 生态学
作者
Xiaoxin Lu,Xueqiong Fu,Jibao Lu,Rong Sun,Jianbin Xu,Changzeng Yan,Ching‐Ping Wong
出处
期刊:Nanotechnology [IOP Publishing]
卷期号:32 (26): 265708-265708 被引量:18
标识
DOI:10.1088/1361-6528/abeb3c
摘要

Thermal interface material (TIM) is pivotal for the heat dissipation between layers of high-density electronic packaging. The most widely used TIMs are particle-filled composite materials, in which highly conductive particulate fillers are added into the polymer matrix to promote heat conduction. The numerical simulation of heat transfer in the composites is essential for the design of TIMs; however, the widely used finite element method (FEM) requires large memory and presents limited computational time for the composites with dense particles. In this work, a numerical homogenization algorithm based on fast Fourier transform was adopted to estimate the thermal conductivity of composites with randomly dispersed particles in 3D space. The unit cell problem is solved by means of a polarization-based iterative scheme, which can accelerate the convergence procedure regardless of the contrast between various components. The algorithm shows good precision and requires dramatically reduced computation time and cost compared with FEM. Moreover, the effect of the particle volume fraction, interface thermal resistance between particles (R-PP), interface thermal resistance between particle and matrix (R-PM), and particle size have been estimated. It turns out that the effective conductivity of the particulate composites increases sharply at a critical filler volume fraction, after which it is sensitive to the variation of filler loading. We can observe that the effective thermal conductivity of the composites with low filler volume fraction is sensitive to R-PM, whereas the it is governed by R-PP for the composites with high filler content. The algorithm presents excellent efficiency and accuracy, showing potential for the future design of highly thermally conductive TIMs.
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