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Modeling the compressive deformation of metal micro-textured thermal interface materials using SEM geometry reconstruction

机译:使用SEM几何重构对金属微织构热界面材料的压缩变形进行建模

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Idealized and simplified geometries are commonly used in finite element models to ease model creation and meshing. However, at smaller length-scales, the influence of geometrical imperfections and defects can significantly affect the accuracy of the model predictions. This work details the modeling techniques required to achieve an accurate prediction of the mechanical behavior of metal micro-textured thermal interface material (MMT-TIM) structures as they undergo compressive deformation. Of particular significance is the development of a novel and practical technique for accurately creating detailed micro-scale geometries for finite element modeling applications. This technique relies on an SEM stereoscopic surface reconstruction methodology and is extended here to create solid geometries amenable to direct simulation by finite element software tools. By accurately characterizing the geometry over the relevant length-scales, an improved prediction of the mechanical response of these structures is attained compared to models employing idealized geometries. Accurate mechanical models enable the subsequent heat transfer modeling of these materials to be achieved with a corresponding high degree of accuracy. The value of the geometry reconstruction technique for other applications is also discussed.
机译:理想化和简化的几何体通常用于有限元模型中,以简化模型的创建和网格划分。但是,在较小的比例尺上,几何缺陷和缺陷的影响会显着影响模型预测的准确性。这项工作详细介绍了建模技术,该技术可精确预测金属微结构化热界面材料(MMT-TIM)结构在经历压缩变形时的机械性能。特别重要的是开发一种新颖实用的技术,可为有限元建模应用准确地创建详细的微尺度几何形状。该技术依赖于SEM立体表面重建方法,并在此扩展以创建可通过有限元软件工具直接模拟的实体几何。与采用理想几何形状的模型相比,通过在相关的长度范围内准确地表征几何形状,可以更好地预测这些结构的机械响应。精确的机械模型可以使这些材料的后续传热建模达到相应的高精度。还讨论了几何重构技术对其他应用程序的价值。

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