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首页> 外文期刊>International Journal of Solids and Structures >Design of three dimensional isotropic microstructures for maximized stiffness and conductivity
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Design of three dimensional isotropic microstructures for maximized stiffness and conductivity

机译:最大化各向同性和导电性的三维各向同性微观结构设计

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The level-set method of topology optimization is used to design isotropic two-phase periodic multifunctional composites in three dimensions. One phase is stiff and insulating whereas the other is conductive and mechanically compliant. The optimization objective is to maximize a linear combination of the effective bulk modulus and conductivity of the composite. Composites with the Schwartz primitive and diamond minimal surfaces as the phase interface have been shown to have maximal bulk modulus and conductivity. Since these composites are not elastically isotropic their stiffness under uniaxial loading varies with the direction of the load. An isotropic composite is presented with similar conductivity which is at least 23% stiffer under uniaxial loading than the Schwartz structures when loaded uniaxially along their weakest direction. Other new near-optimal isotropic composites are presented, proving the capablities of the level-set method for microstructure design.
机译:采用拓扑优化的水平集方法设计三维各向同性的两相周期性多功能复合材料。一个相是刚性且绝缘的,而另一相是导电且机械柔顺的。优化目标是使复合材料的有效体积模量和电导率的线性组合最大化。具有Schwartz基本面和金刚石最小表面作为相界面的复合材料已显示具有最大的体积模量和电导率。由于这些复合材料不是弹性各向同性的,因此它们在单轴载荷下的刚度会随载荷方向而变化。呈现出各向同性的复合材料,具有相似的导电性,当沿其最弱方向单轴加载时,其单轴加载下的刚性比Schwartz结构高至少23%。提出了其他新的近乎最佳的各向同性复合材料,证明了水平设定方法在微观结构设计中的能力。

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