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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >3D architected isotropic materials with tunable stiffness and buckling strength
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3D architected isotropic materials with tunable stiffness and buckling strength

机译:3D架构各向同性材料,可调刚度和屈曲强度

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摘要

This paper presents a class of 3D single-scale isotropic materials with tunable stiffness and buckling strength obtained via topology optimization and subsequent shape optimization. Compared to stiffness-optimal closed-cell plate material, the material class reduces the Young's modulus to a range from 79% to 58%, but improves the uniaxial buckling strength to a range from 180% to 767%. Based on small deformation theory, material stiffness is evaluated using the homogenization method. Buckling strength under a given macroscopic stress state is estimated using linear buckling analysis with Block-Floquet boundary conditions to capture both short and long wavelength buckling modes. The 3D isotropic single-scale materials with tunable properties are designed using topology optimization, and are then further simplified using shape optimization. Both topology and shape optimized results demonstrate that material buckling strength can be significantly enhanced by hybrids between truss and variable thickness plate structures.
机译:本文介绍了一类具有可调谐刚度和屈曲强度的3D单级各向同性材料,通过拓扑优化和随后的形状优化获得。与刚度 - 最佳闭孔板材料相比,材料类别将杨氏模量降低至79%至58%的范围,但是从180%至767%的范围内提高了单轴屈曲强度。基于小变形理论,使用均质化方法评估材料刚度。使用线性屈曲分析估计具有带块状边界条件的线性屈曲分析来估计给定宏观应力状态下的屈曲强度以捕获短和长波长屈曲模式。使用拓扑优化设计具有可调谐特性的3D各向同性单尺度材料,然后使用形状优化进一步简化。拓扑和形状优化结果表明,通过桁架和可变厚度板结构之间的混合动力可以显着提高材料屈曲强度。

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