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Design of minimal mass load-bearing tensegrity lattices

机译:设计最小的质量承载矩形格子

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Lattice metamaterials have demonstrated promising characteristics such as having tunable/unconventional properties and being lightweight. This work centers on the design of tensegrity-based lattices, known as "T-bar" structures, capable of supporting compressive loads with minimum mass. Analytical formulas for the calculation of the mass of these structures under externally applied forces and pre-stress are derived. These formulas account for local failure of the T-bar structures (material yielding and buckling of its individual members). A numerical approach is introduced to assess the global stability of the structures under external forces and pre-stress and to account for global buckling in the design process. The mass of the structure is minimized by adjusting its shape and topology while global buckling is simultaneously prevented using two different design methods: i) optimizing the pre-stress distribution in the structure, and ii) optimizing the cross-section areas of the tensegrity members. Using either method, the results show that 2D and 3D T-bars possess a global minimum mass design for a given externally applied force and length. The computed results also show that designs obtained by optimizing the cross-section areas of the members have lower mass than those obtained by optimizing the pre-stress distribution. (C) 2020 Elsevier Ltd. All rights reserved.
机译:晶格超材料已经证明了有希望的特性,例如具有可调谐/非常规特性并轻轻一次。这项工作中心在设计基于矩形的格子的设计中,被称为“T-Bar”结构,能够支持最小质量的压缩载荷。推导出在外部施加力和预胁迫下计算这些结构的质量的分析公式。这些公式占T-Bar结构的局部失效(其各个成员的材料产生和屈曲)。介绍了一种数值方法,以评估外力和预应力下结构的全球稳定性,并考虑设计过程中的全球屈曲。通过调节其形状和拓扑结构,在使用两种不同的设计方法同时防止全球屈曲的情况下,可以最小化结构的质量:i)优化结构的预应力分布,II)优化矩形成员的横截面区域。使用任一方法,结果表明,2D和3D T杆具有用于给定外部施加的力和长度的全局最小质量设计。计算结果还表明,通过优化构件的横截面区域而获得的设计比通过优化预应力分布而获得的差异。 (c)2020 elestvier有限公司保留所有权利。

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