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Design and impact response of 3D-printable tensegrity-inspired structures

机译:3D可打印的矩形启发结构的设计和影响响应

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摘要

Recent studies demonstrate the potential of tensegrity structures as unique building blocks for architected lattices (metamaterials). Key tensegrity characteristics, such as elastic response under severe deformation, high strength-to-weight ratio, and nonlinear behavior, make these structures appealing for dynamic applications. A new method of tessellating tensegrity unit cells with elastically buckling struts in three dimensions has opened new avenues for metamaterials with superior mechanical properties. However, traditional fabrication methods for tensegrity structures are cumbersome and do not allow accurate control of the level of member prestress. To overcome these limitations, we present a design of a 3D-printable, single material structure which has comparable strain energy capacity and compressive response as a tensegrity structure with buckling struts. The structure's geometry maintains key tensegrity characteristics, thus generating an equivalent mechanical response. Numerical simulations inform quasi-static compression experiments and dynamic drop weight impact tests. The structure's responses correspond well to the pin-jointed tensegrity, exhibiting desirable characteristics such as post-buckling stability, resilience under severe deformation, high elastic strain energy absorption, and load-limitation. This work is the first to experimentally corroborate theoretical studies of buckling tensegrity structures. We conjecture that the structure presented here has unique potential as a unit cell for manufacturable tensegrity-inspired metamaterials. Keywords: Tensegrity, Metamaterials, Dynamic impact, 3D-printing, Buckling, Architected unit cells
机译:最近的研究证明了将矩形结构的潜力作为用于架构格子(超材料)的独特构建块。关键的矩形特性,例如严重变形下的弹性响应,高强度重量比和非线性行为,使得这些结构对动态应用吸引力。在三维中具有弹性屈曲支柱的晶体化曲面的新方法已经为具有优异机械性能的超材料开辟了新的途径。然而,传统的制造方法对于牙态结构是麻烦的,并且不允许准确控制成员预应力的水平。为了克服这些限制,我们展示了一种设计3D可打印的单个材料结构,其具有与具有屈曲支柱的旋隙结构具有相当的应变能量和压缩响应。该结构的几何形状保持键的矩位特性,从而产生等效的机械响应。数值模拟可通知准静态压缩实验和动态滴减轻抗冲击试验。该结构的响应对应于销连接的态态,表现出屈曲的特性,例如后屈曲稳定性,在严重变形,高弹性应变能量吸收和限制下的抵抗力。这项工作是第一个通过实验证实屈曲的屈曲长度结构的理论研究。我们猜想这里呈现的结构具有独特的潜力作为生产的稳态启动的超材料的单元电池。关键词:长度,超材料,动态冲击,3D打印,屈曲,架构单元电池

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