首页> 外文期刊>Thin-Walled Structures >Quasi-static in-plane compression of zig-zag folded metamaterials at large plastic strains
【24h】

Quasi-static in-plane compression of zig-zag folded metamaterials at large plastic strains

机译:大塑料菌株的Zig-Zag的准静脉内部压缩折叠超材料

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

The work aims to study the large, plastic deformation and energy absorption characteristics of zig-zag folded metamaterials, BCHn, under quasi-static in-plane compression, using an analytical method and numerical analysis. In analytical modelling, the zig-zag folded materials are assumed as rigid origami in they direction. The BCHn materials are considered as cellular materials with various topologies defined by the characteristic geometric parameters (a, b, h; alpha, gamma(0); n) when the strength at large plastic strains and densification strain are defined. The obtained analytical relationships between material topology and material strength provide an easy way to assess the energy absorption of BCHn materials with various geometric parameters. Particular attention is paid to the compression response of BCH2 and BCH3 materials, and comparisons are made with Miura-ori based materials having the same parameters (a, b, h; alpha, gamma(0);). It is found that the zig-zag folded materials outperform the Miura-ori based material in terms of energy absorption. Besides, tunable geometric parameters of the BCHn zig-zag folded materials allow better tailoring of their mechanical properties. Comparisons of the energy absorption efficiency between zig-zag folded materials and hexagonal honeycomb materials show that the parameters of the BCHn materials can be selected to obtain metamaterials with superior energy absorption characteristics. Finite element models of zig-zag folded materials are built using ABAQUS/Explicit and numerical simulations of quasistatic compression are carried out to verify the analytical results. The observed agreement in terms of force and deformation confirmed that the analytical models are valid, and the analytical predictions are reliable.
机译:该工作旨在使用分析方法和数值分析研究Zig-Zag折叠超材料,BCHN的大,塑性变形和能量吸收特性,BCHN,使用分析方法和数值分析。在分析建模中,锯齿形折叠材料被认为是它们方向上的刚性折纸。当定义大塑料菌株和致密化应变的强度时,BCHN材料被认为是具有由特征几何参数(A,B,H;α,γ);γ,γ(0); n)限定的各种拓扑。材料拓扑和材料强度之间获得的分析关系提供了一种简单的方法来评估具有各种几何参数的BCHN材料的能量吸收。特别注意BCH2和BCH3材料的压缩响应,并且使用具有相同参数的MIURA-ORI材料进行比较(A,B,H;α,γ(0);)。发现Zig-Zag折叠材料在能量吸收方面优于Miura-ori基材料。此外,BCHN Zig-Zag折叠材料的可调谐几何参数允许更好地裁缝其机械性能。锯齿形折叠材料与六边形蜂窝材料之间的能量吸收效率的比较表明,可以选择BCHN材料的参数以获得具有优异的能量吸收特性的超材料。使用ABAQUS /显式建立Zig-Zag折叠材料的有限元模型,并进行了Quasistatic压缩的数值模拟,以验证分析结果。在力量和变形方面观察到的协议证实分析模型有效,分析预测是可靠的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号