Influence mechanism of cell-arrangement strategy on energy absorption of dual-phase hybrid lattice structure

Shi Li, Huaguang Zhu, Genzhu Feng, Lijun Xiao*, Weidong Song

*此作品的通讯作者

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摘要

Structural design enables lattice structures to have superior mechanical performance. Currently, most design ideas are derived from bionics or crystal structures, which is an inefficient design method because simplification and optimization are necessary before converting microstructures to macro lattice structures. In this paper, a new design method is proposed based on directly controlling the collapse behavior of hybrid lattice structures without imitating any existing structures. A novel dual-phase hybrid lattice structure featuring a coordinated deformation mode is designed, and the underlying mechanism of the coordinated deformation is revealed. A series of hybrid lattice structures composed of octet-truss and modified (MOD) re-entrant hexagonal cells are proposed to analyze various design strategies. The finite element (FE) simulations validated by experiments are carried out, aiming to contrast and analyze the collapse modes and energy-absorbing performance. Simulation results demonstrate that the hybrid lattice structure with an appropriate cell arrangement can induce coordinated deformation, resulting in superior energy-absorbing performance. The mechanism driving the coordinated deformation is revealed to be related to the diversity of node connectivity and the complexity of node distribution.

源语言英语
文章编号104528
期刊International Journal of Impact Engineering
175
DOI
出版状态已出版 - 5月 2023

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Li, S., Zhu, H., Feng, G., Xiao, L., & Song, W. (2023). Influence mechanism of cell-arrangement strategy on energy absorption of dual-phase hybrid lattice structure. International Journal of Impact Engineering, 175, 文章 104528. https://doi.org/10.1016/j.ijimpeng.2023.104528