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Crushing Behavior of Functionally Graded Lattice

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posted on 2024-07-11, 14:58 authored by Chamini Rodrigo, Shanqing XuShanqing Xu, Yvonne DurandetYvonne Durandet, Darren Fraser, Dong RuanDong Ruan
The mechanical performance of novel design body centered cubic (BCC) type bi-directional functionally graded (FG) lattices has been investigated experimentally and numerically. Uniform and uni-directional FG lattice structures were also studied for comparison. The three types of lattice structures were fabricated by multi-jet fusion (MJF) using polyamide 11 (PA 11). The results showed that the strength of the bi-directional FG structure was moderate in the initial stage of crush, as well as towards densification as compared with the uni-directional FG structure. Moreover, the strength of the bi-directional FG structure can be tailored by tuning the gradient. At the same density, both FG structures showed higher plateau stress than the uniform counterparts, and the bi-directional FG lattice had the highest plateau stress. Moreover, the FG structures demonstrated typical progressive collapse during the crush with stepwise-shaped stress–strain curves. The energy absorption capacity of the two FG lattices was also found to be slightly (around 10%) higher than that of the uniform structure with the same density.

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Department of Industry, Science and Resources

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PDF (Accepted manuscript)

ISSN

1543-1851

Journal title

JOM

Volume

73

Issue

12

Pagination

4130-4140

Publisher

Springer Science and Business Media LLC

Copyright statement

Copyright © 2021 the authors. This is the authors' final (peer reviewed) Accepted Manuscript (AM) version, subject to Springer's AM Terms Of Use License. See https://www.springernature.com/gp/open-research/policies/accepted-manuscript-terms

Language

eng

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