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Additive manufacturing of elastomeric foam with cell unit design for broadening compressive stress plateau

Xiaowei Zhu (Institute of System Engineering, China Academy of Engineering Physics, Mianyang, China)
Yanqiu Chen (School of Mechanical Engineering, Jiangnan University, Wuxi, China)
Yu Liu (School of Mechanical Engineering, Jiangnan University, Wuxi, China)
Yongqiang Deng (Chengdu Green Energy and Green Manufacturing Technology R&D Center, Chengdu, China)
Changyu Tang (Chengdu Green Energy and Green Manufacturing Technology R&D Center, Chengdu, China)
Weilian Gao (Department of Mechanical Engineering, Jiangnan University, Wuxi, China)
Jun Mei (Chengdu Green Energy and Green Manufacturing Technology R&D Center, Chengdu, China)
Junhua Zhao (School of Mechanical Engineering, Jiangnan University, Wuxi, China)
Tong Liu (Chengdu Development Center of Science and Technology, China Academy of Engineering Physics, Chengdu, China)
Jian Yang (Chengdu Green Energy and Green Manufacturing Technology R&D Center, Chengdu, China)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 12 October 2018

Issue publication date: 21 November 2018

467

Abstract

Purpose

The purpose of this paper is to provide additive manufacturing-based solutions for preparation of elastomeric foam with broaden compressive stress plateau.

Design/methodology/approach

Mechanic models are developed for obtaining designs of foam cell units with enhanced elastic buckling. An experimental approach is taken to fabricate the foams based on direct ink writing technique. Experimental and simulation data are collected to assist understanding of our proposals and solutions.

Findings

A simple tetragonal structured elastomeric foam is proposed and fabricated by direct ink writing, in which its cell unit is theoretically designed by repeating every four filament layers. The foam exhibits a broader stress plateau, because of the pronounced elastic buckling under compressive loading as predicted by the authors’ mechanic modeling. A two-stage stress plateaus as observed in the foam, being attributed to the dual elastic buckling of the cell units along two lateral directions of the XY plane during compression.

Research limitations/implications

Future work should incorporate more microscopic parameters to tune the elastomeric foam for mechanic performance testing on linear elastic deformation and densification of polymer matrix.

Practical implications

Additive manufacturing offers an alternative to fabricate elastomeric foam with controlled cell unit design and therefore mechanics. Our results comment on its broad space for development such superior cushioning or damping material in the fields of vibration and energy absorption.

Originality/value

This work has contributed to new knowledge on preparation of high performance elastomeric foam by providing a better understanding on its cell structure, being printed using direct ink writing machines.

Keywords

Acknowledgements

This work was financially supported by National Natural Science Foundation of China (Grants No. 51475484 and 51573217) and additive manufacturing of silicone rubber foam program of CAEP.

Citation

Zhu, X., Chen, Y., Liu, Y., Deng, Y., Tang, C., Gao, W., Mei, J., Zhao, J., Liu, T. and Yang, J. (2018), "Additive manufacturing of elastomeric foam with cell unit design for broadening compressive stress plateau", Rapid Prototyping Journal, Vol. 24 No. 9, pp. 1579-1585. https://doi.org/10.1108/RPJ-09-2017-0172

Publisher

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Emerald Publishing Limited

Copyright © 2018, Emerald Publishing Limited

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