Back to Search Start Over

Design and performance evaluation of additively manufactured composite lattice structures of commercially pure Ti (CP–Ti)

Authors :
Wei Xu
Zhang Jiazhen
Bo Su
Chaozong Liu
Yu Aihua
Mengdi Wang
Jianliang Zhang
Xin Lu
Xuanhui Qu
Maryam Tamaddon
Source :
Bioactive Materials, Bioactive Materials, Vol 6, Iss 5, Pp 1215-1222 (2021), Xu, W, Yu, A, Lu, X, Tamaddon, M, Wang, M, Zhang, J, Zhang, J, Qu, X, Liu, C & Su, B 2021, ' Design and performance evaluation of additively manufactured composite lattice structures of commercially pure Ti (CP-Ti) ', Bioactive Materials, vol. 6, no. 5, 1215-1222, pp. 1215-1222 . https://doi.org/10.1016/j.bioactmat.2020.10.005
Publication Year :
2021
Publisher :
Elsevier BV, 2021.

Abstract

Ti alloys with lattice structures are garnering more and more attention in the field of bone repair or regeneration due to their superior structural, mechanical, and biological properties. In this study, six types of composite lattice structures with different strut radius that consist of simple cubic (structure A), body-centered cubic (structure B), and edge-centered cubic (structure C) unit cells are designed. The designed structures are firstly simulated and analysed by the finite element (FE) method. Commercially pure Ti (CP–Ti) lattice structures with optimized unit cells and strut radius are then fabricated by selective laser melting (SLM), and the dimensions, microtopography, and mechanical properties are characterised. The results show that among the six types of composite lattice structures, combined BA, CA, and CB structures exhibit smaller maximum von-Mises stress, indicating that these structures have higher strength. Based on the fitting curves of stress/specific surface area versus strut radius, the optimized strut radius of BA, CA, and CB structures is 0.28, 0.23, and 0.30 mm respectively. Their corresponding compressive yield strength and compressive modulus are 42.28, 30.11, and 176.96 MPa, and 4.13, 2.16, and 7.84 GPa, respectively. The CP-Ti with CB unit structure presents a similar strength and compressive modulus to the cortical bone, which makes it a potential candidate for subchondral bone restorations.<br />Graphical abstract Image 1<br />Highlights • Six types of graded lattice structures with different strut radius are designed and simulated by the FE method. • BA, CA, and CB structures exhibit smaller maximum Von-Mises stress among six type structures. • CP-Ti with CB structures exhibits similar mechanical properties to the cortical bone. • Excellent properties make CP-Ti with CB structures an attractive subchondral bone restoration material.

Details

ISSN :
2452199X
Volume :
6
Database :
OpenAIRE
Journal :
Bioactive Materials
Accession number :
edsair.doi.dedup.....788280d19bb292fd5288a6e60efbd8ca
Full Text :
https://doi.org/10.1016/j.bioactmat.2020.10.005