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PMID: 31877520 Published · ppublish English Journal Article

Mechanical performance of highly permeable laser melted Ti6Al4V bone scaffolds.

Journal of the mechanical behavior of biomedical materials ·Vol. 102 ·2020-00-00 ·页码 103517

Arjunan A, Demetriou M, Baroutaji A, Wang C

Abstract

Critically engineered stiffness and strength of a scaffold are crucial for managing maladapted stress concentration and reducing stress shielding. At the same time, suitable porosity and permeability are key to facilitate biological activities associated with bone growth and nutrient delivery. A systematic balance of all these parameters are required for the development of an effective bone scaffold. Traditionally, the approach has been to study each of these parameters in isolation without considering their interdependence to achieve specific properties at a certain porosity. The purpose of this study is to undertake a holistic investigation considering the stiffness, strength, permeability, and stress concentration of six scaffold architectures featuring a 68.46-90.98% porosity. With an initial target of a tibial host segment, the permeability was characterised using Computational Fluid Dynamics (CFD) in conjunction with Darcy's law. Following this, Ashby's criterion, experimental tests, and Finite Element Method (FEM) were employed to study the mechanical behaviour and their interdependencies under uniaxial compression. The FE model was validated and further extended to study the influence of stress concentration on both the stiffness and strength of the scaffolds. The results showed that the pore shape can influence permeability, stiffness, strength, and the stress concentration factor of Ti6Al4V bone scaffolds. Furthermore, the numerical results demonstrate the effect to which structural performance of highly porous scaffolds deviate, as a result of the Selective Laser Melting (SLM) process. In addition, the study demonstrates that stiffness and strength of bone scaffold at a targeted porosity is linked to the pore shape and the associated stress concentration allowing to exploit the design freedom associated with SLM.

Keywords
Additive manufacturing Permeability Porosity Stiffness Strength Titanium bone scaffold
MeSH 主题词
Alloys Lasers Porosity Stress, Mechanical Tissue Scaffolds Titanium
化学物质
Alloys titanium alloy (TiAl6V4) Titanium
作者与单位
共 4 位作者,点击展开单位 / ORCID
Arjunan Arun
School of Engineering, University of Wolverhampton, Telford, TF2 9NT, UK. Electronic address: [email protected].
Demetriou Marios
School of Engineering, University of Wolverhampton, Telford, TF2 9NT, UK.
Baroutaji Ahmad
School of Engineering, University of Wolverhampton, Telford, TF2 9NT, UK.
Wang Chang
Department of Engineering and Design, University of Sussex, Brighton, BN1 9RH, UK.
Article Info
Journal
Journal of the mechanical behavior of biomedical materials
Abbr.
J Mech Behav Biomed Mater
ISSN
1878-0180
Corresponding email
Published
2020-00-00
电子出版
2019-00-06
页码
103517
Language
English
Country/Region
Netherlands
NLM ID
101322406
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