Finite element modelling and characterization of 3D cellular microstructures for the design of a cementless biomimetic porous hip stem
Author | Mehboob H. |
Author | Tarlochan F. |
Author | Mehboob A. |
Author | Chang S.-H. |
Available date | 2020-03-18T08:10:10Z |
Publication Date | 2018 |
Publication Name | Materials and Design |
Resource | Scopus |
ISSN | 2641275 |
Abstract | Titanium porous cellular microstructures are commonly used in bone mimetic implants. The orientations of the internal strut architectures of these microstructures affect the mechanical performance under various loads; however, poor architectural designs may result in their failure. Three-dimensional (3D) finite element models of cubic, diamond, and body-centered cubic (BCC) geometries were constructed with 1?4 numbers of unit cells and 4?10-mm unit cell size. Mechanical testing of the finite models of the cubic, diamond, and BCC structures with porosities of 20?90% was performed under compression, bending, and torsional loads. The BCC structure showed moderate and relatively isotropic mechanical properties compared with those of the diamond and cubic structures. A design space for a BCC porous structure with a porosity of 40?65% was estimated to model a complete porous stem to mimic the bone properties. Furthermore, the stems with the determined porous mechanical properties of the BCC microstructures with 20?90% porosities were tested under physiological loading conditions. It was found that a porosity of 47.3% of the BCC structure exhibits the closest stiffness (469 N/mm) to an intact bone (422 N/mm). This was predicted by our suggested design space of the porosity. ? 2018 Elsevier Ltd |
Sponsor | This paper was made possible by NPRP grant# NPRP 8-876-2-375 from the Qatar National Research Fund (a member of Qatar Foundation). The findings achieved herein are solely the responsibility of the authors. |
Language | en |
Publisher | Elsevier Ltd |
Subject | Finite element analysis Hip stem Mechanical testing Porous cellular microstructures |
Type | Article |
Pagination | 101 - 112 |
Volume Number | 149 |
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Mechanical & Industrial Engineering [1396 items ]