Graded cellular structures for enhanced performance of additively manufactured orthopaedic implants

被引:11
作者
Thomas, James [1 ]
Alsaleh, Naser A. [2 ]
Ahmadein, Mahmoud [3 ]
Elfar, Abdullah A. [2 ,4 ]
Farouk, Hala A. [5 ]
Essa, Khamis [1 ]
机构
[1] Univ Birmingham, Mech Engn, Edgbaston, Birmingham B15 2TT, England
[2] Imam Mohammad Ibn Saud Islamic Univ IMSIU, Mech Engn Dept, Riyadh 11432, Saudi Arabia
[3] Tanta Univ, Dept Prod Engn & Mech Design, Tanta 31733, Egypt
[4] Helwan Univ, Fac Engn, Cairo, Egypt
[5] Arab Acad Sci & Technol & Maritime Transport, Dept Ind & Management Engn, Alexandria 21599, Egypt
关键词
Lattice structure; Mechanical properties; Stress shielding; Osseointegration; MECHANICAL-PROPERTIES; STAINLESS-STEEL; IN-VITRO; BONE; HIP; BEHAVIOR; POROSITY; SCAFFOLD;
D O I
10.1007/s00170-023-12843-7
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Hip implants face a significant challenge due to their limited lifespan, a concern amplified by the rising human life expectancy. Lattice structures have demonstrated the ability to provide precise control over geometry, thereby significantly enhancing implant performance. This paper introduces the development of graded additively manufactured Ti6Al4V lattice structures for orthopaedic implants. The objective focuses on developing a graded lattice unit cell design mirroring human bone properties, emphasising high surface curvature and design versatility to improve mechanical and biomedical properties, specifically osseointegration and stress shielding. The study involves modelling and grading simple cubic (SC) and body-centred cubic (BCC) lattice structures with various geometries and graded conditions and conducting compressive tests to identify the optimal configuration. The results showed that filleting was found to be the mechanical strength. On the other hand, BCC lattice structures demonstrated superior performance compared to SC structures. The optimised structure with a pore size of 400 mu m provided an elastic modulus of 15.7 GPa, yield strength of 296 MPa and compressive strength of 530 MPa. This graded lattice design approach provides a promising technique for enhancing hip implant performance, offering potential improvements.
引用
收藏
页码:1823 / 1842
页数:20
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