Design, Manufacture, and Characterization of a Critical-Sized Gradient Porosity Dual-Material Tibial Defect Scaffold

Author:

Lee Ming-Chan12ORCID,Pan Cheng-Tang2345,Chen Wen-Fan6,Lin Meng-Chi7,Shiue Yow-Ling48ORCID

Affiliation:

1. Department of Electrical Engineering, National Kaohsiung University of Science and Technology, Kaohsiung 807, Taiwan

2. Institute of Advanced Semiconductor Packaging and Testing, College of Semiconductor and Advanced Technology Research, National Sun Yat-Sen University, Kaohsiung 804, Taiwan

3. Department of Mechanical and Electro-Mechanical Engineering, National Sun Yat-Sen University, Kaohsiung 804, Taiwan

4. Institute of Precision Medicine, National Sun Yat-Sen University, Kaohsiung 804, Taiwan

5. Taiwan Instrument Research Institute, National Applied Research Laboratories, Hsinchu City 300, Taiwan

6. Institute of Medical Science and Technology, National Sun Yat-Sen University, Kaohsiung 804, Taiwan

7. Department of Surgery, Zuoying Armed Forces General Hospital, Kaohsiung 813, Taiwan

8. Institute of Biomedical Sciences, National Sun Yat-Sen University, Kaohsiung 804, Taiwan

Abstract

This study proposed a composite tibia defect scaffold with radial gradient porosity, utilizing finite element analysis to assess stress in the tibial region with significant critical-sized defects. Simulations for scaffolds with different porosities were conducted, designing an optimal tibia defect scaffold with radial gradient porosity for repairing and replacing critical bone defects. Radial gradient porosity scaffolds resulted in a more uniform stress distribution, reducing titanium alloy stiffness and alleviating stress shielding effects. The scaffold was manufactured using selective laser melting (SLM) technology with stress relief annealing to simplify porous structure fabrication. The study used New Zealand white rabbits’ tibia defect sites as simulation parameters, reconstructing the 3D model and implanting the composite scaffold. Finite element analysis in ANSYS-Workbench simulated forces under high-activity conditions, analyzing stress distribution and strain. In the simulation, the titanium alloy scaffold bore a maximum stress of 122.8626 MPa, while the centrally encapsulated HAp material delivered 27.92 MPa. The design demonstrated superior structural strength, thereby reducing stress concentration. The scaffold was manufactured using SLM, and the uniform design method was used to determine a collection of optimum annealing parameters. Nanoindentation and compression tests were used to determine the influence of annealing on the elastic modulus, hardness, and strain energy of the scaffold.

Funder

Zuoying Armed Forces General Hospital

Publisher

MDPI AG

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