4.6 Article

Rationally designed functionally graded porous Ti6Al4V scaffolds with high strength and toughness built via selective laser melting for load-bearing orthopedic applications

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ELSEVIER
DOI: 10.1016/j.jmbbm.2020.103673

关键词

Functionally graded materials; Orthopedic scaffolds; Additive manufacturing; Mechanical properties

资金

  1. Research Fund for the National Natural Science Foundation of China [51475293]
  2. Shanghai Committee of Science and Technology, China [16441904902]
  3. Cross-Institute Research Fund of Shanghai Jiao Tong University [YG2017MS79]

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Functionally graded materials (FGMs) with porosity variation strategy mimicking natural bone are potential high-performance biomaterials for orthopedic implants. The architecture of FGM scaffold is critical to gain the favorable combination of mechanical and biological properties for osseointegration. In this study, four types of FGM scaffolds with different structures were prepared by selective laser melting (SLM) with Ti6Al4V as building material. All the scaffolds were hollow cylinders with different three-dimensional architectures and had gradient porosity resembling the graded-porous structure of human bone. Two unit cells (diamond and honeycomb-like unit cells) were used to construct the cellular structures. Solid support structures were embedded into the cellular structures to improve their mechanical performances. The physical characteristics, mechanical properties, and deformation behaviors of the scaffolds were compared systematically. All the as-built samples with porosities of similar to 52-67% exhibited a radial decreasing porosity from the inner layer to the outer layer, and their pore sizes ranged from similar to 420 to similar to 630 mu m. The compression tests showed the Young's moduli of all the asfabricated samples (similar to 3.79-similar to 10.99 GPa) were similar to that of cortical bone. The FGM structures built by honeycomb-like unit cells with supporting structure in outer layer exhibited highest yield strength, toughness and stable mechanical properties which is more appropriate to build orthopedic scaffolds for load-bearing application.

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