Adapting Metamaterial Structures for a New Generation of Bone Substitute Scaffolds with the Desired Stiffness and Permeability: A Finite Element Analysis
摘要
This study investigated the design of bone replacement scaffolds using metamaterial structures with finite element analysis. On this basis, four scaffolds with metamaterial architecture, namely Chiral, Chiral-Truss, Re-entrant, and QSH, each with five different porosities of 70, 75, 80, 85, and 90%, were designed, and a total of 20 models were obtained. Given that the mechanical characteristics, especially the stiffness of a scaffold for bone, play an essential role in its success, the elastic modulus of the models was investigated in this study. The effective elastic modulus and Poisson’s ratio were calculated using the finite elements method. The scaffold material was selected as titanium alloy, and the models showed an effective elastic modulus between 1 and 15 GPa. Another aspect of a scaffold design is its permeability and fluid flow modality. The permeability of the designed scaffolds was calculated by performing a CFD analysis using Darcy’s law. The computed permeability was in