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Load-Adaptive Scaffold Architecturing: A Bioinspired Approach to the Design of Porous Additively Manufactured Scaffolds with Optimized Mechanical Properties

机译:负载自适应脚手架结构设计:一种具有生物启发性的方法来设计具有最佳机械性能的多孔增材制造脚手架

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摘要

Computer-Aided Tissue Engineering (CATE) is based on a set of additive manufacturing techniques for the fabrication of patient-specific scaffolds, with geometries obtained from medical imaging. One of the main issues regarding the application of CATE concerns the definition of the internal architecture of the fabricated scaffolds, which, in turn, influences their porosity and mechanical strength. The present study envisages an innovative strategy for the fabrication of highly optimized structures, based on the a priori finite element analysis (FEA) of the physiological load set at the implant site. The resulting scaffold micro-architecture does not follow a regular geometrical pattern; on the contrary, it is based on the results of a numerical study. The algorithm was applied to a solid free-form fabrication process, using poly(ε-caprolactone) as the starting material for the processing of additive manufactured structures. A simple and intuitive geometry was chosen as a proof-of-principle application, on which finite element simulations and mechanical testing were performed. Then, to demonstrate the capability in creating mechanically biomimetic structures, the proximal femur subjected to physiological loading conditions was considered and a construct fitting a femur head portion was designed and manufactured.
机译:计算机辅助组织工程(CATE)基于一组增材制造技术,用于制造患者特定的支架,并具有从医学成像获得的几何形状。与CATE的应用有关的主要问题之一是对制成的脚手架内部结构的定义,这反过来会影响其孔隙率和机械强度。本研究设想了一种高度创新的结构制造战略,该战略基于对植入部位设置的生理负荷进行先验有限元分析(FEA)。最终的脚手架微体系结构不遵循规则的几何图案。相反,它是基于数值研究的结果。该算法以聚(ε-己内酯)为起始材料,用于加工增材制造的结构,被应用于固体自由形式的制造过程。选择了一种简单直观的几何体作为原理证明应用程序,在该应用程序上执行了有限元模拟和机械测试。然后,为了证明创建机械仿生结构的能力,考虑了承受生理负荷条件的股骨近端,并设计和制造了适合股骨头的结构。

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