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首页> 外文期刊>Acta biomaterialia >Investigation of the mechanical properties and porosity relationships in selective laser-sintered polyhedral for functionally graded scaffolds.
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Investigation of the mechanical properties and porosity relationships in selective laser-sintered polyhedral for functionally graded scaffolds.

机译:功能梯度支架的选择性激光烧结多面体的力学性能和孔隙率关系的研究。

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摘要

An important requirement for a bone tissue engineering scaffold is a stiffness gradient that mimics that of native bone. Such scaffolds can be achieved by controlling their structure and porosity and are termed functionally graded scaffolds (FGS). Currently, the main challenges in FGS fabrication include the iterative and tedious design process as well as a heavy reliance on the user's CAD/CAM skills. This work aims to bring automated FGS production a step closer by providing a database that correlates scaffold porosity values and the corresponding compressive stiffness and integrating it into the design process. To achieve this goal, scaffolds with different structural configurations were designed using CASTS (Computer Aided System for Tissue Scaffolds), an in-house developed library system consisting of 13 different polyhedral units that can be assembled into scaffold structures. Polycaprolactone (PCL) was chosen as the scaffold material, while selective laser sintering, a powder-based rapid prototyping or additive manufacturing system was employed to fabricate the scaffolds. Mathematical relations correlating scaffold porosity and compressive stiffness readings were formulated and compiled. In addition, cytotoxicity assessment was conducted to evaluate the toxicity of the fabricated PCL scaffolds. Lastly, a brief demonstration of how the formulated relations are used in the FGS design process is presented.
机译:对骨组织工程支架的重要要求是模仿天然骨的刚度梯度。此类支架可通过控制其结构和孔隙率来实现,并称为功能梯度支架(FGS)。当前,FGS制造中的主要挑战包括迭代和繁琐的设计过程以及对用户CAD / CAM技能的高度依赖。这项工作旨在通过提供一个将脚手架孔隙率值与相应的压缩刚度相关联并将其集成到设计过程中的数据库,使自动FGS生产更近一步。为了实现这一目标,使用CASTS(组织支架计算机辅助系统)设计了具有不同结构构型的支架,这是一种内部开发的库系统,由13种不同的多面体单元组成,可以组装成支架结构。选择聚己内酯(PCL)作为支架材料,同时进行选择性激光烧结,基于粉末的快速原型制作或增材制造系统来制造支架。建立并汇编了与支架孔隙率和抗压刚度读数相关的数学关系式。另外,进行细胞毒性评估以评估所制备的PCL支架的毒性。最后,简要说明了如何在FGS设计过程中使用公式化的关系。

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