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首页> 外文期刊>International Journal of Precision Engineering and Manufacturing >An advanced multi-morphology porous scaffold design method using volumetric distance field and beta growth function
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An advanced multi-morphology porous scaffold design method using volumetric distance field and beta growth function

机译:利用体积距离场和β增长函数的先进的多形态多孔支架设计方法

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摘要

Additive manufacturing (AM) method has been a promising technique to produce three-dimensional (3D) tissue engineering scaffolds comprised of complex pore morphologies. Multi-functional scaffolds fabricated through AM techniques can provide outstanding combinations of mechanical and biological properties including stiffness, strength, toughness, and fluidic permeability. Among the various scaffold design methods, the pore morphology based on triply periodic minimal surface (TPMS) has been of great interest to many researchers due to its easy and accurate controllability on design parameters such as pore size, pore shape, volume fraction, and inner channel interconnectivity. In this paper, we propose a new multi-morphology scaffold design algorithm for building a wide variety of complex hybrid scaffolds composed of multiple TPMS morphologies and arbitrarily-shaped transition boundaries within one scaffold using the volumetric distance field (VDF) and the beta growth function (BGF). Through a variety of design results, we demonstrate the potential to design highly complex and heterogeneous scaffolds with enhancements in stiffness, strength, and permeability. In the method, the resulting scaffold hybrid morphology can be easily and accurately controlled to systematically explore a multitude of transition pore morphologies thereby enabling the optimization of multi-functional properties such as a combination of a high mechanical stiffness together with a high biological diffusion rate.
机译:增材制造(AM)方法已成为一种有前途的技术,可以生产三维(3D)组织工程支架,其中包括复杂的孔形态。通过增材制造技术制造的多功能支架可以提供机械和生物学特性的出色组合,包括刚度,强度,韧性和流体渗透性。在各种脚手架设计方法中,基于三重周期性最小表面(TPMS)的孔形态因其对设计参数(如孔径,孔形状,体积分数和内部尺寸)的简单而精确的可控制性而引起了许多研究人员的关注。通道互连。在本文中,我们提出了一种新的多形态支架设计算法,该算法可使用体积距离场(VDF)和β生长函数构建一个由多个TPMS形态和一个支架内任意形状的过渡边界组成的多种复杂的混合支架。 (BGF)。通过各种设计结果,我们证明了设计具有高度刚度,强度和渗透性的高度复杂且异质支架的潜力。在该方法中,可以轻松,准确地控制所得的支架杂化形态,以系统地探索多种过渡孔形态,从而能够优化多功能性质,例如将高机械刚度与高生物扩散率结合在一起。

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