Chapter 4. Computational Design and Modeling of Linear and Nonlinear Elastic Tissue Engineering Scaffold Triply Periodic Minimal Surface (TPMS) Porous Architecture

S. Hollister
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引用次数: 1

Abstract

The concept of “functional tissue engineering” proposes that biomaterial scaffolds should be developed with mechanical properties that approximate those of native tissues. This can present a challenge as soft tissues exhibit at a minimum nonlinear elastic properties. The question becomes how to computationally estimate effective properties for scaffolds made from nonlinear materials and whether these nonlinear effective properties can be estimated from linear homogenization analysis. In this chapter, contact analyses are performed for both Triply Minimal Periodic Surface (TPMS) and P Schwartz architecture for 1×1×1 to 5×5×5 repeated unit cells for both linear and nonlinear (Neo-Hookean) base materials. These are compared to linear homogenization analyses for the same scaffold architecture. Results show that nonlinear effective properties show the same trend of decreasing material coefficients as linear effective properties as scaffold porosity increases. Furthermore, linear homogenization resulted bounded both linear and nonlinear multi-cell contact analyses. The results provide an initial insight into the behavior of porous scaffolds made from nonlinear materials as well as suggesting that linear homogenization estimates can be used as initial bounds for nonlinear effective properties of porous scaffolds.
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第四章。线性与非线性弹性组织工程支架三周期最小表面多孔结构的计算设计与建模
“功能性组织工程”的概念提出,生物材料支架应该开发具有接近天然组织的机械性能。这是一个挑战,因为软组织表现出最小的非线性弹性特性。如何计算非线性材料制成的支架的有效性能,以及这些非线性有效性能是否可以通过线性均质分析来估计。在本章中,对1×1×1至5×5×5线性和非线性(Neo-Hookean)基料的重复单元格进行了三层最小周期表面(TPMS)和P Schwartz结构的接触分析。将这些与相同支架结构的线性均质分析进行比较。结果表明,随着支架孔隙率的增加,材料系数的非线性有效性能与线性有效性能呈现相同的下降趋势。此外,线性均匀化导致线性和非线性多细胞接触分析有界。这些结果为非线性材料制成的多孔支架的行为提供了初步的见解,并表明线性均匀化估计可以用作多孔支架非线性有效性能的初始界限。
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