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首页> 外文期刊>Journal of biomedical materials research, Part A >Polymer Scaffolds With Interconnected Spherical Pores and Controlled Architecture for Tissue Engineering: Fabrication, Mechanical Properties, and Finite Element Modeling
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Polymer Scaffolds With Interconnected Spherical Pores and Controlled Architecture for Tissue Engineering: Fabrication, Mechanical Properties, and Finite Element Modeling

机译:具有互连的球形孔和组织工程控制体系结构的聚合物支架:制造,力学性能和有限元建模

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摘要

A method is proposed in which the geometric properties of 3D scaffolds with application in tissue engineering can be tailored: porosity, pore size, and interconnection throat size. The architecture of the fabricated scaffolds is analyzed by scanning electron microscopy. The mechanical properties of these structures are discussed on the basis of compression stress-strain measurements. Moreover, the mechanical properties of the scaffolds are estimated by means of finite element modeling (FEM) in which the compression stress-strain test is simulated on an ideal structure based on the crystalline face centered cubic system. The elastic properties of the constructs are explained on the basis of the FEM model that supports the main mechanical conclusion of the experimental results: the compressive modulus in the first linear region does not depend on the geometric characteristics of the pore (pore size, interconnection throat size) but only on the total porosity of the scaffold.
机译:提出了一种方法,其中可以定制3D支架在组织工程中的几何特性:孔隙率,孔径和互连喉部尺寸。通过扫描电子显微镜分析所制造的支架的结构。在压缩应力-应变测量的基础上讨论了这些结构的机械性能。此外,通过有限元建模(FEM)估算支架的机械性能,其中在基于晶体面心立方系统的理想结构上模拟了压缩应力-应变测试。在支持实验结果主要力学结论的FEM模型的基础上解释了结构的弹性特性:第一线性区域中的压缩模量不取决于孔的几何特征(孔尺寸,互连喉道)尺寸),但仅限于支架的总孔隙率。

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