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Numerical simulations of bioextruded polymer scaffolds for tissue engineering applications

机译:用于组织工程应用的生物挤压聚合物支架的数值模拟

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摘要

Scaffolds provide a temporary mechanical and vascular support for tissue regeneration while shaping the in-growth tissues. These scaffolds must be biocompatible, biodegradable, enclose appropriate porosity, pore structure and pore distribution, and have optimal structural and vascular performance, with both surface and structural compatibility. Surface compatibility means a chemical, biological and physical suitability to the host tissue. Structural compatibility corresponds to an optimal adaptation to the mechanical behaviour of the host tissue. Recent advances in the design of tissue engineering scaffolds are increasingly relying on computer-aided design modelling and numerical simulations. The design of optimized scaffolds based on fundamental knowledge of their macro microstructure is a relevant topic of research. This research work presents a comparison between experimental compressive data and numerical simulations of bioextruded polymer scaffolds with different pore sizes for the elastic and plastic domain. Constitutive behaviour models of cellular structures are used in numerical simulations to compare numerical data with the experimental compressive data. Vascular simulation is also used in the design process of the extrusion-based scaffolds in order to define an optimized scaffold design.
机译:支架在塑造生长中的组织时为组织再生提供了暂时的机械和血管支持。这些支架必须是生物相容的,可生物降解的,包含适当的孔隙率,孔结构和孔分布,并具有最佳的结构和血管性能,并具有表面和结构相容性。表面相容性是指对宿主组织的化学,生物学和物理适应性。结构相容性对应于对宿主组织机械行为的最佳适应。组织工程支架设计的最新进展越来越依赖于计算机辅助设计建模和数值模拟。基于其宏观微观结构基础知识的优化支架的设计是研究的相关主题。这项研究工作提供了实验压缩数据与具有不同孔径的弹性和塑性域生物挤出聚合物支架数值模拟之间的比较。在数值模拟中使用了蜂窝结构的本构模型,以将数值数据与实验压缩数据进行比较。在基于挤压的脚手架的设计过程中还使用了血管模拟,以定义优化的脚手架设计。

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