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Parametric Finite Element Model and Mechanical Characterisation of Electrospun Materials for Biomedical Applications

机译:用于生物医学应用的电纺材料的参数有限元模型与机械表征

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摘要

Electrospun materials, due to their unique properties, have found many applications in the biomedical field. Exploiting their porous nanofibrous structure, they are often used as scaffolds in tissue engineering which closely resemble a native cellular environment. The structural and mechanical properties of the substrates need to be carefully optimised to mimic cues used by the extracellular matrix to guide cells’ behaviour and improve existing scaffolds. Optimisation of these parameters is enabled by using the finite element model of electrospun structures proposed in this study. First, a fully parametric three-dimensional microscopic model of electrospun material with a random fibrous network was developed. Experimental results were obtained by testing electrospun poly(ethylene) oxide materials. Parameters of single fibres were determined by atomic force microscopy nanoindentations and used as input data for the model. The validation was performed by comparing model output data with tensile test results obtained for electrospun mats. We performed extensive analysis of model parameters correlations to understand the crucial factors and enable extrapolation of a simplified model. We found good agreement between the simulation and the experimental data. The proposed model is a potent tool in the optimisation of electrospun structures and scaffolds for enhanced regenerative therapies.
机译:由于其独特的特性,电纺材料在生物医学领域找到了许多应用。利用它们的多孔纳米纤维结构,它们通常用作组织工程中的支架,这与天然细胞环境密切相关。底物的结构和力学性能需要小心地优化,以模拟细胞外基质用于引导细胞的行为并改善现有支架。通过使用本研究中提出的Electrom ow结构的有限元模型,使能这些参数的优化。首先,开发了具有随机纤维网络的电纺材料的全参数三维微观模型。通过测试ElectromeOn聚(乙烯)氧化物材料获得实验结果。单纤维的参数通过原子力显微镜纳米凸缘测定并用作模型的输入数据。通过将模型输出数据与用于电纺器垫获得的拉伸试验结果进行比较来执行验证。我们对模型参数相关性进行了广泛的分析,以了解简化模型的关键因素和启用外推。我们在模拟和实验数据之间找到了良好的一致性。所提出的模型是优化电气纺织结构和支架的有效工具,用于增强再生疗法。

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