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Biomechanical response of a novel intervertebral disc prosthesis using functionally graded polymers: A finite element study

机译:功能梯度聚合物新型椎间盘假体的生物力学响应:有限元研究

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摘要

With their gradual and continuous properties, functionally graded polymers (FGP) have high potentials to reproduce the regional variation in microstructure/property of the natural intervertebral disc and, therefore, the functional anatomy and biomechanics of the soft tissue. This paper evaluates by finite element analysis the biomechanical response and stress distribution of a novel disc prosthesis using FGP. The kinetics of the FGP parameters is designed using experimental data issued from linear ethylene copolymers over a wide crystallinity range. The radial variation in crystallinity index within the disc prosthesis varies gradually and continuously following a special function in the aim to tailor and optimize the FGP parameters. The experimental data of a healthy human cervical spine segment are used to predict the optimal model of the FGP disc prosthesis loaded under different physiological loading conditions, i.e. rotation, lateral bending and flexion/extension. The results suggest that the FGP parameters can be tailored to control the stiffening, the non-linear behavior, the inelastic effects and the stress distribution in the aim to propose the optimal prosthesis model giving the great opportunity of patient-specific FGP prostheses via 3D printing technologies.
机译:通过逐渐和连续的性质,功能梯度聚合物(FGP)具有高潜力,以再现自然椎间盘的微观结构/性能的区域变化,因此,软组织的功能性解剖和生物力学。本文通过有限元分析进行了使用FGP的新型光盘假体的生物力学响应和应力分布来评估。 FGP参数的动力学使用在宽结晶度范围内从线性乙烯共聚物发出的实验数据设计。在旨在定制和优化FGP参数的特殊功能之后,光学假体内结晶度指数的径向变化变化逐渐和连续地变化并优化FGP参数。健康人颈脊柱段的实验数据用于预测在不同生理负载条件下加载的FGP光盘假体的最佳模型,即旋转,横向弯曲和弯曲/延伸。结果表明,FGP参数可以定制以控制加强,非线性行为,非弹性效应和应力分布的目标,提出通过3D印刷给予患者特异性FGP假体的最佳假体模型技术。

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