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Subject-specific multi-validation of a Finite Element model of ovine cervical functional spinal units

机译:绵羊颈部功能性脊柱单元的有限元模型的受试者特异性多重验证

摘要

The complex motion and geometry of the spine in the cervical region makes it difficult to determine how loads are distributed through adjacent vertebrae or between the zygapophysial (facet) joints and the intervertebral disc. Validated finite element modes can give insight on this distribution. The aim of this contribution was to produce direct validation of subject-specific finite element models of Functional Spinal Units (FSU’s) of the cervical spine and to evaluate the importance of including fibre directionality in the mechanical description of the annulus fibrosus. Eight specimens of cervical FSU’s were prepared from five ovine spines and mechanically tested in axial compression monitoring overall load and displacements as well as local facet joints pressure and displacement. Subject-specific finite element models were produced from microCT image data reproducing the experimental setup and measuring global axial force and displacement as well as local facet joints displacement and contact forces. Material models and parameters were taken from the literature, testing isotropic and anisotropic materials for the annulus fibrosus. The validated models showed that adding the direction of the fibres to their non-linear behaviour in the description of the annulus fibrosus improves the predictions at large strain values but not at low strain values. The load transferred through the facet joints was always accurate, irrespective of the annulus material model, while the predicted facet displacement was larger than the measured one but not significantly. This is, to the authors’ knowledge, the first subject-specific direct validation study on a group of specimens, accounting for inter-subject variability.
机译:颈椎区域中脊柱的复杂运动和几何形状使得很难确定载荷如何通过相邻的椎骨或在po突(小关节)关节与椎间盘之间分配。经过验证的有限元模式可以深入了解这种分布。这项贡献的目的是对颈椎功能性脊髓单位(FSU)的特定于对象的有限元模型进行直接验证,并评估在纤维环的机械描述中包括纤维方向性的重要性。从五个羊棘制备了八个宫颈FSU标本,并在轴向压缩中进行了机械测试,以监测总体载荷和位移以及局部小关节的压力和位移。特定对象的有限元模型是由microCT图像数据生成的,该数据再现了实验设置并测量了整体轴向力和位移以及局部小关节的位移和接触力。材料模型和参数取自文献,测试了纤维环的各向同性和各向异性材料。经过验证的模型表明,在纤维环的描述中将纤维的方向添加到其非线性行为中,可以改善在大应变值下的预测,但在低应变值下不会提高预测。不管环面材料模型如何,通过小关节传递的载荷始终是准确的,而预测的小关节位移大于测量的小关节位移,但不显着。据作者所知,这是第一个针对一组标本的特定于主题的直接验证研究,它考虑了受试者之间的差异。

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