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Multi-segment FEA of the human lumbar spine including the heterogeneity of the annulus fibrosus

机译:腰椎多段有限元分析,包括纤维环的异质性

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This study pursues the numerical validation of human lumbar spine segments. By means of the finite element (FE) method, computational analyses are carried out of various load cases. In particular Flexion–Extension, Lateral Bending and Axial Torque are considered. By means of a literature review the underlying constitutive data is verified. In this context, the heterogeneity of the annulus fibrosus, the transversely isotropic stress response of the spinal ligaments and aspects of the FE discretization are particularly emphasized. The numerical results show good agreement with experimental investigations for Extension and Axial Torque for a FE model that accounts for intact human lumbar spine response. In Flexion and Lateral Bending, however, the results of the intact FE-model do not properly account for the experimental data. A good correlation for these load cases can be found by taking disc degeneration into account in the FE-model. This fact shows that tissue degeneration plays a key role in the current validation process and must be accounted for if the lumbar spine specimen is employed for spinal implant evaluation. A degenerated FE-model that represents the stage of degeneration of the specimen and fits the experimental data for all load cases could not be found in this study and warrants further work in this area.
机译:这项研究追求人类腰椎节段的数值验证。通过有限元(FE)方法,可以对各种工况进行计算分析。特别要考虑屈伸,侧弯和轴向扭矩。通过文献综述,对基础构成数据进行了验证。在这种情况下,尤其要强调纤维环的异质性,脊髓韧带的横向各向同性应力响应以及有限元离散化的方面。数值结果表明,对于扩展了人体腰椎反应的有限元模型,我们对伸展和轴向扭矩进行了实验研究。但是,在屈曲和横向弯曲中,完整的有限元模型的结果不能正确说明实验数据。通过在FE模型中考虑圆盘退化,可以找到与这些载荷工况的良好相关性。这一事实表明,组织变性在当前的验证过程中起着关键作用,如果采用腰椎标本进行脊柱植入物评估,则必须予以考虑。在该研究中找不到能够代表样品退化阶段并适合所有载荷情况的实验数据的退化有限元模型,因此有必要在该领域进行进一步的研究。

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