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A COMPRESSIBLE, TRANSVERSELY ISOTROPIC, HYPERELASTIC CONSTITUTIVE MODEL OF THE GUINEA PIG SPINAL CORD WHITE MATTER

机译:豚鼠脊髓白质的可压缩,横向各向同性,高弹性组成型模型

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Slow compression spinal cord injuries occur when the spinal canal narrows, the consequence of degenerative, infective, or oncologic legion growth, and exerts pressure throughout the spinal cord. Transverse tissue compression results in an amalgamation of mechanical insults at the cellular level [1]. However, the mechanism of cellular injury has yet to be elucidated. We have recently developed a hyperelastic, isotropic plane strain finite element model (FEM) of the guinea pig spinal cord white matter response to transverse compression based on force-deformation curves measured in vitro. The strongest correlation with in vitro axonal injury density was the combination of the in-plane shear stress with the in- and out-of-plane normal stresses quantified using the FEM [2]. However, we hypothesize that the guinea pig spinal cord white matter is a transversely isotropic material. Material anisotropy must be incorporated into the FEM to achieve enhanced model accuracy, specifically, the prediction of axial stresses within the spinal cord parenchyma during transverse tissue compression. Therefore, the objective of the present study was to propose a compressible, transversely isotropic, hyperelastic constitutive model of the guinea pig spinal cord white matter.
机译:慢压缩脊髓损伤发生时椎管变窄,退行性,感染,肿瘤学或军团生长的结果,并且施加在整个脊髓压力。横向组织压缩结果在机械损伤的合并在细胞水平[1]。然而,细胞损伤的机制尚未阐明。我们最近开发超弹性,豚鼠脊髓白质响应于基于在体外测量力 - 变形曲线的横向压缩的各向同性平面应变有限元模型(FEM)。与体外轴突损伤密度最强相关性的面内剪切应力的组合与所述入点和出的平面正应力利用FEM [2]定量。然而,我们推测豚鼠脊髓白质是一种横向各向同性材料。材料的各向异性必须被并入FEM实现增强的模型的准确性,具体地,脊髓实质内轴向应力的横向组织压缩过程中预测。因此,本研究的目的是提出一个压缩,横向各向同性,材料的本构的豚鼠脊髓白质模型。

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