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FINITE ELEMENT STUDY OF SPINAL CORD MECHANICS DURING BIOMECHANICAL RESPONSE OF MIDDLE CERVICAL SPINE

机译:中颈椎生物力学响应期间脊髓力学的有限元研究

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The present study is conducted to develop a detailed FE model of spinal cord and to study its behaviour under various loading conditions. To achieve the goal, a previously developed and validated FE model of the middle cervical spine (C3-C5) is utilized. The model is further modified to investigate the stresses that the spinal cord in experiences during cervical spine motion segment in compression and flexion/extension loading modes. The resulting Von Misses stress and axial strain of the anterior and posterior surfaces of the cervical spinal cord are obtained from a set of elements along the C4-C5 disc space of the dural sheath, CSF and cord.The results show that in compression, the anterior surface of spinal cord experiences larger displacement, stress, and strain than those of the posterior surface. Conversely, the analyses show that in flexionextension, the stresses, strains, and displacements are more pronounced in posterior segment of the spinal cord. In extension, the posterior disc bulge applies pressure onto the Posterior Longitudinal Ligament and thereby, applying local pressure on the spinal cord. The FE results show a stress concentration at the point of contact between disc and spinal cord. Furthermore, the FE results of flexion test show similar stress concentration characteristic at the point of contact. However, the local stress on spinal cord is more pronounced in flexion than extension at the C4-C5 area of spinal cord. It was also determined the compressiveload resulted in the highest stress concentration on the spinal cord.
机译:进行本研究以开发脊髓的详细FE模型,并在各种装载条件下研究其行为。为了实现目标,利用了先前开发的中间颈椎(C3-C5)的验证和验证的FE模型。进一步修饰该模型以研究脊髓在压缩和屈曲/延伸的颈椎运动段期间的经验中的应力。由此产生的von错失宫颈脊髓的前表面和后表面的应力和轴向应变从多云鞘,CSF和绳索的C4-C5椎间盘空间的一组元素获得。结果表明压缩,脊髓的前表面经历较大的位移,应力和应变比后表面的突变。相反,分析表明,在弯曲延伸,应力,菌株和位移在脊髓后部更加明显。在延伸方面,后圆盘凸起将压力施加到后纵韧带上,从而施加在脊髓上的局部压力。 Fe结果表明盘和脊髓之间接触点的应力浓度。此外,屈曲试验的Fe结果显示在接触点处具有类似的应力浓度特性。然而,脊髓的局部应力比脊髓C4-C5面积的延伸更明显。还确定了脊髓上的压缩导致最高应力浓度。

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