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Validation of a Finite Element Model of the Young Normal Lower Cervical Spine

机译:青年正常的下颈椎有限元模型的验证

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A Finite Element Model (FEM) of the young adult human cervical spine has been developed as a first step in studying the process of spondylotic degeneration. The model was developed using normal geometry and material properties for the lower cervical spine. The model used a three-zone composite disc annulus to reflect the different material properties of the anterior, posterior, and lateral regions of the annulus. Nonlinear ligaments were implemented with a toe region to help the model achieve greater flexibility at low loads. The model was validated against experimental data for normal, nondegenerated cervical spines tested in flexion and extension, right and left lateral bending, and right and left axial rotation at loads of 0.33, 0.5, 1.0, 1.5, and 2.0 Nm. The model was within in vitro experimental standard deviation corridors 100% of the load range for right and left lateral bending. The model was within 80% of the load response corridors for extension and flexion with a deviation <0.3° from the SD corridors. For axial rotation, the model was within 70% of the SD corridors for left axial rotation within 83% of right axial rotation responses. The deviation from SD corridors for axial rotation was generally <0.2°.
机译:作为研究成人脊柱变性过程的第一步,已经开发了青年成人颈椎的有限元模型(FEM)。该模型是使用正常的几何形状和下颈椎的材料特性开发的。该模型使用三区复合盘环来反映环的前,后和外侧区域的不同材料特性。非线性韧带的脚趾区域可帮助模型在低载荷下实现更大的灵活性。该模型针对正常,未退化的颈椎在屈曲和伸展,左右侧向弯曲以及左右轴向旋转(在0.33、0.5、1.0、1.5和2.0 Nm的载荷下进行测试)的实验数据进行了验证。该模型在体外实验标准偏差通道内,左右两侧弯曲的载荷范围为100%。该模型在伸展和弯曲的载荷响应通道的80%以内,与SD通道的偏差<0.3°。对于轴向旋转,模型在SD通道的70%范围内,对于左侧轴向旋转,模型在右侧轴向旋转响应的83%之内。与SD通道轴向旋转的偏差通常<0.2°。

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