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首页> 外文期刊>Journal of Biomechanics >The effect of axial compression and distraction on cervical facet mechanics during anterior shear, flexion, axial rotation, and lateral bending motions
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The effect of axial compression and distraction on cervical facet mechanics during anterior shear, flexion, axial rotation, and lateral bending motions

机译:轴向压缩和分心对前剪,屈曲,轴向旋转和横向弯曲运动过程中的颈椎面力学的影响

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摘要

The subaxial cervical facets are important load-bearing structures, yet little is known about their mechanical response during physiological or traumatic intervertebral motion. Facet loading likely increases when intervertebral motions are superimposed with axial compression forces, increasing the risk of facet fracture. The aim of this study was to measure the mechanical response of the facets when intervertebral axial compression or distraction is superimposed on constrained, non-destructive shear, bending and rotation motions. Twelve C6/C7 motion segments (70 +/- 13 yr, nine male) were subjected to constrained quasi-static anterior shear (1 mm), axial rotation (4 degrees), flexion (10 degrees), and lateral bending (5 degrees) motions. Each motion was superimposed with three axial conditions: (1) 50N compression; (2) 300 N compression (simulating neck muscle contraction); and, (3) 2.5 mm distraction. Angular deflections, and principal and shear surface strains, of the bilateral C6 inferior facets were calculated from motion-capture data and rosette strain gauges, respectively. Linear mixed-effects models (alpha = 0.05) assessed the effect of axial condition. Minimum principal and maximum shear strains were largest in the compressed condition for all motions except for maximum principal strains during axial rotation. For right axial rotation, maximum principal strains were larger for the contralateral facets, and minimum principal strains were larger for the left facets, regardless of axial condition. Sagittal deflections were largest in the compressed conditions during anterior shear and lateral bending motions, when adjusted for facet side. (C) 2018 Elsevier Ltd. All rights reserved.
机译:亚颈部面是重要的承载结构,但在生理或创伤性椎间运动期间的机械响应很少。根据轴向压缩力叠加椎间动作,刻面装载可能会增加,增加刻面骨折的风险。该研究的目的是测量椎间轴向压缩或分散在受约束,非破坏性剪切,弯曲和旋转运动上叠加时面部的机械响应。对12个C6 / C7运动段(70 +/- 13 YR,9只雄性)受约束的准静态前剪(1mm),轴向旋转(4度),屈曲(10度)和横向弯曲(5度)运动。每种动作叠加有三个轴向条件:(1)50N压缩; (2)300 n压缩(模拟颈部肌肉收缩);并且(3)2.5 mm分心。分别从运动捕获数据和玫瑰花结应变仪计算双侧C6次平面的角偏转和主体和剪切表面菌株。线性混合效果模型(alpha = 0.05)评估了轴向条件的效果。除了轴向旋转期间的最大主体菌株外,最小主体和最大剪切菌株是压缩条件的压缩条件中最大的。对于右轴向旋转,对于对侧平面的最大主菌株,对于左侧,无论轴向条件如何,左侧的最小主管株都较大。当调整面部侧时,在前剪切和横向弯曲运动期间,在压缩条件下是最大的矢状偏转。 (c)2018年elestvier有限公司保留所有权利。

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