...
首页> 外文期刊>Journal of biomechanical engineering. >Modeling of Facet Articulation as a Nonlinear Moving Contact Problem: Sensitivity Study on Lumbar Facet Response
【24h】

Modeling of Facet Articulation as a Nonlinear Moving Contact Problem: Sensitivity Study on Lumbar Facet Response

机译:关节运动作为非线性移动接触问题的建模:腰椎关节反应的敏感性研究

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

A finite element (FE) based scheme for modeling facet articulation in a spinal motion segment is proposed. The algorithm presented models the facet articulation as a nonlinear progressive contact problem. This algorithm is used to perform a nonlinear FE analysis of a complete L3-L4 motion segment. The role of facets in load transmission through a motion segment and its sensitivity to facet geometric parameters (i.e., spatial orientation of the facets and the gap between the facet articular surfaces) on this load transmission are studied. Compression, flexion, extension, and torsion loads are used in this study. The effect of facetectomy on gross segment response and disk fiber strains is studied by comparing the response of FE models of motion segment with and without facets. Large facet loads are obtained when the motion segment is subjected to torsional and large extension rotation, whereas minimal facet loads are observed under compression and flexion loading. Removal of facets reduces the segment stiffness considerably in torsion and results in higher strain levels in disk fibers. The facet load transmission is sensitive to facet geometric parameters, i.e., spatial orientation and initial facet joint gap. The facet loads increase uniformly with decrease in initial gap between the facet articular surfaces under compression, extension, and torsional loads. The sensitivity to spatial orientation angles of the facet is, however, found to vary with the type of loading. This sensitivity may account for the wide variation in the facet response reported in literature.
机译:提出了一种基于有限元(FE)的建模脊柱运动段中小关节运动的方案。提出的算法将小平面关节建模为非线性渐进接触问题。该算法用于执行完整的L3-L4运动段的非线性有限元分析。研究了小平面在通过运动段进行的载荷传递中的作用及其对小平面几何参数(即小平面的空间方向和小关节表面之间的间隙)的敏感性。在这项研究中使用压缩,弯曲,伸展和扭转载荷。通过比较带有和不带有小平面的运动段有限元模型的响应,研究了小平面切除术对总节段响应和椎间盘纤维应变的影响。当运动段受到扭转和大的延伸旋转时,将获得较大的刻面载荷,而在压缩和弯曲载荷下则观察到最小的刻面载荷。移除小平面会显着降低段的扭转刚度,并导致圆盘纤维中较高的应变水平。小平面载荷传递对小平面几何参数(即空间方向和初始小平面关节间隙)敏感。在压缩,拉伸和扭转载荷下,小平面关节表面之间的初始间隙减小时,小平面载荷均匀增加。然而,发现对小平面的空间定向角的敏感性随载荷的类型而变化。这种敏感性可能解释了文献报道的方面反应的广泛变化。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号