孔力学
椎间盘
生物力学
面(心理学)
流离失所(心理学)
压缩(物理)
材料科学
解剖
机械
有限元法
生物医学工程
医学
结构工程
物理
多孔介质
复合材料
工程类
多孔性
五大性格特征
社会心理学
人格
心理学
心理治疗师
作者
Fabio Galbusera,Hendrik Schmidt,Cornelia Neidlinger‐Wilke,Hans‐Joachim Wilke
标识
DOI:10.1080/10255842.2010.493522
摘要
Intervertebral disc degeneration involves changes in the spinal anatomical structures. The mechanical relevance of the following changes was investigated: disc height, endplate sclerosis, disc water content, permeability and depressurisation. A poroelastic nonlinear finite element model of the L4-L5 human spine segments was employed. Loads represented a daily cycle (500 N compression combined with flexion-extension motion for 16 h followed by 200 N compression for 8 h). In non-degenerative conditions, the model predicted a diurnal axial displacement of 1.32 mm and a peak intradiscal pressure of 0.47 MPa. Axial displacement, facet force and range of motion in flexion-extension are decreased by decreasing disc height. By decreasing the initial water content, axial displacement, facet force and fluid loss were all reduced. Endplate sclerosis did not have a significant influence on the calculated results. Depressurisation determined an increase of the disc effective stress, possibly inducing failure. Degenerative instability was not calculated in any simulations.
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