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Development of a 4-vertebrae, detailed finite element model of thoracolumbar spine.

机译:胸腰椎的4个椎骨的详细有限元模型的开发。

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摘要

Osteoporosis is a growing health care problem in the United States, with an associated annual cost of billions of dollars to society. Bone fracture is the overriding consequence of osteoporosis with the single highest occurrence is found in the vertebrae, estimated to be at hundreds of thousands cases annually. To minimize the incidence of these injuries through safety interventions or therapeutic regimens, a detail understanding of the fracture mechanisms and the effects of the varying vertebral properties on such occurrences is necessary. The finite element method has proven to be the most versatile means to study the detailed stress and strain distribution of any object under various loading conditions.;A detailed finite element (FE) model of the human thoracolumbar spinal column, consisted of vertebral level T11 through L2, was developed using anatomically accurate geometry from cadaveric measurements. Besides the inclusion of 4 vertebrae, this model incorporated such features as using transversely isotropic formulation to model the vertebral centrum material properties, simulating the intervertebral disc annulus by fiber-reinforced ground substance, and representing the anterior longitudinal ligaments with elastic elements. Furthermore, the elastic properties of the posterior joints, hypothesized to have significant influences on the vertebral responses, were determined by correlating the model's predictions to the data recorded in the compressive testing of two spinal segments and a thoracolumbar spinal specimen of similar configuration.;The predictions of the FE model showed that the engaging mechanisms of the posterior joints, together with the mechanical behaviors of the intervertebral discs, caused the nonlinearity seen in the overall deflection of the thoracolumbar spinal column under compressive loading. Furthermore, the characteristics of the measured nonlinear load strain curves were primarily influenced by the engagement of the posterior joints. The finite element model was used to parametrically investigate the effects of some age-related changes (centrum modulus, thickness of the cortical shell and endplates, and cortical shell curvature) on the vertebral responses. Among the parameters investigated, the reductions in the centrum modulus produced most significant changes in the vertebral responses.
机译:在美国,骨质疏松症是一个日益严重的医疗保健问题,每年给社会带来数十亿美元的相关费用。骨骨折是骨质疏松症的主要后果,在椎骨中发现的发生率最高,估计每年为数十万例。为了通过安全干预或治疗方案将这些伤害的发生率降到最低,必须详细了解骨折的机制以及变化的椎骨特性对这种情况的影响。事实证明,有限元方法是研究各种载荷条件下任何物体的详细应力和应变分布的最通用方法。人胸腰椎脊柱的详细有限元(FE)模型由椎体T11到椎体L2是根据尸体测量结果使用解剖学上精确的几何形状开发的。除了包含4个椎骨外,该模型还具有以下特征:使用横向各向同性的公式来模拟椎体中枢的材料特性,通过纤维增强的地面物质模拟椎间盘环以及用弹性元件表示前纵韧带。此外,通过将模型的预测与两个脊柱节段和相似构型的胸腰椎脊柱标本的压缩测试中记录的数据相关联,确定了假设对椎骨反应有重大影响的后关节的弹性。 FE模型的预测表明,后关节的接合机制以及椎间盘的力学行为,导致了在压缩载荷下胸腰椎脊柱整体偏转中的非线性。此外,所测量的非线性载荷应变曲线的特性主要受后关节接合的影响。有限元模型用于参数化研究一些与年龄相关的变化(中心模量,皮壳和终板的厚度以及皮壳曲率)对椎骨反应的影响。在所研究的参数中,中枢模量的降低在椎骨反应中产生了最显着的变化。

著录项

  • 作者

    Cao, Khoa Dang.;

  • 作者单位

    Wayne State University.;

  • 授予单位 Wayne State University.;
  • 学科 Engineering Biomedical.;Biophysics Medical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 309 p.
  • 总页数 309
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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