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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >The mechanical response of the ovine lumbar anulus fibrosus to uniaxial, biaxial and shear loads.
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The mechanical response of the ovine lumbar anulus fibrosus to uniaxial, biaxial and shear loads.

机译:绵延腰腹肌对单轴,双轴和剪切载荷的机械响应。

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摘要

Analytical and computational models of the intervertebral disc (IVD) are commonly employed to enhance understanding of the biomechanics of the human spine and spinal motion segments. The accuracy of these models in predicting physiological behaviour of the spine is intrinsically reliant on the accuracy of the material constitutive representations employed to represent the spinal tissues. There is a paucity of detailed mechanical data describing the material response of the reinforced-ground matrix in the anulus fibrosus of the IVD. In the present study, the 'reinforced-ground matrix' was defined as the matrix with the collagen fibres embedded but not actively bearing axial load, thus incorporating the contribution of the fibre-fibre and fibre-matrix interactions. To determine mechanical parameters for the anulus ground matrix, mechanical tests were carried out on specimens of ovine anulus, under unconfined uniaxial compression, simple shear and biaxial compression. Test specimens of ovine anulus fibrosus were obtained with an adjacent layer of vertebral bone/cartilage on the superior and inferior specimen surface. Specimen geometry was such that there were no continuous collagen fibres coupling the two endplates. Samples were subdivided according to disc region - anterior, lateral and posterior - to determine the regional inhomogeneity in the anulus mechanical response. Specimens were loaded at a strain rate sufficient to avoid fluid outflow from the tissue and typical stress-strain responses under the initial load application and under repeated loading were determined for each of the three loading types. The response of the anulus tissue to the initial and repeated load cycles was significantly different for all load types, except biaxial compression in the anterior anulus. Since the maximum applied strain exceeded the damage strain for the tissue, experimental results for repeated loading reflected the mechanical ability of the tissue to carry load, subsequent to the initiation of damage. To our knowledge, this is the first study to provide experimental data describing the response of the 'reinforced-ground matrix' to biaxial compression. Additionally, it is novel in defining a study objective to determine the regionally inhomogeneous response of the 'reinforced-ground matrix' under an extensive range of loading conditions suitable for mechanical characterisation of the tissue. The results presented facilitate the development of more detailed and comprehensive constitutive descriptions for the large strain nonlinear elastic or hyperelastic response of the anulus ground matrix.
机译:常常使用椎间盘(IVD)的分析和计算模型,以增强人脊柱和脊柱运动段的生物力学的理解。这些模型在预测脊柱的生理行为方面的准确性本质上依赖于用于代表脊髓组织的材料本构成表示的准确性。缺乏描述IVD的血管纤维粒子中增强地基质的材料响应的详细机械数据。在本研究中,“增强地基质”被定义为具有嵌入的胶原纤维但不主动承载轴向载荷的基质,从而掺入纤维 - 纤维和纤维 - 基质相互作用的贡献。为了确定血管基质基质的机械参数,在绵羊血管标本下进行机械测试,在无束的单轴压缩下,简单的剪切和双轴压缩。用相邻的脊髓骨/软骨上的上下标本表面上获得卵血管纤维素的试验。试样几何形状使得没有连续的胶原纤维偶联两个胎盘。根据盘区域 - 前,横向和后部细分样品 - 以确定血管机械反应中的区域不均匀性。标本以足以避免从组织的流出流体和初始载荷施用下的典型应力 - 应变响应,并且在重复载荷下针对三种负载类型测定。除了前余压中的双轴压缩之外,除了所有负荷类型之外,血管组织对初始和重复载荷循环的响应显着不同。由于最大施加的应变超过组织的损伤菌株,因此反复加载的实验结果反映了组织的机械能力随后在损伤时随后携带载荷。为了我们的知识,这是第一次提供描述“加强地矩阵”对双轴压缩的响应的实验数据的研究。另外,定义研究目的是新颖的,以确定在适合于组织机械表征的大量装载条件下的“加强地基质”的区域不均匀响应。呈现的结果促进了对血管研磨基质的大应变非线性弹性或超弹性响应的更详细和综合组成型描述的发展。

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