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Cross-modal effects of damage on mechanical behavior of human cortical bone.

机译:损伤对人类皮质骨力学行为的交叉影响。

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摘要

In order to understand understanding of the fracture/damage process and risk of fracture with decreased human cortical bone properties, there has been great number of studies for predicting the stiffness and strength of bone, such human cortical bone. However, the effects of damage are usually studied in terms of the mechanical property degradation of modulus and strength in the loading mode in which damage was accumulated. In-vivo loading and understanding of damage is complex. Therefore, in this dissertation, the effect of damage on human cortical bone in one loading mode on other mode's mechanical properties was investigated.; To investigate the effect of test conditions and recovery time, mechanical tests were conducted with zero-stress hold and zero-strain hold, and with from 1 minute to 100 minutes recovery time. Damage effects were measured from pre- and post-damage diagnostic cycles. Results showed that zero-strain hold condition and longer recovery time yield less degradation in modulus measures.; To investigate cross-modal effect of damage, 7-cycle damage test was conducted. Cross-modal effect of damage were measures from three pre-damage (tension, compression and torsion) and three-post-damage diagnostic cycles about the one of three damage loading mode with three different damage strain magnitudes. Results showed that axial damage affected modulus degradation in axial mode and torsional damage affected torsional modulus degradation. Viscoelastic parameter and strength degradation showed similar results. This may caused by different damage morphology of tension, compression and torsion damage (i.e. microcracks and diffuse damage).; Also bi-modal damage test was conducted to investigate cross-modal effect of damage on human cortical bone. Damage was induced by tension+torsion or compression+torsion mode with two different sets of magnitudes. The results also showed that degradation of axial modulus was affected by both damage mode and damage magnitudes while torsional degradation was only affected by damage magnitude. This results support un-coupled effects between axial and torsional mode, which investigated in previous single mode damage test.; Finally, the contribution of linear microcracks and diffuse damage to mechanical properties degradation was studied by micromechanical damage model. The model compared to tensile damage experimental data and showed the contribution of linear microcracks to the total degradation was very small; suggesting that diffuse damage could have primarily responsibility to property degradation by tensile damage in human cortical bone.
机译:为了理解对骨折/损伤过程以及人类皮质骨特性降低的骨折风险的理解,已经进行了许多研究来预测诸如人类皮质骨之类的骨的刚度和强度。但是,通常根据累积损伤的加载模式下的模量和强度的机械性能退化来研究损伤的影响。体内负荷和对损伤的理解是复杂的。因此,本文研究了一种加载方式对人体皮质骨的损伤对另一种方式的力学性能的影响。为了研究测试条件和恢复时间的影响,在零应力保持和零应变保持条件下进行了机械测试,恢复时间为1分钟至100分钟。从损坏前和损坏后的诊断周期测量损坏效果。结果表明,零应变保持条件和更长的恢复时间在模量测量中降低了退化。为了研究损伤的交叉模态效应,进行了7周期损伤测试。损伤的交叉模态效应是从三个损伤前(拉伸,压缩和扭转)和三个损伤后诊断循环(关于三种损伤加载模式之一,具有三种不同的损伤应变大小)进行的测量。结果表明,轴向损伤会影响模量在轴向模式下的降解,而扭转损伤会影响扭转模量的下降。粘弹性参数和强度降低显示出相似的结果。这可能是由于拉伸,压缩和扭转损伤(即微裂纹和弥散性损伤)的不同损伤形态引起的。还进行了双峰损伤测试,以研究损伤对人皮质骨的交叉峰效应。拉伸是通过拉伸+扭转或压缩+扭转两种模式产生的。结果还表明,轴向模量的降低受损伤模式和损伤量的影响,而扭转降解仅受损伤量的影响。该结果支持轴向模式和扭转模式之间的非耦合效应,这在先前的单模损伤测试中已进行了研究。最后,通过微机械损伤模型研究了线性微裂纹和弥散损伤对机械性能退化的贡献。该模型与拉伸损伤实验数据进行比较,结果表明线性微裂纹对总降解的贡献非常小。这表明弥散性损伤可能主要归因于人类皮质骨的拉伸损伤引起的财产退化。

著录项

  • 作者

    Joo, Won.;

  • 作者单位

    Case Western Reserve University.;

  • 授予单位 Case Western Reserve University.;
  • 学科 Engineering Biomedical.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 317 p.
  • 总页数 317
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;机械、仪表工业;
  • 关键词

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