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Feasibility assessment of compliant polymers in TKR.

机译:TKR中符合要求的聚合物的可行性评估。

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摘要

Total knee joint replacements (TKRs) are a commonly used treatment when joint pain becomes a major issue and the function of activities of daily living is impaired. TKRs may last for up to 20 years; however, younger and physically more active patients are receiving TKRs, necessitating increased prosthesis life-time. There has been considerable interest in more cartilage-like materials for the tibial inlay of a TKR. Compliant, rubbery polymers may be a first step towards such a material.;The contact area of the articulating implant surfaces was on average 345% greater in PCU than in UHMWPE and contact pressure was on average 77% lower in PCU than in UHMWPE. The difference between TKRs simulated with a PCU tibial inlay and those simulated with a UHMWPE inlay increased with increasing flexion angle. The contact pressures measured in TKRs simulated with a PCU tibial inlay were well below values that are expected to cause damage to the polymer, possibly reducing the risk of wear. The contact areas found in TKRs simulated with a PCU tibial inlay were close to what has been reported for the natural knee.;Considering the low contact pressures even at high flexion angles, where initial congruency is limited, it may be feasible to design less conforming knee prostheses that still exhibit low contact pressures, allowing for a greater range of motion. The reported results strongly indicate that compliant polymers may offer an opportunity to improve current TKRs.;In this thesis, finite element analysis (FEA) was utilized to assess the feasibility of polycarbonate urethane (PCU) in a TKR application. Mechanical characterisation of PCU55D and PCU80A was performed in order to better understand the deformation behaviour of these materials. Mechanical test data was then used to tune and validate a hyperelastic material model. In a last step, the material model was applied to a static FE knee model which was used to simulate five discrete loading cases: three gait cycle events, stair climbing and squatting. Contact pressure, contact area and von Mises stress of the PCU inlay were compared to literature and to a standard ultra-high molecular weight polyethylene (UHMWPE) inlay.
机译:当关节痛成为主要问题并且损害日常生活活动时,通常采用全膝关节置换术(TKR)。 TKR可能持续长达20年;然而,年轻且身体活跃的患者正在接受TKR,因此需要延长假体的使用寿命。对于TKR的胫骨镶嵌物,人们越来越关注软骨样材料。符合要求的橡胶状聚合物可能是迈向这种材料的第一步。在PCU中,与UHMWPE相比,关节植入物表面的接触面积平均要大345%,在PCU中,与UHMWPE相比,接触压力平均要低77%。用PCU胫骨嵌体模拟的TKR和用UHMWPE嵌体模拟的TKR之间的差异随着屈曲角度的增加而增加。用PCU胫骨嵌体模拟的TKR中测得的接触压力远低于预期对聚合物造成损害的值,可能降低了磨损风险。用PCU胫骨嵌件模拟的TKR中发现的接触面积接近自然膝的报道。;考虑到即使在初始弯曲度受限的高屈曲角度也具有较低的接触压力,设计较不贴合的身体可能是可行的膝关节假体仍显示出较低的接触压力,从而允许更大范围的运动。报道的结果有力地表明,顺应性聚合物可能会提供改进当前TKR的机会。在本文中,利用有限元分析(FEA)来评估聚碳酸酯聚氨酯(PCU)在TKR应用中的可行性。为了更好地了解这些材料的变形行为,对PCU55D和PCU80A进行了机械表征。然后将机械测试数据用于调整和验证超弹性材料模型。在最后一步中,将材料模型应用于静态FE膝盖模型,该模型用于模拟五个离散的载荷情况:三个步态周期事件,爬楼梯和下蹲。将PCU嵌体的接触压力,接触面积和von Mises应力与文献和标准超高分子量聚乙烯(UHMWPE)嵌体进行了比较。

著录项

  • 作者

    Burger, Andreas.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 M.Sc.Eng.
  • 年度 2009
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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