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Design and initial verification of a novel total knee replacement that incorporates synthetic ligaments to influence knee stability.

机译:一种新型的全膝关节置换术的设计和初步验证,该术式采用了合成韧带来影响膝关节的稳定性。

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摘要

In the United States, the number of patients under the age of 65 who are receiving total knee replacements (TKRs) is rising due to increasing demand for and access to this life-changing orthopaedic procedure. Although this younger population tends to have a higher life expectancy, they have also been shown to have a lower implant survival rate than patients over the age of 65, possibly due to their more active lifestyles. Thus, there will be a rising demand for implants that have both a higher functionality and survivorship to meet performance demands of younger patient's lifestyles.;The purpose of this study was to design and initially verify a novel TKR design that incorporates artificial ligaments into a knee replacement whose stability and eventual kinematic performance will be driven by both geometry and ligamentous structure. A computational model was first developed that incorporated synthetic ligaments into an existing knee replacement within an anatomical knee model using the AnyBody modeling software system. Simulated A/P drawer tests at different flexion angles were analyzed for over 2,916 possible anterior and posterior cruciate ligament location and length combinations to determine the effects of ligament length and location on the A/P stability of the TKR. A complete physical model was then designed and constructed, and the computational model was verified by performing mechanical testing on an Instron system. A/P drawer tests were performed under 710 N of simulated body weight. Tibial A/P displacement was tracked for the TKR system with and without cruciate ligaments to determine the effect of ligament placement on resulting TKR stability.;Ligament length and location were found to significantly influence knee laxity and knee flexion. Knee flexion was determined to be more sensitive to the ACL attachment location on the femur than on the tibia. As ACL insertion location moved posteriorly on the femur, it was found to decrease ACL ligament strain enabling a higher range of flexion. In general, as ACL and PCL length increased, the A/P laxity of the TKR system increased linearly. Interestingly, range of motion was found to be more dependent on ligament attachment location than ligament lengths.;Knee replacement stability is clearly affected by synthetic ligament length and location within a TKR system. A knee replacement that incorporates synthetic ligaments with calibrated location and lengths should be able to significantly influence kinematic performance of the TKR system, possibly influencing long-term functional outcomes.
机译:在美国,由于对这种改变生活的整形外科手术的需求和使用的增加,正在接受全膝关节置换(TKR)的65岁以下患者的数量正在增加。尽管这个年轻人群的预期寿命往往更高,但也显示出他们的植入物存活率低于65岁以上的患者,这可能是由于他们的生活方式更加活跃。因此,对具有更高功能性和生存能力的植入物的需求将不断增长,以满足年轻患者生活方式的性能需求。这项研究的目的是设计并初步验证将人造韧带纳入膝盖的新型TKR设计。几何形状和韧带结构都将驱动其稳定性和最终运动性能的替代品。首先开发了一种计算模型,该模型使用AnyBody建模软件系统将合成韧带结合到解剖膝盖模型中的现有膝盖替代物中。分析了不同弯曲角度下的模拟A / P抽屉测试,分析了2,916种可能的前后交叉韧带位置和长度组合,以确定韧带长度和位置对TKR的A / P稳定性的影响。然后设计并构建了完整的物理模型,并通过在Instron系统上进行机械测试来验证计算模型。 A / P抽屉测试是在710 N模拟体重下进行的。跟踪有或没有交叉韧带的TKR系统的胫骨A / P位移,以确定韧带放置对所得TKR稳定性的影响。;发现韧带的长度和位置会显着影响膝盖的松弛和膝盖的弯曲。确定膝关节屈曲对股骨上ACL附着位置的敏感度要高于胫骨上。由于ACL插入位置在股骨上向后移动,因此可以减少ACL韧带应变,从而实现更大范围的屈曲。通常,随着ACL和PCL长度的增加,TKR系统的A / P松弛度线性增加。有趣的是,发现运动范围比韧带长度更依赖于韧带附着位置。;膝关节置换稳定性显然受合成韧带长度和TKR系统中位置的影响。膝关节置换术结合了经过校准的位置和长度的合成韧带,应该能够显着影响TKR系统的运动学性能,可能会影响长期的功能结果。

著录项

  • 作者

    Stokes, Michael David.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Biomedical engineering.;Biomechanics.;Medicine.
  • 学位 M.Engr.
  • 年度 2016
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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