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首页> 外文期刊>Journal of biomechanical engineering. >The Influence of Component Alignment and Ligament Properties on Tibiofemoral Contact Forces in Total Knee Replacement
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The Influence of Component Alignment and Ligament Properties on Tibiofemoral Contact Forces in Total Knee Replacement

机译:全膝关节置换术中组件对准和韧带特性对胫股接触力的影响

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The study objective was to investigate the influence of coronal plane alignment and ligament properties on total knee replacement (TKR) contact loads during walking. We created a subject-specific knee model of an 83-year-old male who had an instrumented TKR. The knee model was incorporated into a lower extremity musculoskeletal model and included deformable contact, ligamentous structures, and six degrees-of-freedom (DOF) tibiofemoral and patellofemoral joints. A novel numerical optimization technique was used to simultaneously predict muscle forces, secondary knee kinematics, ligament forces, and joint contact pressures from standard gait analysis data collected on the subject. The nominal knee model predictions of medial, lateral, and total contact forces during gait agreed well with TKR measures, with root-mean-square (rms) errors of 0.23, 0.22, and 0.33 body weight (BW), respectively. Coronal plane component alignment did not affect total knee contact loads, but did alter the medial-lateral load distribution, with 4 deg varus and 4 deg valgus rotations in component alignment inducing +17% and -23% changes in the first peak medial tibiofemoral contact forces, respectively. A Monte Carlo analysis showed that uncertainties in ligament stiffness and reference strains induce +/- 0.2 BW uncertainty in tibiofemoral force estimates over the gait cycle. Ligament properties had substantial influence on the TKR load distributions, with the medial collateral ligament and iliotibial band (ITB) properties having the largest effects on medial and lateral compartment loading, respectively. The computational framework provides a viable approach for virtually designing TKR components, considering parametric uncertainty and predicting the effects of joint alignment and soft tissue balancing procedures on TKR function during movement.
机译:研究目的是研究步行过程中冠状平面对准和韧带特性对全膝关节置换(TKR)接触负荷的影响。我们为83岁的男性使用了TKR工具创建了针对特定受试者的膝盖模型。膝关节模型被合并到下肢肌肉骨骼模型中,包括可变形的接触,韧带结构以及六个自由度(DOF)的胫股和pa股关节。一种新颖的数值优化技术被用来从受试者的标准步态分析数据中同时预测肌肉力量,继发性膝关节运动,韧带力量和关节接触压力。步态期间内侧,外侧和总接触力的名义膝关节模型预测与TKR度量吻合得很好,均方根(rms)误差分别为0.23、0.22和0.33体重(BW)。冠状面组件对齐不会影响总的膝盖接触负荷,但确实改变了内侧-外侧负荷分布,组件对齐中的4度内翻和4度外翻旋转引起了第一峰值胫骨股内侧接触的+ 17%和-23%变化部队,分别。蒙特卡洛分析表明,韧带刚度和参考应变的不确定性导致步态周期中胫股骨力估计值的不确定性为+/- 0.2 BW。韧带性质对TKR负荷分布有很大影响,内侧副韧带和胫束带(ITB)的性质分别对内侧和外侧隔室负荷影响最大。该计算框架为虚拟设计TKR组件,考虑参数不确定性以及预测运动过程中关节对齐和软组织平衡程序对TKR功能的影响提供了一种可行的方法。

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