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用于估计运动过程中全膝关节置换接触力的双关节建模

Dual-joint modeling for estimation of total knee replacement contact forces during locomotion.

作者信息

Hast Michael W, Piazza Stephen J

机构信息

Department of Mechanical and Nuclear Engineering, The Pennsylvania State University, University Park, PA 16802, USA.

出版信息

J Biomech Eng. 2013 Feb;135(2):021013. doi: 10.1115/1.4023320.

Abstract

Model-based estimation of in vivo contact forces arising between components of a total knee replacement is challenging because such forces depend upon accurate modeling of muscles, tendons, ligaments, contact, and multibody dynamics. Here we describe an approach to solving this problem with results that are tested by comparison to knee loads measured in vivo for a single subject and made available through the Grand Challenge Competition to Predict in vivo Tibiofemoral Loads. The approach makes use of a "dual-joint" paradigm in which the knee joint is alternately represented by (1) a ball-joint knee for inverse dynamic computation of required muscle controls and (2) a 12 degree-of-freedom (DOF) knee with elastic foundation contact at the tibiofemoral and patellofemoral articulations for forward dynamic integration. Measured external forces and kinematics were applied as a feedback controller and static optimization attempted to track measured knee flexion angles and electromyographic (EMG) activity. The resulting simulations showed excellent tracking of knee flexion (average RMS error of 2.53 deg) and EMG (muscle activations within ±10% envelopes of normalized measured EMG signals). Simulated tibiofemoral contact forces agreed qualitatively with measured contact forces, but their RMS errors were approximately 25% of the peak measured values. These results demonstrate the potential of a dual-joint modeling approach to predict joint contact forces from kinesiological data measured in the motion laboratory. It is anticipated that errors in the estimation of contact force will be reduced as more accurate subject-specific models of muscles and other soft tissues are developed.

摘要

基于模型估计全膝关节置换组件之间产生的体内接触力具有挑战性,因为此类力取决于肌肉、肌腱、韧带、接触和多体动力学的精确建模。在此,我们描述一种解决该问题的方法,其结果通过与单一个体的体内测量膝关节负荷进行比较来测试,并通过预测体内胫股负荷的大挑战竞赛提供。该方法利用一种“双关节”范式,其中膝关节交替由(1)用于反向动力学计算所需肌肉控制的球窝关节膝关节和(2)在胫股和髌股关节处具有弹性基础接触的12自由度(DOF)膝关节来表示,用于正向动力学积分。将测量的外力和运动学作为反馈控制器应用,静态优化试图跟踪测量的膝关节屈曲角度和肌电图(EMG)活动。所得模拟结果显示对膝关节屈曲(平均均方根误差为2.53°)和EMG(肌肉激活在归一化测量EMG信号的±10%包络内)具有出色的跟踪。模拟的胫股接触力在质量上与测量的接触力一致,但其均方根误差约为测量峰值的25%。这些结果证明了双关节建模方法从运动实验室测量的运动学数据预测关节接触力的潜力。预计随着开发更准确的个体特异性肌肉和其他软组织模型,接触力估计中的误差将减小。

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