Thelen Darryl G, Won Choi Kwang, Schmitz Anne M
J Biomech Eng. 2014 Feb;136(2):021033. doi: 10.1115/1.4026358.
This study introduces a framework for co-simulating neuromuscular dynamics and knee joint mechanics during gait. A knee model was developed that included 17 ligament bundles and a representation of the distributed contact between a femoral component and tibial insert surface. The knee was incorporated into a forward dynamics musculoskeletal model of the lower extremity. A computed muscle control algorithm was then used to modulate the muscle excitations to drive the model to closely track measured hip, knee, and ankle angle trajectories of a subject walking overground with an instrumented knee replacement. The resulting simulations predicted the muscle forces, ligament forces, secondary knee kinematics, and tibiofemoral contact loads. Model-predicted tibiofemoral contact forces were of comparable magnitudes to experimental measurements, with peak medial (1.95 body weight (BW)) and total (2.76 BW) contact forces within 4-17% of measured values. Average root-mean-square errors over a gait cycle were 0.26, 0.42, and 0.51 BW for the medial, lateral, and total contact forces, respectively. The model was subsequently used to predict variations in joint contact pressure that could arise by altering the frontal plane joint alignment. Small variations (±2 deg) in the alignment of the femoral component and tibial insert did not substantially affect the location of contact pressure, but did alter the medio-lateral distribution of load and internal tibia rotation in swing. Thus, the computational framework can be used to virtually assess the coupled influence of both physiological and design factors on in vivo joint mechanics and performance.
本研究介绍了一种用于在步态期间联合模拟神经肌肉动力学和膝关节力学的框架。开发了一个膝关节模型,该模型包括17条韧带束以及股骨部件与胫骨植入物表面之间分布式接触的表示。将该膝关节纳入下肢的正向动力学肌肉骨骼模型中。然后使用计算肌肉控制算法来调节肌肉兴奋,以驱动模型紧密跟踪使用仪器化膝关节置换术在地面行走的受试者的测量髋关节、膝关节和踝关节角度轨迹。所得模拟预测了肌肉力、韧带力、膝关节二次运动学以及胫股接触载荷。模型预测的胫股接触力大小与实验测量值相当,内侧峰值(1.95倍体重(BW))和总接触力(2.76 BW)在测量值的4 - 17%范围内。在一个步态周期内,内侧、外侧和总接触力的平均均方根误差分别为0.26、0.42和0.51 BW。该模型随后用于预测通过改变额面关节对线可能出现的关节接触压力变化。股骨部件和胫骨植入物对线的小变化(±2度)对接触压力的位置影响不大,但确实改变了摆动期载荷的内外侧分布以及胫骨内部旋转。因此,该计算框架可用于虚拟评估生理和设计因素对体内关节力学和性能的联合影响。