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The Effects of Walking Speed on Tibiofemoral Loading Estimated Via Musculoskeletal Modeling

机译:步行速度对通过骨骼肌肉模型估计的胫股骨负荷的影响

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摘要

Net muscle moments (NMMs) have been used as proxy measures of joint loading, but musculoskeletal models can estimate contact forces within joints. The purpose of this study was to use a musculoskeletal model to estimate tibiofemoral forces and to examine the relationship between NMMs and tibiofemoral forces across walking speeds. We collected kinematic, kinetic, and electromyographic data as ten adult participants walked on a dual-belt force-measuring treadmill at 0.75, 1.25, and 1.50 m/s. We scaled a musculoskeletal model to each participant and used OpenSim to calculate the NMMs and muscle forces through inverse dynamics and weighted static optimization, respectively. We determined tibiofemoral forces from the vector sum of intersegmental and muscle forces crossing the knee. Estimated tibiofemoral forces increased with walking speed. Peak early-stance compressive tibiofemoral forces increased 52% as walking speed increased from 0.75 to 1.50 m/s, whereas peak knee extension NMMs increased by 168%. During late stance, peak compressive tibiofemoral forces increased by 18% as speed increased. Although compressive loads at the knee did not increase in direct proportion to NMMs, faster walking resulted in greater compressive forces during weight acceptance and increased compressive and anterior/posterior tibiofemoral loading rates in addition to a greater abduction NMM.
机译:净肌肉力矩(NMM)已被用作关节负荷的替代指标,但是肌肉骨骼模型可以估计关节内的接触力。这项研究的目的是使用一个肌肉骨骼模型来估计胫股力量,并检查跨步行速度的NMM和胫股力量之间的关系。当十名成年参与者在0.75、1.25和1.50 m / s的双皮带测力跑步机上行走时,我们收集了运动,动力学和肌电数据。我们为每个参与者缩放了一个肌肉骨骼模型,并使用OpenSim通过逆动力学和加权静态优化分别计算了NMM和肌肉力。我们根据跨膝盖的节间和肌肉力的矢量和确定胫股力量。估计胫股力量随步行速度增加。当步行速度从0.75增加到1.50 m / s时,高峰期早期胫股压缩力增加了52%,而膝关节伸展NMM峰值增加了168%。在后期姿势中,随着速度的增加,峰值胫骨股压缩力增加了18%。尽管膝关节的压缩负荷并未与NMM直接成正比,但更快的步行会在承重过程中产生更大的压缩力,并且除了较大的外展NMM之外,还会增加压缩和前/后胫骨股的负荷率。

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