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Contributions of Muscles to Terminal-Swing Knee Motions Vary with Walking Speed

机译:肌肉对终极摆动膝盖运动的贡献随步行速度而变化

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摘要

Many children with cerebral palsy walk with diminished knee extension during terminal swing, at speeds much slower than unimpaired children. Treatment of these gait abnormalities is challenging because the factors that extend the knee during normal walking, over a range of speeds, are not well understood. This study analyzed a series of three-dimensional, muscle-driven dynamic simulations to determine whether the relative contributions of individual muscles and other factors to angular motions of the swing-limb knee vary with walking speed. Simulations were developed that reproduced the measured gait dynamics of seven unimpaired children walking at self-selected, fast, slow, and very slow speeds (7 subjects × 4 speeds = 28 simulations). In mid-swing, muscles on the stance limb made the largest net contribution to extension of the swing-limb knee at all speeds examined. The stance-limb hip abductors, in particular, accelerated the pelvis upward, inducing reaction forces at the swing-limb hip that powerfully extended the knee. Velocity-related forces (i.e., Coriolis and centrifugal forces) also contributed to knee extension in mid-swing, though these contributions were diminished at slower speeds. In terminal swing, the hip flexors and other muscles on the swing limb decelerated knee extension at the subjects' self-selected, slow, and very slow speeds, but had only a minimal net effect on knee motions at the fastest speeds. Muscles on the stance limb helped brake knee extension at the subjects' fastest speeds, but induced a net knee extension acceleration at the slowest speeds. These data — which show that the contributions of muscular and velocity-related forces to terminal-swing knee motions vary systematically with walking speed — emphasize the need for speed-matched control subjects when attempting to determine the causes of a patient's abnormal gait.
机译:许多脑瘫患儿在终末摆动时走路时膝盖伸展能力减弱,其速度比无障碍患儿慢得多。这些步态异常的治疗方法具有挑战性,因为人们对在正常速度下在一定速度范围内行走时伸展膝盖的因素尚未完全了解。这项研究分析了一系列三维肌肉驱动的动态模拟,以确定单个肌肉的相对贡献和其他因素对摆肢膝盖角运动的影响是否随步行速度而变化。开发了模拟程序,该模拟程序再现了以自选,快,慢和非常慢的速度(7个受试者×4个速度= 28个模拟)行走的7个无障碍儿童的步态动态。在挥杆中期,在所有检查的速度下,站立肢体的肌肉对摆肢膝盖的伸展贡献最大。站立姿势的髋关节外展肌尤其使骨盆向上加速,从而在摇摆肢体的髋部产生反作用力,从而使膝关节有力地伸展。与速度有关的力(即科里奥利力和离心力)也有助于膝部中摆的伸展,尽管这些作用在较慢的速度下会减小。在终极挥杆中,挥杆肢体的髋屈肌和其他肌肉以受试者的自行选择的,缓慢的和非常缓慢的速度使膝盖伸展减速,但以最快的速度对膝盖运动的净影响最小。姿势肢体上的肌肉有助于以受试者最快的速度制动膝盖伸展,但以最低的速度诱发了净膝盖伸展加速度。这些数据(表明肌肉和速度相关的力对最终挥杆膝盖运动的贡献随步行速度的变化而系统地变化)强调了在尝试确定患者步态异常的原因时,需要与速度匹配的控制对象。

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