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首页> 外文期刊>Journal of Biomechanics >Energy cost of balance control during walking decreases with external stabilizer stiffness independent of walking speed
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Energy cost of balance control during walking decreases with external stabilizer stiffness independent of walking speed

机译:步行过程中平衡控制的能量成本随着外部稳定器刚度的增加而降低,而与步行速度无关

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Human walking requires active neuromuscular control to ensure stability in the lateral direction, which inflicts a certain metabolic load. The magnitude of this metabolic load has previously been investigated by means of passive external lateral stabilization via spring-like cords. In the present study, we applied this method to test two hypotheses: (1) the effect of external stabilization on energy cost depends on the stiffness of the stabilizing springs, and (2) the energy cost for balance control, and consequently the effect of external stabilization on energy cost, depends on walking speed. Fourteen healthy young adults walked on a motor driven treadmill without stabilization and with stabilization with four different spring stiffnesses (between 760 and 1820Nm-1) at three walking speeds (70%, 100%, and 130% of preferred speed). Energy cost was calculated from breath-by-breath oxygen consumption. Gait parameters (mean and variability of step width and stride length, and variability of trunk accelerations) were calculated from kinematic data. On average external stabilization led to a decrease in energy cost of 6% (p0.005) as well as a decrease in step width (24%; p0.001), step width variability (41%; p0.001) and variability of medio-lateral trunk acceleration (12.5%; p0.005). Increasing stabilizer stiffness increased the effects on both energy cost and medio-lateral gait parameters up to a stiffness of 1260Nm-1. Contrary to expectations, the effect of stabilization was independent of walking speed (p=0.111). These results show that active lateral stabilization during walking involves an energetic cost, which is independent of walking speed.
机译:人的行走需要积极的神经肌肉控制,以确保横向稳定性,这会造成一定的代谢负荷。先前已通过弹簧状绳索通过被动的外部侧向稳定作用来研究这种代谢负荷的大小。在本研究中,我们将这种方法应用于两个假设的检验:(1)外部稳定对能量成本的影响取决于稳定弹簧的刚度,(2)平衡控制的能量成本,以及由此产生的影响。外部能源成本的稳定取决于步行速度。 14名健康的年轻人在没有稳定的情况下在电动跑步机上行走,并以三种步行速度(首选速度的70%,100%和130%)具有四种不同的弹簧刚度(介于760和1820Nm-1之间)稳定下来。能量成本是通过一次呼吸的氧气消耗量来计算的。根据运动学数据计算步态参数(步长和步幅的均值和变异性,以及躯干加速度的变异性)。平均而言,外部稳定导致能源成本降低6%(p <0.005),并且步幅降低(24%; p <0.001),步幅可变性(41%; p <0.001)和中侧躯干加速度(12.5%; p <0.005)。稳定器刚度的增加会增加对能量成本和中下步态参数的影响,直至刚度为1260Nm-1。与预期相反,稳定的效果与步行速度无关(p = 0.111)。这些结果表明,步行过程中主动的侧向稳定涉及高能成本,而这与步行速度无关。

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