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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >The dynamic limits of hop height: Biological actuator capabilities and mechanical requirements of task produce incongruity between one- and two-legged performance
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The dynamic limits of hop height: Biological actuator capabilities and mechanical requirements of task produce incongruity between one- and two-legged performance

机译:啤酒花高度的动态限制:生物执行器的功能和任务的机械要求会导致单腿和双腿性能之间的不一致

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摘要

The maximum hop height attainable for a given hop frequency falls well below the theoretical limit dictated by gravity, h=g/8f(2). However, maximum hop height is proportional to 1/f(2), suggesting that ground reaction force and, hence, force production capabilities of the leg muscles limit human hopping performance. Curiously, during one-legged hopping, subjects were able to produce substantially more than 50% the ground reaction force produced during two-legged maximum height hopping66% on average and as much as 90% the total force produced during two-legged hopping. This implies that two legs together should be able to produce an average of 1.32 times and as much as 1.8 times the force actually measured during two-legged maximum height hopping. Why were our subjects unable to access this extra force capacity when hopping on two legs? Here, we show that this apparent bilateral deficit and other features of maximum height hopping can be explained by the interaction of the mechanical requirements of hopping with the force-velocity and force-length relationships that dictate the force production capacity of the leg muscles. Identifying the factors that limit performance in hopping provides an opportunity to understand how functional limits are determined in more complex activities such as running and jumping.
机译:对于给定的跳跃频率,可达到的最大跳跃高度远低于重力所决定的理论极限h = g / 8f(2)。但是,最大跳跃高度与1 / f(2)成正比,表明地面反作用力以及腿部肌肉的力量产生能力限制了人类的跳跃性能。奇怪的是,在单腿跳跃中,受试者平均能够产生超过50%的两腿最大跳跃高度时产生的地面反作用力,平均为66%,以及多达90%的两腿跳跃时产生的总力。这意味着两条腿在一起的平均力应该是两条腿最大跳高时实际测得力的1.32倍和1.8倍之多。为什么我们的受试者在两条腿上跳跃时无法获得这种额外的力量?在这里,我们表明,这种明显的双侧赤字和最大跳高的其他特征可以通过跳动的机械要求与决定腿部肌肉产生力的力-速度和力-长度关系的相互作用来解释。识别出限制跳跃性能的因素,为了解如何在更复杂的活动(如跑步和跳跃)中确定功能限制提供了机会。

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