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首页> 外文期刊>The Journal of Physiology >The frequency of human, manual adjustments in balancing an inverted pendulum is constrained by intrinsic physiological factors.
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The frequency of human, manual adjustments in balancing an inverted pendulum is constrained by intrinsic physiological factors.

机译:平衡倒立摆时人为进行手动调整的频率受到固有生理因素的限制。

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摘要

While standing naturally and when manually or pedally balancing an equivalent inverted pendulum, the load sways slowly (characteristic unidirectional duration approximately 1 s) and the controller, calf muscles or hand, makes more frequent adjustments (characteristic unidirectional duration 400 ms). Here we test the hypothesis that these durations reflect load properties rather than some intrinsic property of the human neuromuscular system. Using a specialized set-up mechanically analogous to real standing, subjects manually balanced inverted pendulums with different moments of inertia through a compliant spring representing the Achilles tendon. The spring bias was controlled by a sensitive joystick via a servo motor and accurate visual feedback was provided on an oscilloscope. As moment of inertia decreased, inverted pendulum sway size increased and it became difficult to sustain successful balance. The mean duration of unidirectional balance adjustments did not change. Moreover, the mean duration of unidirectional inverted pendulum sway reduced only slightly, remaining around 1 s. The simplest explanation is that balance was maintained by a process of manual adjustments intrinsically limited to a mean frequency of two to three unidirectional adjustments per second corresponding to intermittent control observed in manual tracking experiments. Consequently the inverted pendulum sway duration, mechanically related to the bias duration, reflects an intrinsic constraint of the neuromuscular control system. Given the similar durations of sway and muscle adjustments observed in real standing, we postulate that the characteristic duration of unidirectional standing sway reflects intrinsic intermittent control rather than the inertial properties of the body.
机译:当自然站立时,当手动或脚踏平衡等效的倒立摆时,负载缓慢摇摆(典型的单向持续时间约为1 s),控制器,小腿肌肉或手进行的调整更加频繁(典型的单向持续时间为400 ms)。在这里,我们测试以下假设:这些持续时间反映的是负荷特性,而不是人类神经肌肉系统的某些固有特性。使用机械上类似于真实站立的专业装置,受试者通过代表跟腱的柔顺弹簧手动平衡具有不同惯性矩的倒立摆。弹簧偏置由灵敏的操纵杆通过伺服电机控制,并在示波器上提供了准确的视觉反馈。随着惯性矩减小,倒立摆晃动的大小增加,并且难以维持成功的平衡。单向平衡调整的平均持续时间没有变化。此外,单向倒立摆的平均持续时间仅略微减少,保持在1 s左右。最简单的解释是,通过手动调节过程来保持平衡,这种调节本质上限于每秒2到3个单向调节的平均频率,对应于在手动跟踪实验中观察到的间歇性控制。因此,与偏斜持续时间机械相关的倒立摆摇摆持续时间反映了神经肌肉控制系统的固有约束。鉴于实际站立时观察到的摇摆和肌肉调节持续时间相似,我们假设单向站立摇摆的特征持续时间反映了固有的间歇控制,而不是身体的惯性。

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