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Mechanical energy transfer by internal force during the swing phase of running

机译:在运行的摆动阶段内部力通过机械能量转移

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Running is a cyclic motion in which each leg has two phases, stance and swing. The energy generated by the muscular forces are dominant in the phase between initial contact and mid-stance. However, during the swing phase, other internal forces act to transfer the mechanical energy between segments. In this research, we focused on the energy transfer mechanism during the swing phase and investigated how non-muscular (e.g. centrifugal and gravity) forces of each link generate, absorb, and transfer the mechanical energy. A mathematical analysis of the lower limb's movement in the swing phase of running at different speeds was carried out. A multi-body power analysis was performed using dynamical equations of a three-dimensional double pendulum to find the mechanism to increase the speed of the leg swing efficiently. Results show that the internal force at the knee joint work throughout the swing phase to generate centrifugal force in the shank and that the knee joint moment is very small in comparison to the internal force. Understanding the transfer mechanism using the internal forces could lead to economical running forms that prevent injuries and enhance the performance of the runners.
机译:跑步是一种循环运动,其中每条腿有两个阶段,姿势和摆动。肌肉力产生的能量在初始接触和中立姿势之间的相位中占主导地位。然而,在摆动阶段期间,其他内部力用于在区段之间传递机械能。在该研究中,我们专注于在摆动阶段期间的能量转移机制,并研究了每个链路的非肌肉(例如离心和重力)力产生,吸收和转移机械能。进行了在不同速度运行运行的摆动阶段下肢体运动的数学分析。使用三维双摆的动态方程进行多体功率分析,以找到有效地增加腿部速度的机制。结果表明,膝关节内的内部力在整个摆动阶段工作,以在柄部中产生离心力,并且与内力相比,膝关节矩非常小。了解使用内部力量的转移机制可能导致经济的运行形式,防止伤害并提高跑步者的表现。

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