首页> 美国卫生研究院文献>Proceedings. Mathematical Physical and Engineering Sciences >Walking on a moving surface: energy-optimal walking motions on a shaky bridge and a shaking treadmill can reduce energy costs below normal
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Walking on a moving surface: energy-optimal walking motions on a shaky bridge and a shaking treadmill can reduce energy costs below normal

机译:在移动的表面上行走:在摇摇欲坠的桥和振动的跑步机上进行能量最佳的行走运动可以将能量消耗降低至低于正常水平

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摘要

Understanding how humans walk on a surface that can move might provide insights into, for instance, whether walking humans prioritize energy use or stability. Here, motivated by the famous human-driven oscillations observed in the London Millennium Bridge, we introduce a minimal mathematical model of a biped, walking on a platform (bridge or treadmill) capable of lateral movement. This biped model consists of a point-mass upper body with legs that can exert force and perform mechanical work on the upper body. Using numerical optimization, we obtain energy-optimal walking motions for this biped, deriving the periodic body and platform motions that minimize a simple metabolic energy cost. When the platform has an externally imposed sinusoidal displacement of appropriate frequency and amplitude, we predict that body motion entrained to platform motion consumes less energy than walking on a fixed surface. When the platform has finite inertia, a mass- spring-damper with similar parameters to the Millennium Bridge, we show that the optimal biped walking motion sustains a large lateral platform oscillation when sufficiently many people walk on the bridge. Here, the biped model reduces walking metabolic cost by storing and recovering energy from the platform, demonstrating energy benefits for two features observed for walking on the Millennium Bridge: crowd synchrony and large lateral oscillations.
机译:理解人类如何在可以移动的表面上行走可能提供洞察力,例如,行走的人类是否优先考虑能源使用或稳定性。在这里,受伦敦千禧桥上观察到的著名的人类驱动的振荡的影响,我们介绍一个两足动物的最小数学模型,该模型在能够横向移动的平台(桥或跑步机)上行走。这种两足动物模型包括一个点状上半身,该上半身的腿可以施加力并在上半身上执行机械工作。使用数值优化,我们为此双足动物获得了能量最佳的步行运动,从而得出了使简单的代谢能量成本最小化的周期性身体和平台运动。当平台具有适当频率和振幅的外部施加的正弦形位移时,我们预测,夹带平台运动的人体运动比在固定表面行走要消耗更少的能量。当平台具有有限的惯性,具有与千禧桥类似的参数的质量弹簧阻尼器时,我们表明,当足够多的人在桥上行走时,最佳的两足动物步行运动会维持较大的侧向平台振动。在此,两足动物模型通过从平台存储和回收能量来降低步行的新陈代谢成本,证明了在千禧桥上行走时观察到的两个功能的能量益处:人群同步和较大的横向振动。

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