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Modeling the lateral pedestrian force on a rigid floor by a self-sustained oscillator

机译:通过自支撑振荡器在刚性地板上模拟横向行人力

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The main goal of this paper is the definition of a nonlinear single-degree-of-freedom oscillator able to accurately predict the lateral walking force of a pedestrian. The force exerted on the floor corresponds to its restoring force. The rigid floor case is analyzed, leading to an autonomous oscillator. Even though such an oscillator is a simplified representation of the human body, it should be able to reproduce two experimentally observed phenomena: (ⅰ) the time-history of lateral force is an approximately periodic signal; (ⅱ) the walking motion is self-sustained, in the sense that the pedestrian/oscillator produces by itself the energy needed to sustain its motion. This implies that such an oscillator must be self-sustained. In addition, the self-sustained character entails that the autonomous oscillation has a natural amplitude and frequency, representing the natural walking amplitude and frequency of the pedestrian. An original model is proposed by modifying the so-called hybrid Van der Pol/Rayleigh oscillator, already used for applications in the field of robotics. A dynamic analysis of this oscillator is then performed through an energetic approach and a perturbation technique in order to get the stable limit cycle. The model parameters are finally identified from the experimental force signals, resulting from a test campaign on a population of 12 pedestrians: the agreement between model and experimental results is very good.
机译:本文的主要目的是定义能够精确预测行人横向行走力的非线性单自由度振荡器。施加在地板上的力与其恢复力相对应。分析了刚性地板箱,从而产生了自主振荡器。即使这样的振荡器是人体的简化表示,它也应能够再现两个通过实验观察到的现象:(ⅰ)横向力的时间历史是近似周期性的信号; (ⅱ)步行运动是自持的,在某种意义上说,行人/振动器自身会产生维持其运动所需的能量。这意味着这种振荡器必须是自持的。另外,自我维持的特征要求自主振动具有自然的振幅和频率,代表行人的自然的步行振幅和频率。通过修改所谓的混合Van der Pol / Rayleigh振荡器提出了一种原始模型,该振荡器已经在机器人技术领域中使用。然后通过能量方法和微扰技术对该振荡器进行动态分析,以获得稳定的极限周期。最终从实验力信号中识别出模型参数,这些信号来自对12个行人的测试活动:模型与实验结果之间的一致性非常好。

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