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首页> 外文期刊>Journal of Sound and Vibration >Identification of biomechanical nonlinearity in whole-body vibration using a reverse path multi-input-single-output method
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Identification of biomechanical nonlinearity in whole-body vibration using a reverse path multi-input-single-output method

机译:使用反向路径多输入单输出方法识别全身振动的生物力学非线性

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摘要

The study implements a classic signal analysis technique, typically applied to structural dynamics, to examine the nonlinear characteristics seen in the apparent mass of a recumbent person during whole-body horizontal random vibration. The nonlinearity in the present context refers to the amount of 'output' that is not correlated or coherent to the 'input', usually indicated by values of the coherence function that are less than unity. The analysis is based on the longitudinal horizontal inline and vertical cross-axis apparent mass of twelve human subjects exposed to 0.25-20 Hz random acceleration vibration at 0.125 and 1.0 ms(-2) r.m.s. The conditioned reverse path frequency response functions (FRF) reveal that the uncorrelated 'linear' relationship between physical input (acceleration) and outputs (inline and cross-axis forces) has much greater variation around the primary resonance frequency between 0.5 and 5 Hz. By reversing the input and outputs of the physical system, it is possible to assemble additional mathematical inputs from the physical output forces and mathematical constructs (e.g. square root of inline force). Depending on the specific construct, this can improve the summed multiple coherence at frequencies where the response magnitude is low. In the present case this is between 6 and 20 Hz. The statistical measures of the response force time histories of each of the twelve subjects indicate that there are potential anatomical 'end-stops' for the sprung mass in the inline axis. No previous study has applied this reverse path multi-input-single-output approach to human vibration kinematic and kinetic data before. The implementation demonstrated in the present study will allow new and existing data to be examined using this different analytical tool. (c) 2018 Elsevier Ltd. All rights reserved.
机译:该研究实现了一种经典信号分析技术,通常适用于结构动态,以检查全身水平随机振动期间在卧式人的表观物质中看到的非线性特征。本文中的非线性是指“输出”的量不相关或相干于“输入”,通常由少于Unity的相干函数的值表示。该分析基于十二人受试者的纵向水平的内联和垂直横轴表观物质,暴露于0.25-20 Hz随机加速度振动0.125和1.0ms(-2)r.m.s.调节的反向路径频率响应函数(FRF)揭示了物理输入(加速度)和输出之间的不相关的“线性”关系(内联和横轴力)在0.5和5Hz之间的初级谐振频率周围具有更大的变化。通过反转物理系统的输入和输出,可以组装来自物理输出力和数学构造的附加数学输入(例如,内联力的平方根)。根据具体构造,这可以改善响应幅度低的频率的总和多功能。在目前的情况下,这在6到20 Hz之间。响应力时间历史的统计测量每个十二个受试者的统计学措施表明,在内联轴上的弹簧质量存在潜在的解剖学“终止”。之前没有先前的研究以前应用了这种反向路径的多输入单输出方法以以前的人类振动运动和动力学数据。本研究中所示的实施将允许使用此不同的分析工具进行新的和现有数据。 (c)2018年elestvier有限公司保留所有权利。

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