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Design and testing of a high-speed treadmill to measure ground reaction forces at the limit of human gait

机译:高速跑步机的设计和测试,可在人的步态极限下测量地面反作用力

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Investigations focused on the gait and physiological limits of human speed have been on-going for more than a century. However, due to measurement limitation a kinetic understanding of the foot-ground collision and how these dynamics differ between individuals to confer speed and limit gait has only recently begun to come forth. Therefore, we designed and tested an instrumented high-speed force treadmill to measure the forces occurring at the limits of human performance. The treadmill was designed to maximize flexural stiffness and natural frequency by using a honeycomb sandwich panel as the bed surface and a flexible drive shaft between the drive roller and servo motor to reduce the mass of the supported elements which contribute to the system's response frequency. The functional performance of the force treadmill met or exceeded the measurement criteria established for ideal force plates: high natural frequency (z-axis = 113 Hz), low crosstalk between components of the force (F-x/F-z = 0.0020[SD = 0.00101; F-y/F-z = 0.0016[SD = 0.00031), a linear response (R-2 > 0.999) for loading with known weights (range: 44-3857 N), and an accuracy of 2.5[SD = 1.7] mm and 2.8[SD = 1.5] mm in the x and y-axes, respectively, for the point of force application. In dynamic testing at running speeds up to 10 m s(-1), the measured durations and magnitudes of force application were similar between the treadmill and over-ground running using a force platform. This design provides a precise instrumented treadmill capable of recording multi-axis ground reaction forces applied during the foot ground contacts of the fastest men and animals known to science. (C) 2015 IPEM. Published by Elsevier Ltd. All rights reserved.
机译:专注于人类步态的步态和生理极限的研究已经进行了一个多世纪。但是,由于测量的限制,人们对脚地面碰撞的动力学理解以及这些动力学在个体之间如何赋予速度和极限步态的差异只是最近才开始出现。因此,我们设计并测试了一种仪器化的高速推力跑步机,以测量在人类表现极限时出现的力。跑步机的设计旨在通过使用蜂窝状夹心板作为床面以及在驱动辊和伺服电机之间使用柔性驱动轴来最大程度地提高弯曲刚度和固有频率,以减少有助于系统响应频率的支撑元件的质量。跑步机的功能性能达到或超过了理想推力板的测量标准:高固有频率(z轴= 113 Hz),受力分量之间的串扰低(Fx / Fz = 0.0020 [SD = 0.00101; Fy / Fz = 0.0016 [SD = 0.00031),以已知重量(范围:44-3857 N)加载时的线性响应(R-2> 0.999),精度为2.5 [SD = 1.7] mm和2.8 [SD =在x和y轴上分别[1.5] mm,用于施加力。在高达10 m s(-1)的行驶速度下进行动态测试时,在跑步机和使用力平台进行的地面跑步之间,测得的作用力持续时间和施加的幅度相似。这种设计提供了一种精确的仪器化跑步机,能够记录科学已知最快的人和动物的脚部地面接触过程中施加的多轴地面反作用力。 (C)2015年IPEM。由Elsevier Ltd.出版。保留所有权利。

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