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Experimental and simulation-based assessment of the human postural response to sagittal plane perturbations with localized muscle fatigue and aging.

机译:基于实验和基于仿真的人体姿势对矢状面微扰与局部肌肉疲劳和衰老的反应的评估。

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摘要

This research was motivated by occupational falls, which are one of the leading causes of fatalities in skilled labor divisions. The effects of localized muscle fatigue (LMF) on surrogate measures of postural sway are well-established. This is significant since these increases have been linked to elevated risk of falls, and workers with increased risks of falling fatality frequently engage in fatiguing tasks.;An initial study was conducted to investigate the effects of LMF and aging on balance recovery from postural perturbations without stepping. Sagittal plane perturbations were administered to young and older individuals before and after fatiguing exercises. Measures of balance recovery (BR) were based on the center of mass (COM) and center of pressure (COP) trajectories and the maximum perturbation that could be withstood. Changes in BR measures were consistent with an LMF- and aging-induced decrement in recovering from the perturbations.;The second study investigated the effects of aging and LMF on the neural control of upright stance during small postural perturbations. Small magnitude postural perturbations were administered to young and older individuals before and after fatiguing exercises. A single degree of freedom (DOF) human body model was developed that accurately simulated the experimental data. Feedback gains and time-delay were optimized for each participant, and a delay margin analysis was performed to assess system robustness. Results indicated that older individuals had a longer "effective" time-delay and exhibited greater reliance on afferent velocity information. No changes in feedback controller gains, time-delay, or delay margins were found with LMF in either age group.;The final study investigated using a nonlinear controller to simulate responses to large magnitude postural perturbations. A three DOF model of the human body was developed and controlled with the state-dependent Riccati equation (SDRE). Parameters of the SDRE were optimized to fit the experimentally recorded kinematics. Unlike other nonlinear controllers, the SDRE provides meaningful parameters for interpretation in the system identification. The SDRE approach was successful at stabilizing the dynamical system; however, accurate results were not obtained. Explanations for this are presented along with an alternative formulation to the time-delayed optimal control problem using Roesser state space equations.
机译:这项研究的动机是职业跌落,而职业跌落是熟练劳动部门中死亡的主要原因之一。局部肌肉疲劳(LMF)对姿势摇摆的替代测量的影响是公认的。这是重要的,因为这些增加与跌倒的风险增加有关,并且死亡率下降风险增加的工人经常从事疲劳的工作。踩。在进行疲劳训练之前和之后,对年轻人和老年人进行矢状面扰动。平衡恢复(BR)的度量基于质心(COM)和压力中心(COP)轨迹以及可以承受的最大扰动。 BR测量值的变化与LMF和衰老引起的从摄动中恢复的减少相一致。;第二项研究调查了衰老和LMF对小姿势摄动过程中直立姿势神经控制的影响。在进行疲劳训练之前和之后,对年轻人和老年人进行小幅姿势扰动。开发了可精确模拟实验数据的单自由度(DOF)人体模型。针对每个参与者优化了反馈增益和时间延迟,并进行了延迟余量分析以评估系统的鲁棒性。结果表明,年龄较大的个体具有较长的“有效”时间延迟,并且对传入速度信息的依赖性更大。在两个年龄组中,LMF均未发现反馈控制器增益,时间延迟或延迟裕度的变化。最终研究使用非线性控制器来模拟对大幅度姿势扰动的响应。建立了人体的三个自由度模型,并通过状态依赖的Riccati方程(SDRE)对其进行控制。 SDRE的参数已优化,以适合实验记录的运动学。与其他非线性控制器不同,SDRE提供了有意义的参数用于系统识别中的解释。 SDRE方法成功地稳定了动力系统。但是,没有获得准确的结果。给出了对此的解释以及使用Roesser状态空间方程的时滞最优控制问题的替代公式。

著录项

  • 作者

    Davidson, Bradley Steven.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Biomedical.;Biology Physiology.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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