在人类步行加速和减速过程中推进和制动机制
Naoto Hida1, Tomoya Kokue1, Kenichi Sugawara1
1Kanagawa University of Human Services, 1-10-1 Heiseicho, Yokosuka, Kanagawa 238-8522, Japan.
Human movement science
|October 16, 2025
概括
人类步行加速使用后期姿态推进,而减速使用早期姿态制动. 了解这些地面反应力 (GRF) 和质量中心外部动量 (COM Mext) 机制可以提高稳定性.
科学领域:
- 生物力学 生物力学
- 人类的机动运动.
- 步态分析 步态分析
背景情况:
- 步行稳定依赖于理解加速和减速机制.
- 推进力和制动力是人类稳定行走的关键.
研究的目的:
- 在人类步行加速和减速过程中分析地面反应力 (GRF) 和质量中心外向矩 (COM Mext).
- 澄清在步行速度变化期间使用的不同推进和制动策略.
主要方法:
- 在正常,最大,加速和减速条件下招募了30名健康的年轻人参加行走试验.
- 使用3D运动捕捉和力板收集动力学和动力学数据.
- 分析了地面反应力 (GRF),质量中心外 Moment (COM Mext) 和时空步态参数.
主要成果:
- 加快步行增加了速度和步伐长度,减少了早期姿势的后部GRF,提高了晚期姿势的前/垂直GRF,导致COM Mext减少.
- 减速步行减小了速度和步骤的长度,显示出升高的早期姿势垂直/后部GRF,导致更高的COM Mext.
- 在加速与减速阶段观察到明显的GRF模式和COM Mext变化.
结论:
- 步行加速包括增强的后置推进和垂直的GRF用于前置COM旋转.
- 步行减速的特点是提升的早期位置制动和垂直的GRF来控制COM的前进旋转.
- 研究结果可以为程序提供信息,以提高步态加速和减速能力.
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