跑鞋内部的弧形碳板修改了脚和腿的角度速度,提高了脚关节的机械效率
Tomohiro Miyazaki1, Takayuki Aimi2, Yugo Yamada3
1Graduate School of Health and Sports Science, Doshisha University, Kyoto, Japan.
Journal of biomechanics
|July 6, 2024
概括
具有弧形碳板的先进跑鞋在同心阶段提高了脚关节机械效率. 这种增强的机械能量转移 (MEC) 和减少的机械能量消耗 (MEE) 表明运行性能有所改善.
科学领域:
- 生物力学 生物力学
- 运动工程 运动工程
背景情况:
- 现代跑鞋具有高堆高度和碳板,以提高性能.
- 曲碳板在跑步过程中对脚机制的具体影响尚未完全理解.
研究的目的:
- 为了研究跑步鞋的弧形碳板增强如何影响脚关节在立场阶段的机械效率.
- 为了量化机械能耗 (MEE) 和机械能补偿 (MEC) 的变化,有或没有碳板.
主要方法:
- 测试了两种鞋类条件:标准 (Non) 和曲碳板 (Carbon),两种都是40毫米厚的3D打印中底.
- 14名非后脚长途跑者以每小时12公里的速度跑.
- 机械能耗 (MEE) 和机械能补偿 (MEC) 在同心,偏心和无转移阶段进行计算.
主要成果:
- 与标准鞋相比,在同心转移阶段使用碳板鞋 (碳) 运行显著改善了机械能量补偿 (MEC) (非).
- 在这个阶段,碳板也导致了脚的机械能耗 (MEE) 减少.
- 这表明从腿部到脚部的能量转移更有效,有助于脚部屈曲.
结论:
- 先进的跑步鞋中的曲碳板可以提高脚关节的机械效率.
- 改善机械能量补偿和减少脚上的支出可能有助于提高跑步性能.
- 碳板技术是先进跑鞋设计的重要因素.
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