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在竞技游泳中,在高速滑翔,海豚和前部爬行时进行净力分析:对最佳推进时间的影响
Tsuyoshi Takeda1, Daiki Koga2, Takaaki Tsunokawa3
1Faculty of Health and Sports Science, Juntendo University, Chiba Inzai, Japan.
Sports biomechanics
|February 23, 2026
概括
精英游泳者可以通过了解流线滑翔,海豚和前部爬行之间的过渡点来优化水下速度. 识别这些最佳速度可以最大限度地减少启动和转后的减速.
科学领域:
- 游泳的生物力学
- 体育运动中的流体动力学
- 人类运动分析分析
背景情况:
- 优化水下阶段 (流线滑翔,海豚,前爬) 对于竞争性游泳表现至关重要.
- 了解这些相之间的过渡的流体力学可以提高速度和效率.
研究的目的:
- 为了确定精英游泳者在流线滑翔 (SL),水下海豚 (DK) 和前爬行 (FC) 之间的最佳过渡速度.
- 分析不同游泳速度和运动技术的净力概况.
主要方法:
- 十名精英女游泳运动员参加了在水流中绑住游泳试验.
- 在各种流速的SL,DK和FC运动中测量了净力.
- 动力定律拟合被用来建模净力,并识别运动阶段之间的交点.
主要成果:
- 对于SL,DK和FC,观察到不同的缩放系数 (A) 和指数 (n),其中A_SL > A_DK > A_FC和n_SL < n_DK < n_FC.
- 净力曲线以特定速度 (U_SL-DK和U_DK-FC) 交叉,表示最佳过渡点.
- 这些最佳过渡速度通常超过了DK和FC的游泳者的恒定速度速度.
结论:
- 该研究提出了一种取决于速度的净力模型,用于游泳中的相位过渡策略.
- 研究结果表明,以计算的交叉速度启动推进动作可以将启动和转期间的减速降到最低.
- 结果为改善水下游泳策略和整体比赛表现提供了流动力学基础.
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