对旋转射击技术的理论模型的研究
Tadahiko Kato1, Kei Maeda2, Jun Mizushima3
1Department of Materials and Human Environmental Sciences, Shonan Institute of Technology, Fujisawa, Japan.
Journal of applied biomechanics
|November 6, 2024
概括
在旋转射击中,更高的释放速度取决于冲动,角动量和线性动量. 动力学因素,如肩膀旋转和干倾斜影响冲动,而下半身运动影响动量.
科学领域:
- 体育 生物力学 运动 生物力学
- 竞技表现分析 运动表现分析
背景情况:
- 旋转投篮技术的生物力学已经确立,但最佳释放速度的动力学和动力学之间的因果关系尚不清楚.
- 了解这些关系对于通过有针对性的训练来提高射击表现至关重要.
研究的目的:
- 研究影响旋转投篮中释放速度的生物力学变量之间的因果关系.
- 开发一个层次模型,解释动力学和动力学因素如何促进更高的投篮性能.
主要方法:
- 在官方比赛期间,三维动作捕捉22名男性射手的运动.
- 在整个投篮运动中计算关键的动力学和动力学变量.
- 路径分析以模拟变量之间的直接和间接影响.
主要成果:
- 射击的冲动,系统角动量和系统线性动量被确定为直接影响释放速度的关键动力变量.
- 八个动力学变量,包括肩膀旋转,射击路径长度和干部倾斜,显著影响了射击的冲动.
- 发现下肢运动 (摇摆,延伸) 与系统动量有关.
结论:
- 该研究提供了旋转投篮技术的详细生物机械模型.
- 结果提供了对优化指导策略的见解,通过突出关键的动力学和动力学贡献者来释放速度.
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