在青少年花样滑冰运动员中,不同数次旋转的跳跃之间的下肢生物力学差异
Ami Koga1, Xiaotian Bai1, Yuanyuan Jia2
1Division of Sports Science and Physical Education, Tsinghua University, Beijing, China.
Frontiers in bioengineering and biotechnology
|September 17, 2025
概括
艺术滑冰跳跃需要更大的肌肉激活和部曲随着旋转的增加. 青少年滑冰运动员可以通过改善协调和腿部力量来提高跳跃性能.
科学领域:
- 生物力学 生物力学
- 运动科学 运动科学 运动科学
- 艺术滑冰 艺术滑冰是一项运动.
背景情况:
- 艺术滑冰跳跃是复杂的运动,需要精确的下肢协调.
- 了解不同跳转轮的生物力学要求对于运动员的发展和伤害预防至关重要.
研究的目的:
- 为了研究艺术滑冰运动中下肢肌肉活动和运动学的差异,Axel在年轻滑冰运动员中以不同的旋转跳跃.
- 测试假设,增加跳跃旋转与较大的下肢曲,延伸和肌肉激活相关.
主要方法:
- 11名青少年花样滑冰运动员进行了华尔兹,单轴和双轴跳跃.
- 使用高速摄像机捕捉下肢动力学.
- 电肌图 (EMG) 测量了下肢关键肌肉的肌肉活动 (大腿直肠,大腿双,大腿前,胃半).
主要成果:
- 更困难的跳跃 (更高的旋转) 导致跳跃高度增加,起飞速度更快,在推进过程中部曲更大.
- 肌肉激活 (RMS和iEMG) 在胃角和前部随着跳跃的困难而增加.
- 腿筋和四头肌在简单的跳跃中显示出最高的肌肉激活.
结论:
- 更复杂的轴跳需要更大的部曲和更高的肌肉激活在腿筋,四头四和前部在起飞前.
- 青少年滑冰运动员可以通过专注于多关节运动,肌肉协调和腿部力量来提高跳跃性能.
- 这些发现为优化训练计划和减少年轻花样滑冰运动员受伤风险提供了生物力学见解.
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