Sanno Maximilian, Goldmann Jan-Peter, Heinrich Kai, Wahl Patrick, Brüggemann Gert-Peter
Institute of Biomechanics and Orthopaedics, German Sport University Cologne, Am Sportpark Müngersdorf 6, 50933, Cologne, Germany.
German Research Center of Elite Sport, German Sport University Cologne, Am Sportpark Müngersdorf 6, 50933, Cologne, Germany.
Eur J Appl Physiol. 2025 Feb;125(2):511-521. doi: 10.1007/s00421-024-05619-8. Epub 2024 Sep 26.
The aim of this study was to investigate the effect of 300 intermittent countermovement jumps (CMJs) on the mechanical power distribution at the joints of the lower limbs and the influence of the upper body to explain vertical jump performance.
Fifteen male sport students (age 24.5 ± 2.3 years; body height 1.85 ± 0.06 m; body mass 84.8 ± 8.5 kg) performed a set of intermittent 300 CMJs at maximal effort. An inverse-dynamic approach was used to calculate the mechanical power at the hip, knee, and ankle joint for each jump.
Jump height and mechanical power in the knee and ankle joints decreased significantly (p < .010), while remained the same in the hip joint. In contrast, a significant increased vertical velocity was observed for the upper body segment. In addition, a significant higher angular momentum at the center of mass was detected during the braking and propulsion phase.
The findings highlight a fatigue-related decrease in lower limb power, particularly in the knee and ankle joints, which changed the mechanical power distribution at the joints of the lower limbs. The trunk extensor muscles were probably able to counteract the fatigue-related decrease in lower limb power by increased vertical velocity of the upper body segment and higher angular momentum at the center of mass during the braking and propulsion phase. Accordingly, the most effective way to maintain jumping performance in fatigued state would be to improve the fatigue resistance of the knee extensors, ankle plantar flexors, and trunk extensor muscles.
本研究旨在探讨300次间歇性纵跳对下肢关节机械功率分布的影响以及上半身对垂直跳跃表现的影响。
15名男性体育专业学生(年龄24.5±2.3岁;身高1.85±0.06米;体重84.8±8.5千克)以最大努力进行一组300次间歇性纵跳。采用逆动力学方法计算每次跳跃时髋关节、膝关节和踝关节的机械功率。
膝关节和踝关节的跳跃高度和机械功率显著下降(p<0.010),而髋关节的保持不变。相比之下,上半身段的垂直速度显著增加。此外,在制动和推进阶段,质心处的角动量显著更高。
研究结果突出了与疲劳相关的下肢功率下降,尤其是膝关节和踝关节,这改变了下肢关节的机械功率分布。躯干伸肌可能通过增加上半身段的垂直速度以及在制动和推进阶段质心处更高的角动量来抵消与疲劳相关的下肢功率下降。因此,在疲劳状态下保持跳跃表现的最有效方法是提高膝关节伸肌、踝关节跖屈肌和躯干伸肌的抗疲劳能力。