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在爆发性运动中最佳的力量-速度曲线——更高:更快还是更强?

Optimal force-velocity profile in ballistic movements--altius: citius or fortius?

机构信息

Laboratory of Exercise Physiology (EA4338), University of Savoy, Le Bourget du Lac, France.

出版信息

Med Sci Sports Exerc. 2012 Feb;44(2):313-22. doi: 10.1249/MSS.0b013e31822d757a.

Abstract

PURPOSE

The study's purpose was to determine the respective influences of the maximal power (Pmax) and the force-velocity (F-v) mechanical profile of the lower limb neuromuscular system on performance in ballistic movements.

METHODS

A theoretical integrative approach was proposed to express ballistic performance as a mathematical function of Pmax and F-v profile. This equation was (i) validated from experimental data obtained on 14 subjects during lower limb ballistic inclined push-offs and (ii) simulated to quantify the respective influence of Pmax and F-v profile on performance.

RESULTS

The bias between performances predicted and obtained from experimental measurements was 4%-7%, confirming the validity of the proposed theoretical approach. Simulations showed that ballistic performance was mostly influenced not only by Pmax but also by the balance between force and velocity capabilities as described by the F-v profile. For each individual, there is an optimal F-v profile that maximizes performance, whereas unfavorable F-v balances lead to differences in performance up to 30% for a given Pmax. This optimal F-v profile, which can be accurately determined, depends on some individual characteristics (limb extension range, Pmax) and on the afterload involved in the movement (inertia, inclination). The lower the afterload, the more the optimal F-v profile is oriented toward velocity capabilities and the greater the limitation of performance imposed by the maximal velocity of lower limb extension.

CONCLUSIONS

High ballistic performances are determined by both maximization of the power output capabilities and optimization of the F-v mechanical profile of the lower limb neuromuscular system.

摘要

目的

本研究旨在确定下肢运动神经肌肉系统的最大功率(Pmax)和力速(F-v)机械特性对弹性能量运动表现的各自影响。

方法

提出了一种理论综合方法,将弹性能量运动表现表示为 Pmax 和 F-v 特性的数学函数。该方程通过(i)在 14 名受试者进行下肢弹性能量倾斜蹬伸时获得的实验数据进行验证,以及(ii)通过模拟来量化 Pmax 和 F-v 特性对表现的各自影响进行了验证。

结果

预测表现与实验测量得到的表现之间的偏差为 4%-7%,这证实了所提出的理论方法的有效性。模拟表明,弹性能量运动表现不仅受 Pmax 影响,还受 F-v 特性描述的力和速度能力之间的平衡影响。对于每个个体,都存在一个最佳的 F-v 特性,可使表现最大化,而不利的 F-v 平衡会导致在给定 Pmax 下表现差异高达 30%。这个最佳的 F-v 特性可以精确确定,它取决于一些个体特征(肢体伸展范围、Pmax)和运动涉及的后负荷(惯性、倾斜度)。后负荷越低,最佳 F-v 特性越倾向于速度能力,而下肢伸展最大速度对表现的限制越大。

结论

高弹性能量表现取决于最大功率输出能力的最大化和下肢运动神经肌肉系统的 F-v 机械特性的优化。

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