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Operating length and velocity of human M. vastus lateralis fascicles during vertical jumping

机译:垂直跳跃过程中人类侧脑分枝杆菌束的工作长度和速度

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摘要

Humans achieve greater jump height during a counter-movement jump (CMJ) than in a squat jump (SJ). However, the crucial difference is the mean mechanical power output during the propulsion phase, which could be determined by intrinsic neuro-muscular mechanisms for power production. We measured M. vastus lateralis (VL) fascicle length changes and activation patterns and assessed the force–length, force–velocity and power–velocity potentials during the jumps. Compared with the SJ, the VL fascicles operated on a more favourable portion of the force–length curve (7% greater force potential, i.e. fraction of VL maximum force according to the force–length relationship) and more disadvantageous portion of the force–velocity curve (11% lower force potential, i.e. fraction of VL maximum force according to the force–velocity relationship) in the CMJ, indicating a reciprocal effect of force–length and force–velocity potentials for force generation. The higher muscle activation (15%) could therefore explain the moderately greater jump height (5%) in the CMJ. The mean fascicle-shortening velocity in the CMJ was closer to the plateau of the power–velocity curve, which resulted in a greater (15%) power–velocity potential (i.e. fraction of VL maximum power according to the power–velocity relationship). Our findings provide evidence for a cumulative effect of three different mechanisms—i.e. greater force–length potential, greater power–velocity potential and greater muscle activity—for an advantaged power production in the CMJ contributing to the marked difference in mean mechanical power (56%) compared with SJ.
机译:人类在反向运动跳跃(CMJ)中获得的跳跃高度要比在深蹲跳跃(SJ)中获得的跳跃高度更大。但是,关键的区别在于推进阶段的平均机械功率输出,这可以通过内在的神经肌肉机制来确定。我们测量了外侧外侧支(VL)的束长度变化和激活模式,并评估了跳跃过程中的力长,力速和功率速势。与SJ相比,VL分束器在力-长度曲线的更有利部分上工作(力势增加7%,即,根据力-长度关系,VL最大力的分数),而力-速度的不利部分更多。曲线(CMJ中的力势降低了11%,即VL最大力的分数,根据力-速度关系),表明力长度和力-速度势在力生成中的相互影响。因此,较高的肌肉激活度(15%)可以解释CMJ中适度较大的跳跃高度(5%)。 CMJ中的平均束缩短速度更接近功率-速度曲线的平台,这导致更大(15%)的功率-速度电势(即,根据功率-速度关系,VL最大功率的分数)。我们的发现为三种不同机制的累积效应提供了证据。更大的力长潜力,更大的力量速度潜力和更大的肌肉活动能力,从而使CMJ中的优势动力产生与SJ相比,平均机械力量有显着差异(56%)。

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