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The ‘Critical Power’ Concept: Applications to Sports Performance with a Focus on Intermittent High-Intensity Exercise

机译:关键力量概念:以间歇性高强度运动为重点的运动表现应用

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摘要

The curvilinear relationship between power output and the time for which it can be sustained is a fundamental and well-known feature of high-intensity exercise performance. This relationship ‘levels off’ at a ‘critical power’ (CP) that separates power outputs that can be sustained with stable values of, for example, muscle phosphocreatine, blood lactate, and pulmonary oxygen uptake (V˙O2), from power outputs where these variables change continuously with time until their respective minimum and maximum values are reached and exercise intolerance occurs. The amount of work that can be done during exercise above CP (the so-called W′) is constant but may be utilized at different rates depending on the proximity of the exercise power output to CP. Traditionally, this two-parameter CP model has been employed to provide insights into physiological responses, fatigue mechanisms, and performance capacity during continuous constant power output exercise in discrete exercise intensity domains. However, many team sports (e.g., basketball, football, hockey, rugby) involve frequent changes in exercise intensity and, even in endurance sports (e.g., cycling, running), intensity may vary considerably with environmental/course conditions and pacing strategy. In recent years, the appeal of the CP concept has been broadened through its application to intermittent high-intensity exercise. With the assumptions that W′ is utilized during work intervals above CP and reconstituted during recovery intervals below CP, it can be shown that performance during intermittent exercise is related to four factors: the intensity and duration of the work intervals and the intensity and duration of the recovery intervals. However, while the utilization of W′ may be assumed to be linear, studies indicate that the reconstitution of W′ may be curvilinear with kinetics that are highly variable between individuals. This has led to the development of a new CP model for intermittent exercise in which the balance of W′ remaining (WBAL) may be calculated with greater accuracy. Field trials of athletes performing stochastic exercise indicate that this WBAL model can accurately predict the time at which W′ tends to zero and exhaustion is imminent. The WBAL model potentially has important applications in the real-time monitoring of athlete fatigue progression in endurance and team sports, which may inform tactics and influence pacing strategy.
机译:力量输出与其持续时间之间的曲线关系是高强度运动表现的基本且众所周知的特征。这种关系在“临界功率”(CP)处“稳定”,该“临界功率”将可以稳定输出的功率输出(例如,肌肉磷酸肌酸,血液乳酸和肺氧摄取)保持稳定( V ˙< / mo> O 2 ),从功率输出中,这些变量随时间连续变化直到达到各自的最小值和最大值,并且出现运动不耐症。在CP之上进行锻炼期间可以完成的工作量(所谓的W')是恒定的,但可以根据输出的运动功率与CP的接近程度以不同的速率使用。传统上,已使用此两参数CP模型来提供对离散运动强度域中连续恒定功率输出运动期间的生理反应,疲劳机制和性能的了解。但是,许多团队运动(例如篮球,足球,曲棍球,橄榄球)涉及运动强度的频繁变化,即使在耐力运动(例如骑自行车,跑步)中,强度也会因环境/赛道条件和起搏策略而有很大差异。近年来,通过将CP概念应用于间歇性高强度锻炼,其吸引力得到了扩大。假设W'在CP之上的工作间隔中被利用,而在CP之下的恢复间隔中被重建,则可以证明间歇运动期间的表现与四个因素有关:工作间隔的强度和持续时间以及肌肉的强度和持续时间。恢复间隔。然而,虽然可以假定W'的利用是线性的,但研究表明W'的重构可能是曲线的,动力学在个体之间变化很大。这导致了间歇性运动的新CP模型的开发,其中剩余W'的平衡( W BAL ' )可以更精确地计算。进行随机锻炼的运动员的田间试验表明,此 W BAL ' 模型可以准确地预测W'趋于零的时间,疲惫迫在眉睫。 W < mtext> BAL ' 模型在耐力和团队运动中运动员疲劳进程的实时监控中可能具有重要的应用,这可能告知战术并影响步调策略。

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