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The Oxygen Uptake Slow Component at Submaximal Intensities in Breaststroke Swimming

机译:蛙泳游泳中最大强度下的氧气吸收缓慢成分

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The present work proposed to study the oxygen uptake slow component (VO2 SC) of breaststroke swimmers at four different intensities of submaximal exercise, via mathematical modeling of a multi-exponential function. The slow component (SC) was also assessed with two different fixed interval methods and the three methods were compared. Twelve male swimmers performed a test comprising four submaximal 300 m bouts at different intensities where all expired gases were collected breath by breath. Multi-exponential modeling showed values above 450 ml.min-1 of the SC in the two last bouts of exercise (those with intensities above the lactate threshold). A significant effect of the method that was used to calculate the VO2 SC was revealed. Higher mean values were observed when using mathematical modeling compared with the fixed interval 3rd min method (F=7.111; p=0.012; eta 2=0.587); furthermore, differences were detected among the two fixed interval methods. No significant relationship was found between the SC determined by any method and the blood lactate measured at each of the four exercise intensities. In addition, no significant association between the SC and peak oxygen uptake was found. It was concluded that in trained breaststroke swimmers, the presence of the VO2 SC may be observed at intensities above that corresponding to the 3.5 mM-1 threshold. Moreover, mathematical modeling of the oxygen uptake on-kinetics tended to show a higher slow component as compared to fixed interval methods.
机译:本工作提出通过多指数函数的数学模型研究四种不同次最大运动强度下蛙泳游泳者的摄氧缓慢成分(VO2 SC)。还使用两种不同的固定间隔方法评估了慢速分量(SC),并比较了这三种方法。十二名男性游泳者进行了一项测试,包括以不同强度进行的四次最大300 m搏动,所有呼出的气体均通过呼吸进行收集。多指数建模显示,在最后两次运动中,SC的值高于450 ml.min-1(强度高于乳酸阈值的人)。揭示了用于计算VO2 SC的方法的显着效果。与固定间隔第3分钟方法相比,使用数学模型观察到的平均值更高(F = 7.111; p = 0.012; eta 2 = 0.587);此外,在两种固定间隔方法之间检测到差异。在通过任何方法确定的SC与在四种运动强度中的每种运动强度下测得的血乳酸之间都没有发现显着的关系。另外,在SC和峰值摄氧量之间没有发现显着关联。结论是,在受过训练的蛙泳游泳者中,可以在高于对应于3.5 mM-1阈值的强度下观察到VO2 SC的存在。此外,与固定间隔方法相比,氧吸收动力学的数学模型倾向于显示更高的慢速成分。

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