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首页> 外文期刊>European Journal of Applied Physiology >Maximal torque- and power-pedaling rate relationships for elite sprint cyclists in laboratory and field tests
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Maximal torque- and power-pedaling rate relationships for elite sprint cyclists in laboratory and field tests

机译:精英冲刺自行车手在实验室和野外测试中的最大扭矩和功率踩踏速率关系

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摘要

Performance models provide an opportunity to examine cycling in a broad parameter space. Variables used to drive such models have traditionally been measured in the laboratory. The assumption, however, that maximal laboratory power is similar to field power has received limited attention. The purpose of the study was to compare the maximal torque- and power-pedaling rate relationships during “all-out” sprints performed on laboratory ergometers and on moving bicycles with elite cyclists. Over a 3-day period, seven male (mean ± SD; 180.0 ± 3.0 cm; 86.2 ± 6.1 kg) elite track cyclists completed two maximal 6 s cycle ergometer trials and two 65 m sprints on a moving bicycle; calibrated SRM powermeters were used and data were analyzed per revolution to establish torque- and power-pedaling rate relationships, maximum power, maximum torque and maximum pedaling rate. The inertial load of our laboratory test was (37.16 ± 0.37 kg m2), approximately half as large as the field trials (69.7 ± 3.8 kg m2). There were no statistically significant differences between laboratory and field maximum power (1791 ± 169; 1792 ± 156 W; P = 0.863), optimal pedaling rate (128 ± 7; 129 ± 9 rpm; P = 0.863), torque-pedaling rate linear regression slope (?1.040 ± 0.09; ?1.035 ± 0.10; P = 0.891) and maximum torque (266 ± 20; 266 ± 13 Nm; P = 0.840), respectively. Similar torque- and power-pedaling rate relationships were demonstrated in laboratory and field settings. The findings suggest that maximal laboratory data may provide an accurate means of modeling cycling performance.
机译:性能模型为检查广泛参数空间中的循环提供了机会。传统上,用于驱动此类模型的变量是在实验室中测量的。但是,最大实验室功率类似于现场功率的假设受到了有限的关注。这项研究的目的是比较在实验室测力计和带有精英骑行者的移动自行车上进行的“全力冲刺”冲刺过程中最大的扭矩和功率踩踏速度之间的关系。在三天的时间里,七名男性(平均±SD; 180.0±3.0 cm; 86.2±6.1 kg)优秀的田径自行车手在移动的自行车上完成了两次最大的6 s自行车测功试验和两次65 m的短跑。使用已校准的SRM功率计,并分析每转数据,以建立扭矩与功率踩踏率的关系,最大功率,最大扭矩和最大踩踏率。我们实验室测试的惯性负载为(37.16±0.37 kg m2 ),大约是现场试验(69.7±3.8 kg m2 )的一半。实验室和现场最大功率(1791±169; 1792±156 W; P = 0.863),最佳踩踏速度(128±7; 129±9 rpm; P = 0.863),线性扭矩踩踏速度之间在统计学上无显着差异回归斜率(?1.040±0.09;?1.035±0.10; P = 0.891)和最大扭矩(266±20; 266±13 Nm; P = 0.840)。在实验室和现场环境中也证明了类似的扭矩和动力踏板速度关系。这些发现表明,最大的实验室数据可能为建模循环性能提供准确的方法。

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