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Biomechanical effects of continuous loop running in comparison to discontinuous runway running on locomotion and running shoe characterization

机译:与不连续跑道运行相比,连续循环运行对运动和跑鞋特性的生物力学影响

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Running and running shoe biomechanics are usually measured in laboratory settings, capturing discontinuous running trials. Continuous running measured outdoors doesn't allow comprehensive measurement equipment due to limited technology. This research compared biomechanical effects of continuous loop and discontinuous runway running on locomotion and running shoe characterisation. Twenty-two runners performed eight trials in three shoe conditions in a runway and a loop laboratory setting, while capturing ground reaction forces and lower limb kinematics. Running mode and shoe variable magnitudes and intra-participant variability, means were compared for main and interaction effects (p < 0.05) by a 2 × 3 within-participants repeated measures analysis of variance, and effect size estimation. Kinetic and kinematic variables indicated biomechanical effects induced by running mode. Continuous loop running significantly decreased ground contact time (241.31-234.47 ms), and braking force (0.37-0.35 bw). It showed a significantly flatter and inverted foot-strike at touchdown by reducing sagittal shoe ground angle (20.27-16.69°), and increasing ankle inversion angle (5.50-6.67°). Continuous loop running significantly increased intra-participant variability in ankle dorsiflexion (9.49-12.78) and maximal eversion angle (12.70-17.36). Kinetic and kinematics indicated biomechanical effects induced by running shoes, shoe classification was similar between modes. Running mode influences biomechanics, whilst shoe classification remains similar. Anterior-posterior braking force is overestimated in discontinuous runway running, combined with increased variability suggesting an inconsistent foot-strike. Variability at the ankle joint was seen to increase during continuous loop running, indicating a more rigid ankle complex during discontinuous runway running. Our findings suggest that continuous loop running should be used when precise absolute variable magnitudes are required while runway running tests appear sufficient for general comparative shoe evaluation.
机译:跑鞋和跑鞋的生物力学通常在实验室环境下进行测量,以获取不连续的跑跑试验。由于技术有限,在户外连续测量无法使用综合测量设备。这项研究比较了连续环和不连续跑道对运动和跑鞋特性的生物力学影响。 22名跑步者在跑道和环形实验室环境中的三种鞋子条件下进行了八次试验,同时捕获了地面反作用力和下肢运动学。通过2×3的参与者内部重复测量方差分析和影响大小估算,比较了跑步模式和鞋的可变幅度以及参与者内部的变异性,比较了主要和交互作用的均值(p <0.05)。动力学和运动学变量表明运行模式引起的生物力学效应。连续循环运行显着减少了地面接触时间(241.31-234.47 ms)和制动力(0.37-0.35 bw)。通过降低矢状鞋底弧度(20.27-16.69°)和增加脚踝内翻角(5.50-6.67°),触地时脚部明显平坦且倒立。连续循环显着增加了参与者的背屈度(9.49-12.78)和最大外翻角(12.70-17.36)。动力学和运动学表明跑鞋引起的生物力学作用,各模式之间的鞋类相似。跑步模式会影响生物力学,而鞋的分类仍然相似。在不连续的跑道跑步中,前后制动力被高估了,加之可变性增加,表明脚部踩踏不一致。在连续循环跑步过程中,可以看到踝关节的变异性增加,这表明在不连续的跑道跑步过程中,踝关节复合体的硬度更高。我们的发现表明,当需要精确的绝对变量幅度时,应使用连续循环运行,而跑道运行测试似乎足以进行一般的对比鞋评估。

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