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Prolonged Running Using Bionic Footwear Influences Lower Limb Biomechanics

机译:使用仿生鞋的延长跑步影响下肢生物力学

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摘要

The running biomechanics of unstable shoes have been well investigated, however, little is known about how traditional neutral shoes in combination with unstable design elements and scientifically (bionic) designed shoes influence prolonged running biomechanics. The purpose of this study was to investigate biomechanical changes for a typical 5 km run and how footwear technology may affect outcomes. Sixteen healthy male recreational heel strike runners participated in this study, and completed two prolonged running sessions (neutral shoe session and bionic shoe session), with 7 to 10 days interval between sessions. A two-way repeated-measures analysis of variance (ANOVA, shoe × time) was conducted to determine any differences in joint biomechanics. Main effects for shoe type were observed at the ankle, knee and hip joints during the stance phase. In particular, decreased range of motion (ROM) was observed using the bionic shoes for all three joints, and the joint moments also had significant changes except for the frontal plane of the hip. Main effects for time were also observed at the ankle, knee and hip joints. The ROM of the sagittal plane in the knee and hip decreased post-5 km running. The reduction of ankle dorsiflexion, hip flexion, hip adduction and hip internal rotation angles were observed post-5 km running, as well as the increase of ankle eversion and external rotation, knee adduction and internal rotation angles. The kinetics also exhibited significant differences between pre-5 km running and post-5 km running. The interaction effects only existed in the ROM of the hip sagittal plane, hip adduction angle and hip internal rotation angle. The results suggested that bionic shoes could be beneficial for strengthening muscle control, enhancing postural stability and proprioceptive ability. Footwear personalization could be a solution that benefits runners, reduces injury risk and improves running performance.
机译:然而,不稳定的鞋子的行驶生物力学已经很好地调查了,关于传统的中性鞋与不稳定的设计元素以及科学(仿生)设计的鞋子的延长跑步生物力学时几乎都知道。本研究的目的是调查典型的5公里运行的生物力学变化以及鞋类技术如何影响结果。十六岁健康的男性娱乐高跟鞋参加了这项研究,并完成了两次延长的跑步(中性鞋会议和仿生鞋),在会议之间进行了7至10天。进行双向反复措施的方差分析(ANOVA,鞋×时间)以确定关节生物力学的任何差异。在姿势期间在踝关节,膝关节和髋关节观察鞋型的主要效果。特别地,使用用于所有三个关节的仿生鞋,观察到减少的运动(ROM),并且关节矩也具有显着的变化,除了臀部的正面平面。在脚踝,膝盖和髋关节中也观察到时间的主要效果。膝盖和臀部的矢状平面的rom跑到5公里的跑步下降。观察到脚踝背屈,髋部屈曲,髋部内收集和髋部内旋转角度的减少,以及踝关节转换和外部旋转,膝关节和内部旋转角度的增加。动力学也在5公里跑步和5公里运行之间表现出显着差异。仅存在于臀部矢状平面,臀部内部旋转角度和髋部内旋转角度的互动效果。结果表明,仿生鞋可能有利于加强肌肉控制,增强姿势稳定性和遗产能力。鞋类个性化可能是一个福利者的解决方案,减少伤害风险并提高运行性能。

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