在不增加肌肉活动的情况下提高步态参数的开发鞋的初步研究。

IF 1.8 4区 计算机科学 Q3 ENGINEERING, BIOMEDICAL Applied Bionics and Biomechanics Pub Date : 2024-12-14 eCollection Date: 2024-01-01 DOI:10.1155/abb/5587738
Teppei Abiko, Shin Murata, Yoshihiro Kai, Hideki Nakano, Masashi Sakamoto, Keita Suzuki, Dai Matsuo, Michio Kawaguchi
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引用次数: 0

摘要

这项初步研究调查了一种新开发的鞋子设计在不改变健康女性肌肉活动的情况下改善步态参数的潜力。鞋的设计特点是一个v形的鞋跟和一个高弹性的中底,这是为了提高稳定性的鞋跟接触和促进有效的负荷转移在整个步态周期。10名研究参与者进行了随机交叉设计,在试验期间穿着高级鞋和普通鞋。测量了时空步态数据和肌肉活动,以评估鞋子设计对步态效率的影响。在步态速度、步幅和步幅长度以及摆动时间上观察到明显的改善,表明步态效率提高。重要的是,这些改善是在没有显著改变肌肉活动的情况下实现的,这表明开发的鞋子设计在不增加肌肉负荷的情况下提高了步态效率。考虑到小样本量的局限性和本初步研究的探索性,需要进一步研究更大的队列来验证这些初步发现。试验注册:临床试验注册标识:UMIN000054260。
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A Pilot Study on Developed Shoes That Enhance Gait Parameters Without Increasing Muscle Activity.

This pilot study investigated the potential of a newly developed shoe design to improve gait parameters without altering muscle activity in healthy women. The shoe design features a V-shaped heel and a high-elasticity midsole, which are intended to enhance stability during heel contact and promote efficient load transfer throughout the gait cycle. Ten study participants underwent a randomized crossover design, wearing developed and general shoes during the trials. Spatiotemporal gait data and muscle activity were measured to assess the impact of the shoe design developed on gait efficiency. Significant improvements in gait speed, step and stride length, and swing time were observed with the developed shoes, indicating improved gait efficiency. Importantly, these improvements were achieved without significant changes in muscle activity, suggesting that the developed shoe design improves gait efficiency without increasing muscle workload. Considering the limitations of the small sample size and the exploratory nature of this pilot study, further research with a larger cohort is necessary to validate these preliminary findings. Trial Registration: Clinical Trial Registry identifier: UMIN000054260.

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来源期刊
Applied Bionics and Biomechanics
Applied Bionics and Biomechanics ENGINEERING, BIOMEDICAL-ROBOTICS
自引率
4.50%
发文量
338
审稿时长
>12 weeks
期刊介绍: Applied Bionics and Biomechanics publishes papers that seek to understand the mechanics of biological systems, or that use the functions of living organisms as inspiration for the design new devices. Such systems may be used as artificial replacements, or aids, for their original biological purpose, or be used in a different setting altogether.
期刊最新文献
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