Leg and Joint Stiffness Adaptations to Minimalist and Maximalist Running Shoes

缓冲 脚踝 刚度 地面反作用力 赤脚的 接头(建筑物) 生物力学 关节刚度 物理医学与康复 口腔正畸科 结构工程 工程类 解剖 物理 运动学 医学 经典力学
作者
Allison H. Gruber,Shuqi Zhang,Jiahao Pan,Li Li
出处
期刊:Journal of Applied Biomechanics [Human Kinetics]
卷期号:37 (5): 408-414 被引量:9
标识
DOI:10.1123/jab.2020-0284
摘要

The running footwear literature reports a conceptual disconnect between shoe cushioning and external impact loading: footwear or surfaces with greater cushioning tend to result in greater impact force characteristics during running. Increased impact loading with maximalist footwear may reflect an altered lower-extremity gait strategy to adjust for running in compliant footwear. The authors hypothesized that ankle and knee joint stiffness would change to maintain the effective vertical stiffness, as cushioning changed with minimalist, traditional, and maximalist footwear. Eleven participants ran on an instrumental treadmill (3.5 m·s-1) for a 5-minute familiarization in each footwear, plus an additional 110 seconds before data collection. Vertical, leg, ankle, and knee joint stiffness and vertical impact force characteristics were calculated. Mixed model with repeated measures tested differences between footwear conditions. Compared with traditional and maximalist, the minimalist shoes were associated with greater average instantaneous and average vertical loading rates (P < .050), greater vertical stiffness (P ≤ .010), and less change in leg length between initial contact and peak resultant ground reaction force (P < .050). No other differences in stiffness or impact variables were observed. The shoe cushioning paradox did not hold in this study due to a similar musculoskeletal strategy for running in traditional and maximalist footwear and running with a more rigid limb in minimalist footwear.
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