不同鞋垫刚度对步行时压力中心及踝关节运动的影响:1例报告

Li Jin
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引用次数: 1

摘要

在运动过程中,脚-脚踝系统对身体的向前发展起着重要作用。压力中心(COP)被视为在站立阶段作用在足部表面的地面反作用力(GRF)矢量的点。COP运动轨迹和速度反映了足节段的站立阶段向前发展和踝关节的运动特征。本研究旨在研究步行站立阶段不同水平的鞋垫刚度对COP前进速度、GRF和踝关节角度的影响。两名健康受试者(一名女性,一名男性;年龄26.5±6.4岁,身高168.5±2.1 cm,体重64.9±5.4 kg)参加了本研究。受试者被要求以两种不同的速度沿着10米的人行道行走:自选正常(SSN)和自选快速(SSF)。在每个行走速度内,受试者被要求在两种不同的鞋垫硬度条件下行走:(1)本研究中使用的测试鞋(Nike Free RN Flyknit 2017)的正常鞋垫(NSI);(2) 1.6毫米厚的碳纤维鞋垫(CFI)安装在测试鞋内。更硬的鞋垫(CFI)显著降低了峰值踝关节内旋角(p=0.001)和矢状面角ROM(p=0.022);此外,与NSI条件相比,CFI显著增加了峰值踝外翻角(p=0.028)。总之,增加鞋垫硬度将改变SSF步行速度下站立阶段踝关节的运动。此外,较硬的鞋垫可能倾向于在初始脚跟触地和最终站立阶段降低COP峰值速度。未来的研究应该调查各种鞋垫特性对各种运动活动中下肢系统运动学和动力学模式的综合影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Influence of Different Footwear Insole Stiffness on Center of Pressure and Ankle Kinematics during Walking: A Case Report
During locomotion, the foot–ankle system plays an important role for forward progression of the body. The center of pressure (COP) is regarded as the point of the ground reaction force (GRF) vector acting on the foot surface during the stance phase. COP movement trajectory and velocity reflect the stance phase forward progression of the foot segment and the ankle joint motion characteristics. This study aimed to investigate different levels of footwear insole stiffness on COP forward velocity, GRF and ankle joint angles during walking stance phase. Two healthy subjects (one female, one male; age 26.5 ± 6.4 years, height 168.5 ± 2.1 cm, weight 64.9 ± 5.4 kg) participated in this study. Subjects were asked to walk along a 10 m walkway at two different speeds: self–selected normal (SSN) and self–selected fast (SSF). Within each walking speed, subjects were required to walk under two different insole stiffness conditions: (1) normal shoe insole (NSI) from the testing shoe (Nike Free RN Flyknit 2017) used in this study; (2) 1.6 mm thick carbon fiber insole (CFI) fitted within the testing shoe. Stiffer insole (CFI) significantly decreased peak ankle internal rotation angle (p = 0.001) and sagittal plane angle ROM (p = 0.022); additionally, CFI significantly increased peak ankle eversion angle compared to the NSI condition (p = 0.028). In conclusion, increasing footwear insole stiffness would alter stance phase ankle joint motion at SSF walking speed. Additionally, stiffer insoles may tend to decrease COP peak velocity at the initial heel strike and the terminal stance phase. Future research should investigate the combined effects of various insole properties on lower extremity system kinematic and kinetic patterns in various locomotion activities.
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