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Foot lengthening and shortening during gait: A parameter to investigate foot function?

机译:步态中脚的​​延长和缩短:研究脚功能的参数吗?

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Introduction: Based on the windlass mechanism theory of Hicks, the medial longitudinal arch (MLA) flattens during weight bearing. Simultaneously, foot lengthening is expected. However, changes in foot length during gait and the influence of walking speed has not been investigated yet. Methods: The foot length and MLA angle of 34 healthy subjects (18 males, 16 females) at 3 velocities (preferred, low (preferred -0.4m/s) and fast (preferred +0.4m/s) speed were investigated with a 3D motion analysis system (VICON?). The MLA angle was calculated as the angle between the second metatarsal head, the navicular tuberculum and the heel in the local sagittal plane. Foot length was calculated as the distance between the marker at the heel and the 2nd metatarsal head. A General Linear Model for repeated measures was used to indicate significant differences in MLA angle and foot length between different walking speeds. Results: The foot lengthened during the weight acceptance phase of gait and shortened during propulsion. With increased walking speed, the foot elongated less after heel strike and shortened more during push off. The MLA angle and foot length curve were similar, except between 50% and 80% of the stance phase in which the MLA increases whereas the foot length showed a slight decrease. Conclusion: Foot length seems to represent the Hicks mechanism in the foot and the ability of the foot to bear weight. At higher speeds, the foot becomes relatively stiffer, presumably to act as a lever arm to provide extra propulsion.
机译:简介:根据希克斯的卷扬机机理理论,负重过程中内侧纵弓(MLA)变平。同时,脚会延长。然而,尚未研究步态中脚长的变化和步行速度的影响。方法:以3种速度(优选,低(优选-0.4m / s)和快速(优选+ 0.4m / s))的3速度对34名健康受试者(18名男性,16名女性)的脚长和MLA角进行了3D研究。运动分析系统(VICON?)。MLA角的计算方法为第二meta骨头,舟状结核与脚跟在局部矢状面之间的夹角;脚的长度计算为脚跟处的标记与第二根之间的距离repeated骨头:重复测量的通用线性模型用于表明不同步行速度之间MLA角度和脚长的显着差异结果:脚步态在步态承重阶段加长,而在推进过程中脚变短。 MLA角度和脚长曲线相似,除了在MLA增加的站立阶段的50%至80%之间,而脚长显示d略有下降。结论:脚长似乎代表了脚的希克斯机制和脚承受重量的能力。在较高的速度下,脚会变得相对较硬,大概是充当杠杆臂以提供额外的推进力。

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