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行走和跑步冲击负荷过程中的机械能与有效足部质量

Mechanical energy and effective foot mass during impact loading of walking and running.

作者信息

Chi Kai-Jung, Schmitt Daniel

机构信息

Department of Biology, Duke University, Durham, NC 27708-0338, USA.

出版信息

J Biomech. 2005 Jul;38(7):1387-95. doi: 10.1016/j.jbiomech.2004.06.020. Epub 2004 Nov 30.

Abstract

The human heel pad is considered an important structure for attenuation of the transient force caused by heel-strike. Although the mechanical properties of heel pads are relatively well understood, the mechanical energy (Etot) absorbed by the heel pad during the impact phase has never been documented directly because data on the effective foot mass (Meff) was previously unavailable during normal forward locomotion. In this study, we use the impulse-momentum method (IMM) for calculating Meff from moving subjects. Mass-spring-damper models were developed to evaluate errors and to examine the effects of pad property, upper body mass, and effective leg spring on Meff. We simultaneously collected ground reaction forces, pad deformation, and lower limb kinematics during impact phase of barefoot walking, running, and crouched walking. The latter was included to examine the effect of knee angle on Meff. The magnitude of Meff as a percentage of body mass (M(B)) varies with knee angle at impact and significantly differs among gaits: 6.3%M(B) in walking, 5.3%M(B) in running, and 3.7%M(B) in crouched walking. Our modeling results suggested that Meff is insensitive to heel pad resilience and effective leg stiffness. At the instant prior to heel strike, Etot ranges from 0.24 to 3.99 J. The combination of video and forceplate data used in this study allows analyses of Etot and Etot as a function of heel-strike kinematics during normal locomotion. Relationship between Meff and knee angle provides insights into how changes in posture moderate impact transients at different gaits.

摘要

人类足跟垫被认为是衰减足跟撞击所产生瞬态力的重要结构。尽管人们对足跟垫的力学性能已有相对深入的了解,但在撞击阶段足跟垫吸收的机械能(Etot)从未被直接记录过,因为在正常向前行走过程中,之前无法获得有效足部质量(Meff)的数据。在本研究中,我们使用冲量 - 动量法(IMM)从移动的受试者中计算Meff。开发了质量 - 弹簧 - 阻尼器模型来评估误差,并研究垫特性、上身质量和有效腿部弹簧对Meff的影响。我们在赤脚行走、跑步和蹲行的撞击阶段同时收集了地面反作用力、垫变形和下肢运动学数据。纳入蹲行是为了研究膝关节角度对Meff的影响。Meff占体重(M(B))的百分比大小随撞击时的膝关节角度而变化,并且在不同步态之间有显著差异:行走时为6.3%M(B),跑步时为5.3%M(B),蹲行时为3.7%M(B)。我们的建模结果表明,Meff对足跟垫弹性和有效腿部刚度不敏感。在足跟撞击前的瞬间,Etot范围为0.24至3.99焦耳。本研究中使用的视频和测力台数据的结合允许分析Etot以及Etot作为正常运动过程中足跟撞击运动学的函数。Meff与膝关节角度之间的关系为姿势变化如何调节不同步态下的冲击瞬态提供了见解。

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