Shriners Hospitals for Children, Erie, PA 16509, USA.
J Biomech. 2010 Dec 1;43(16):3222-6. doi: 10.1016/j.jbiomech.2010.08.003. Epub 2010 Sep 9.
Accurate measurement of ground reaction forces under discrete areas of the foot is important in the development of more advanced foot models, which can improve our understanding of foot and ankle function. To overcome current equipment limitations, a few investigators have proposed combining a pressure mat with a single force platform and using a proportionality assumption to estimate subarea shear forces and free moments. In this study, two adjacent force platforms were used to evaluate the accuracy of the proportionality assumption on a three segment foot model during normal gait. Seventeen right feet were tested using a targeted walking approach, isolating two separate joints: transverse tarsal and metatarsophalangeal. Root mean square (RMS) errors in shear forces up to 6% body weight (BW) were found using the proportionality assumption, with the highest errors (peak absolute errors up to 12% BW) occurring between the forefoot and toes in terminal stance. The hallux exerted a small braking force in opposition to the propulsive force of the forefoot, which was unaccounted for by the proportionality assumption. While the assumption may be suitable for specific applications (e.g. gait analysis models), it is important to understand that some information on foot function can be lost. The results help highlight possible limitations of the assumption. Measured ensemble average subarea shear forces during normal gait are also presented for the first time.
准确测量足部离散区域的地面反作用力对于开发更先进的足部模型非常重要,这可以提高我们对足部和踝关节功能的理解。为了克服当前设备的局限性,一些研究人员提出将压力垫与单个力平台结合使用,并使用比例假设来估计子区域剪切力和自由力矩。在这项研究中,使用两个相邻的力平台来评估在正常步态期间三部分足部模型上比例假设的准确性。使用靶向行走方法测试了 17 只右脚,分离了两个单独的关节:跗横关节和跖趾关节。使用比例假设,剪切力的均方根(RMS)误差高达 6%体重(BW),最高误差(峰值绝对值高达 12% BW)发生在前脚和脚趾在终末站立期间。拇趾施加了与前脚的推进力相反的小制动力,这是比例假设所没有考虑到的。虽然该假设可能适用于特定应用(例如步态分析模型),但重要的是要了解可能会丢失一些足部功能信息。还首次呈现了正常步态期间测量的整体平均子区域剪切力。