Effective position of the rotation axis of an ankle stretching machine and the effect of misalignment

Q4 Engineering
Yuma Shiraishi, S. Okamoto, Naomi Yamada, Koki Inoue, Yasuhiro Akiyama, Yoji Yamada
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引用次数: 3

Abstract

The mechanical rotation axes of joint exercisers are believed to operate better when they match the biomechanical axes of human joints. However, there are few studies regarding ankle stretching machines. Further, the maleffects of rotation axis misalignments are not well known. Hence, we investigate the effective positions of rotation axes for ankle stretching machines and the effects of misalignments using a pneumatic-driven stretching machine developed in our previous study (Shiraishi et al., 2020). Eight healthy young males (ages 23.3 ± 1.4 years) participated in stretching exercises while the relative positions of the rotation axes between the machine and ankle were changed via plates installed under the heel. The stretching machine dorsiflexed the feet of the participants, and the dorsiflexion angles and three-axial forces applied to the forefeet were recorded. The measured values at the maximum dorsiflexion angle were evaluated by two-way analysis of variance and/or regression analysis. We determined that the rotation axis of the machine must be placed 7 mm above the lateral ankle because the normal force applied to the forefoot and maximum dorsiflexion angle were large, whereas the friction force was moderate. Further, the relationships among the dorsiflexion angle and contact forces were investigated via covariance selection. The three-axial forces significantly decreased as the axis of the machine was lowered below the ankle. Additionally, the force normal to the sole had large positive effects on the dorsiflexion angle and friction force of the sole, which could damage the skin. The misalignment of the rotation axis increased the contact force at the sole when the axis of the machine was above the ankle or decreased the efficiency of force transmission from the stretching machine to the user’s foot when the machine’s axis was below the ankle.
踝关节拉伸机旋转轴的有效位置及错位的影响
当关节锻炼者的机械旋转轴与人体关节的生物力学轴相匹配时,被认为能更好地工作。然而,关于踝关节伸展器的研究很少。此外,旋转轴错位的不良影响还不为人所知。因此,我们研究了踝关节拉伸机旋转轴的有效位置,以及使用我们之前研究中开发的气动驱动拉伸机对错位的影响(Shiraishi et al., 2020)。8名健康青年男性(年龄23.3±1.4岁)参加伸展运动,同时通过安装在脚跟下的钢板改变机器与踝关节之间旋转轴的相对位置。拉伸机对参与者的脚进行背屈,记录背屈角度和施加在前脚上的三轴力。通过双向方差分析和/或回归分析评估最大背屈角下的测量值。我们确定机器的旋转轴必须放置在外侧踝关节上方7毫米处,因为施加在前足的法向力和最大背屈角度很大,而摩擦力适中。此外,通过协方差选择研究了背屈角与接触力之间的关系。随着机器的轴线降低到脚踝以下,三轴力显著降低。另外,法向鞋底的力对鞋底的背屈角和摩擦力有较大的正向影响,会损伤皮肤。当机器轴线在脚踝以上时,旋转轴的不对准增加了鞋底的接触力,当机器轴线在脚踝以下时,从拉伸机到用户脚的力传递效率降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomechanical Science and Engineering
Journal of Biomechanical Science and Engineering Engineering-Biomedical Engineering
CiteScore
0.90
自引率
0.00%
发文量
18
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