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동적 기울임외란에 대한 발목전략 반응 특성

Characteristics of Ankle Strategy Responses to Dynamic Tilting Perturbations

Journal of the Korean Society for Precision Engineering 2018;35(2):203-210.
Published online: February 1, 2018

1 세종대학교 대학원 기계공학과

2 사이넥스 임상연구부

3 성남고령친화종합체험관 R&B 센터

1 Department of Mechanical Engineering, Sejong University

2 Department of clinical research device, Synex Co., Ltd.

3 R&B Center, Seongnam Senior Experience Complex

#E-mail: dil349@sejong.ac.kr, TEL: +82-2-3408-3663
• Received: June 14, 2017   • Revised: August 24, 2017   • Accepted: August 28, 2017

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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  • Estimation of Unmeasured Golf Swing of Arm Based on the Swing Dynamics
    Changwon Lee, Sukyung Park
    International Journal of Precision Engineering and Manufacturing.2018; 19(5): 745.     CrossRef
  • Analysis of Contact Pressure at Knee Cartilage during Gait with Respect to Foot Progression Angle
    Jeongro Yoon, Sungpil Ha, Seungju Lee, Soo-Won Chae
    International Journal of Precision Engineering and Manufacturing.2018; 19(5): 761.     CrossRef

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Characteristics of Ankle Strategy Responses to Dynamic Tilting Perturbations
J. Korean Soc. Precis. Eng.. 2018;35(2):203-210.   Published online February 1, 2018
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Characteristics of Ankle Strategy Responses to Dynamic Tilting Perturbations
J. Korean Soc. Precis. Eng.. 2018;35(2):203-210.   Published online February 1, 2018
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Characteristics of Ankle Strategy Responses to Dynamic Tilting Perturbations
Image Image Image Image Image Image
Fig. 1 Experimental configuration and tilting perturbation simulator for dynamic tilting perturbations used in experiment
Fig. 2 Reference axes on the base plate of tilting perturbation simulator for four dynamic tilting perturbations considered in the current study
Fig. 3 Ankle joint motion responded to dynamic tilting perturbations
Fig. 4 Changes in average peak foot pressures over tilting angle of the base plate responded to dynamic tilting perturbations(*: P < 0.05).
Fig. 5 Representative results for the peak pressure and COP trajectory responded to dynamic tilting perturbations
Fig. 6 Muscle activation percentages responded to dynamic tilting perturbations. Number in the graph indicates muscle activation percent
Characteristics of Ankle Strategy Responses to Dynamic Tilting Perturbations