Ankle mechanics during sidestep cutting implicates need for 2-degrees of freedom powered ankle-foot prostheses

被引:19
作者
Ficanha, Evandro M. [1 ]
Rastgaar, Mohammad [1 ]
Kaufman, Kenton R. [2 ]
机构
[1] Michigan Technol Univ, Dept Mech Engn Engn Mech, Houghton, MI 49931 USA
[2] Mayo Clin, Dept Orthoped Surg, Mot Anal Lab, Rochester, MN USA
基金
美国国家科学基金会;
关键词
ankle kinematics; ankle kinetics; ankle moments; degrees of freedom; gait analysis; human ankle impedance; human ankle mechanics; prosthetic; sidestep cutting; turning maneuvers; STANCE PHASE; TURNING STRATEGIES; KNEE AMPUTEES; WALKING; KINEMATICS; GAIT; BIOMECHANICS; KINETICS;
D O I
10.1682/JRRD.2014.02.0043
中图分类号
R49 [康复医学];
学科分类号
100215 ;
摘要
The ankle joint of currently available powered prostheses is capable of controlling one degree of freedom (DOE), focusing on improved mobility in the sagittal plane. To increase agility, the requirements of turning in prosthesis design need to be considered. Ankle kinematics and kinetics were studied during sidestep cutting and straight walking. There were no significant differences between the ankle sagittal plane mechanics when comparing sidestep cutting and straight walking; however, significant differences were observed in ankle frontal plane mechanics. During straight walking, the inversion-eversion (IE) angles were smaller than with sidestep cutting. The ankle that initiated the sidestep cutting showed progressively increasing inversion from 2 to 13 degrees while the following contralateral step showed progressively decreasing inversion. from 8 to -4 degrees during normal walking speed. The changes in IE kinematics were the most significant during sidestep cutting compared with straight walking. The IF moments of the step that initiated the sidestep cutting were always in eversion, acting as a braking moment opposing the inverting motion. This suggests that an ankle-foot prosthesis with active DOFs in the sagittal and frontal planes will increase the agility of gait for patients with limb loss.
引用
收藏
页码:97 / 112
页数:16
相关论文
共 38 条
[1]  
Adamczyk PG, 2011, P 2011 ANN M AM SOC
[2]   Intrinsic foot kinematics measured in vivo during the stance phase of slow running [J].
Arndt, A. ;
Wolf, P. ;
Liu, A. ;
Nester, C. ;
Stacoff, A. ;
Jones, R. ;
Lundgren, P. ;
Lundberg, A. .
JOURNAL OF BIOMECHANICS, 2007, 40 (12) :2672-2678
[3]  
Bateni H., 2002, J Prosthet Orthot, V14, P2, DOI [10.1097/00008526-200203000-00003, DOI 10.1097/00008526-200203000-00003]
[4]   ANALYSIS OF MECHANICAL AND METABOLIC FACTORS IN THE GAIT OF CONGENITAL BELOW KNEE AMPUTEES - A COMPARISON OF THE SACH AND SEATTLE FEET [J].
COLBORNE, GR ;
NAUMANN, S ;
LONGMUIR, PE ;
BERBRAYER, D .
AMERICAN JOURNAL OF PHYSICAL MEDICINE & REHABILITATION, 1992, 71 (05) :272-278
[5]  
Computing Community Consortium and Computing Research Association, 2009, ROADM US ROB INT ROB
[6]  
Davis R.B., 1996, GAIT POSTURE, V4, P224, DOI 10.1016/0966-6362(95)01045-9
[7]  
Ferris AE, 2011, P 2011 ANN M AM SOC
[8]  
Gates D.H., 2004, THESIS BOSTON U
[9]   Ground reaction forces and impulses during a transient turning maneuver [J].
Glaister, Brian C. ;
Orendurff, Michael S. ;
Schoen, Jason A. ;
Bernatz, Greta C. ;
Klute, Glenn K. .
JOURNAL OF BIOMECHANICS, 2008, 41 (14) :3090-3093
[10]   Video task analysis of turning during activities of daily living [J].
Glaister, Brian C. ;
Bernatz, Greta C. ;
Klute, Glenn K. ;
Orendurff, Michael S. .
GAIT & POSTURE, 2007, 25 (02) :289-294