Effects of a powered ankle-foot prosthesis on kinetic loading of the contralateral limb: A case series

被引:0
作者
Hill, David [1 ]
Herr, Hugh [1 ]
机构
[1] MIT, Media Lab, Cambridge, MA 02139 USA
来源
2013 IEEE 13TH INTERNATIONAL CONFERENCE ON REHABILITATION ROBOTICS (ICORR) | 2013年
关键词
amputee; ankle; biomechanics; external adduction moment; gait; loading rate; pressure; prosthesis; resultant force; transtibial; TO-STEP TRANSITIONS; TRANSTIBIAL PROSTHESIS; WALKING; AMPUTEE; GAIT; OSTEOARTHRITIS; PATTERNS; KNEE;
D O I
暂无
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Lower-extremity amputees encounter a series of stress-related challenges. Among them is an increased risk of chronic joint disorders. For unilateral, transtibial amputees, we hypothesize that increasing the power output of the trailing, ankle-foot prosthesis during powered plantar flexion could mitigate kinetic loading applied to the leading, contralateral leg during walking. Here, we present a case series that analyzes kinetic factors of unilateral, transtibial amputee gait and forms a comparison between two types of ankle prostheses with varying power outputs. The factors examined here are impact resultant force, peak foot pressure at heel-strike, step-to-step transition work, and knee external adduction moment. The two prostheses are the amputee participant's daily-use passive ankle-foot prosthesis and the BiOM powered ankle-foot prosthesis capable of biologically accurate powered plantar flexion during late stance. In a preliminary study on two transtibial amputees walking over level terrain at a controlled speed (1.25 m/s), we observed average reductions of 8% in peak impact resultant force, 18% in impact resultant force loading rate, 8% in peak heel-strike foot pressure, and 15% in the 1st peak knee external adduction moment when the powered ankle-foot prosthesis was compared to the conventional passive prosthesis. Overall, our preliminary results suggest that more biomimetic prosthetic ankle-foot push-off during late stance may limit leading-leg musculoskeletal stress in walking.
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页数:6
相关论文
共 20 条
[1]  
[Anonymous], 1992, GAIT ANAL NORMAL PAT
[2]  
Armstrong D G, 1998, J Foot Ankle Surg, V37, P303
[3]   Powered ankle-foot prosthesis to assist level-ground and stair-descent gaits [J].
Au, Samuel ;
Berniker, Max ;
Herr, Hugh .
NEURAL NETWORKS, 2008, 21 (04) :654-666
[4]   PLANTAR PRESSURE DISTRIBUTION PATTERNS DURING GAIT IN DIABETIC NEUROPATHY PATIENTS WITH A HISTORY OF FOOT ULCERS [J].
Bacarin, Tatiana Almeida ;
Sacco, Isabel C. N. ;
Hennig, Ewald M. .
CLINICS, 2009, 64 (02) :113-120
[5]  
BATENI H, 2002, J PROSTHET ORTHOT, V14, P2
[6]  
Donelan JM, 2002, J EXP BIOL, V205, P3717
[7]  
Eilenberg M. F., 2010, NEURAL SYSTEMS REHAB, V18, P164, DOI DOI 10.1109/TNSRE.2009.2039620
[8]   Bionic ankle-foot prosthesis normalizes walking gait for persons with leg amputation [J].
Herr, Hugh M. ;
Grabowski, Alena M. .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2012, 279 (1728) :457-464
[9]   Robotic transtibial prosthesis with biomechanical energy regeneration [J].
Hitt, Joseph ;
Sugar, Thomas ;
Holgate, Matthew ;
Bellman, Ryan ;
Hollander, Kevin .
INDUSTRIAL ROBOT-THE INTERNATIONAL JOURNAL OF ROBOTICS RESEARCH AND APPLICATION, 2009, 36 (05) :441-447
[10]   Energetic consequences of walking like an inverted pendulum: Step-to-step transitions [J].
Kuo, AD ;
Donelan, JM ;
Ruina, A .
EXERCISE AND SPORT SCIENCES REVIEWS, 2005, 33 (02) :88-97