DocumentCode :
36907
Title :
Multivariable Dynamic Ankle Mechanical Impedance With Active Muscles
Author :
Hyunglae Lee ; Krebs, H.I. ; Hogan, Neville
Author_Institution :
Dept. of Mech. Eng., Massachusetts Inst. of Technol., Cambridge, MA, USA
Volume :
22
Issue :
5
fYear :
2014
fDate :
Sept. 2014
Firstpage :
971
Lastpage :
981
Abstract :
Multivariable dynamic ankle mechanical impedance in two coupled degrees-of-freedom (DOFs) was quantified when muscles were active. Measurements were performed at five different target activation levels of tibialis anterior and soleus, from 10% to 30% of maximum voluntary contraction (MVC) with increments of 5% MVC. Interestingly, several ankle behaviors characterized in our previous study of the relaxed ankle were observed with muscles active: ankle mechanical impedance in joint coordinates showed responses largely consistent with a second-order system consisting of inertia, viscosity, and stiffness; stiffness was greater in the sagittal plane than in the frontal plane at all activation conditions for all subjects; and the coupling between dorsiflexion-plantarflexion and inversion-eversion was small - the two DOF measurements were well explained by a strictly diagonal impedance matrix. In general, ankle stiffness increased linearly with muscle activation in all directions in the 2-D space formed by the sagittal and frontal planes, but more in the sagittal than in the frontal plane, resulting in an accentuated “peanut shape.” This characterization of young healthy subjects´ ankle mechanical impedance with active muscles will serve as a baseline to investigate pathophysiological ankle behaviors of biomechanically and/or neurologically impaired patients.
Keywords :
biomechanics; biomedical measurement; elastic constants; impedance matrix; medical disorders; muscle; 2D space; DOF measurements; accentuated peanut shape; ankle stiffness; biomechanically impaired patients; degrees-of-freedom; diagonal impedance matrix; dorsiflexion-plantarflexion coupling; frontal plane; frontal planes; inertia; inversion-eversion coupling; joint coordinates; maximum voluntary contraction; multivariable dynamic ankle mechanical impedance; muscle activation; muscles; neurologically impaired patients; pathophysiological ankle behaviors; sagittal plane; sagittal planes; second-order system; soleus; tibialis anterior; viscosity; young healthy subjects; Electromyography; Impedance; Impedance measurement; Joints; Muscles; Robots; Torque; Ankle joint; ankle joint stiffness; ankle stiffness; human ankle; impedance structure; multivariable impedance; multivariable stiffness; stiffness anisotropy;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2014.2328235
Filename :
6825865
Link To Document :
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