Multivariable static ankle mechanical impedance with relaxed muscles

Abstract Quantitative characterization of ankle mechanical impedance is important to understand how the ankle supports lower-extremity functions during interaction with the environment. This paper reports a novel procedure to characterize static multivariable ankle mechanical impedance. An experimen...

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Veröffentlicht in:Journal of biomechanics 2011-07, Vol.44 (10), p.1901-1908
Hauptverfasser: Lee, Hyunglae, Ho, Patrick, Rastgaar, Mohammad A, Krebs, Hermano I, Hogan, Neville
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container_end_page 1908
container_issue 10
container_start_page 1901
container_title Journal of biomechanics
container_volume 44
creator Lee, Hyunglae
Ho, Patrick
Rastgaar, Mohammad A
Krebs, Hermano I
Hogan, Neville
description Abstract Quantitative characterization of ankle mechanical impedance is important to understand how the ankle supports lower-extremity functions during interaction with the environment. This paper reports a novel procedure to characterize static multivariable ankle mechanical impedance. An experimental protocol using a wearable therapeutic robot, Anklebot, enabled reliable measurement of torque and angle data in multiple degrees of freedom simultaneously, a combination of inversion–eversion and dorsiflexion–plantarflexion. The measured multivariable torque–angle relation was represented as a vector field, and approximated using a method based on thin-plate spline smoothing with generalized cross validation. The vector field enabled assessment of several important characteristics of static ankle mechanical impedance, which are not available from prior single degree of freedom studies: the directional variation of ankle mechanical impedance, the extent to which the ankle behaves as a spring, and evidence of uniquely neural contributions. The method was validated by testing a simple physical “mock-up” consisting of passive elements. Experiments with young unimpaired subjects quantified the behavior of the maximally relaxed human ankle, showing that ankle mechanical impedance is spring-like but strongly direction-dependent, being weakest in inversion. Remarkably, the analysis was sufficiently sensitive to detect a subtle but statistically significant deviation from spring-like behavior if subjects were not fully relaxed. This method may provide new insight about the function of the ankle, both unimpaired and after biomechanical or neurological injury.
doi_str_mv 10.1016/j.jbiomech.2011.04.028
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Experiments with young unimpaired subjects quantified the behavior of the maximally relaxed human ankle, showing that ankle mechanical impedance is spring-like but strongly direction-dependent, being weakest in inversion. Remarkably, the analysis was sufficiently sensitive to detect a subtle but statistically significant deviation from spring-like behavior if subjects were not fully relaxed. 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ispartof Journal of biomechanics, 2011-07, Vol.44 (10), p.1901-1908
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language eng
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source MEDLINE; Elsevier ScienceDirect Journals Complete; ProQuest Central
subjects Adult
Ankle
Ankle - physiology
Ankle joint
Ankle Joint - physiology
Ankle joint stiffness
Ankle mechanical impedance
Biological and medical sciences
Biomechanical Phenomena
Biomechanics
Biomechanics. Biorheology
Computer Simulation
Electric Impedance
Equipment Design
Female
Fundamental and applied biological sciences. Psychology
Human ankle
Human subjects
Humans
Male
Methods
Models, Neurological
Multivariable stiffness
Multivariate Analysis
Muscles - pathology
Muscular system
Neural networks
Physical Medicine and Rehabilitation
Range of Motion, Articular - physiology
Robots
Stress, Mechanical
Studies
Tibia - physiology
Tissues, organs and organisms biophysics
Torque
title Multivariable static ankle mechanical impedance with relaxed muscles
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