• DocumentCode
    18961
  • Title

    Multivariable Static Ankle Mechanical Impedance With Active Muscles

  • Author

    Hyunglae Lee ; Ho, Paul ; Rastgaar, Mohammad ; Krebs, H.I. ; Hogan, Neville

  • Author_Institution
    Mech. Eng. Dept., Massachusetts Inst. of Technol., Cambridge, MA, USA
  • Volume
    22
  • Issue
    1
  • fYear
    2014
  • fDate
    Jan. 2014
  • Firstpage
    44
  • Lastpage
    52
  • Abstract
    This paper reports quantification of multivariable static ankle mechanical impedance when muscles were active. Repetitive measurements using a highly backdrivable therapeutic robot combined with robust function approximation methods enabled reliable characterization of the nonlinear torque-angle relation at the ankle in two coupled degrees of freedom simultaneously, a combination of dorsiflexion-plantarflexion and inversion-eversion, and how it varied with muscle activation. Measurements on 10 young healthy seated subjects quantified the behavior of the human ankle when muscles were active at 10% of maximum voluntary contraction. Stiffness, a linear approximation to static ankle mechanical impedance, was estimated from the continuous vector field. As with previous measurements when muscles were maximally relaxed, we found that ankle stiffness was highly direction-dependent, being weakest in inversion/eversion. Predominantly activating a single muscle or co-contracting antagonistic muscles significantly increased ankle stiffness in all directions but it increased more in the sagittal plane than in the frontal plane, accentuating the relative weakness of the ankle in the inversion-eversion direction. Remarkably, the observed increase was not consistent with simple superposition of muscle-generated stiffness, which may be due to the contribution of unmonitored deep ankle muscles. Implications for the assessment of neuro-mechanical disorders are discussed.
  • Keywords
    biomechanics; elastic constants; electric impedance; electromyography; medical disorders; medical robotics; medical signal processing; multivariable control systems; neurophysiology; torque; active muscles; ankle stiffness; cocontracting antagonistic muscles; continuous vector field; coupled degrees-of-freedom; dorsiflexion-plantarflexion combination; frontal plane; highly backdrivable therapeutic robot; human ankle; inversion-eversion combination; linear approximation; maximum voluntary contraction; multivariable static ankle mechanical impedance; muscle activation; muscle-generated stiffness; neuromechanical disorders; reliable nonlinear torque-angle relation characterization; repetitive measurements; robust function approximation methods; sagittal plane; unmonitored deep ankle muscles; Electromyography; Impedance; Muscles; Robots; Torque; Torque measurement; Vectors; 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.2013.2262689
  • Filename
    6605642