• DocumentCode
    669505
  • Title

    Prototyping the flexible solenoid-coil artificial muscle, for exoskeletal robots

  • Author

    Takai, Asuka ; Alanizi, Nouf ; Kiguchi, Kazuo ; Nanayakkara, T.

  • Author_Institution
    Grad. Sch. of Eng., Osaka Prefecture Univ., Sakai, Japan
  • fYear
    2013
  • fDate
    20-23 Oct. 2013
  • Firstpage
    1046
  • Lastpage
    1051
  • Abstract
    Design approaches to exoskeletal robots traditionally aimed to achieve mechanical forces many times larger than the level achievable by the corresponding natural musculoskeletal system. This has often obstructed the user´s muscles during physical rehabilitation. Moreover, mechanisms designed for excessive force generation are heavy and rigid structures with little compliance and thus are not suitable for many mobile applications. Here, we present a novel biomimetic flexible solenoid-coil artificial muscle (FSAM) fibre with inherent mechanical compliance, a high pulling stroke, and structural flexibility that suit a lightweight wearable exoskeletal robot for rehabilitation use. FSAM consists of a chain of specially designed bobbins of solenoid coils that can slide against each other. The chain allows FSAM to form an arch shape when the coils are energized; this is reminiscent of a natural muscle that bends a joint by a combined contraction of the muscle length and bending in an arch shape. This strategy of bending a joint not only reduces the need for linear contraction but also allows the exoskeletal to be compliant with the contraction morphology of natural muscle.
  • Keywords
    bending; biomimetics; design engineering; electroactive polymer actuators; fibres; lightweight structures; medical robotics; patient rehabilitation; robot dynamics; solenoids; FSAM fibre; arch shape; bending; biomimetic; bobbins design; excessive force generation; flexible solenoid coil artificial muscle; inherent mechanical compliance; lightweight wearable exoskeletal robot; linear contraction morphology; mechanical force; natural muscle; natural musculoskeletal system; physical rehabilitation; prototyping; pulling stroke; rigid structures; structural flexibility; user muscles; Gravity; Immune system; Joints; Muscles; Permeability; Robots; Exoskeletal Robots; Flexible Linear Actuator; Lightweight Artificial Muscle; Rehabilitation; Solenoid-coil;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Control, Automation and Systems (ICCAS), 2013 13th International Conference on
  • Conference_Location
    Gwangju
  • ISSN
    2093-7121
  • Print_ISBN
    978-89-93215-05-2
  • Type

    conf

  • DOI
    10.1109/ICCAS.2013.6704071
  • Filename
    6704071