• DocumentCode
    2040284
  • Title

    Basic performance experiments on a belt transmission system using Electro-Rheological gel

  • Author

    Dohi, Masayoshi ; Koyanagi, Ken´ichi ; Kakinuma, Yasuhiro ; Anzai, Hidenobu ; Sakurai, Koji ; Oshima, Toru

  • Author_Institution
    Dept. of Intell. Syst. Design Eng., Toyama Prefectural Univ., Toyama, Japan
  • fYear
    2011
  • fDate
    13-18 Sept. 2011
  • Firstpage
    2988
  • Lastpage
    2992
  • Abstract
    Current research includes applying new functional materials to mechatronic devices and Electro-Rheological (ER) gel is one of these new functional materials. ER gel enables the development of mechatronic devices which have both high speed response and high levels of safety. In particular, the requirements for power assist devices are high speed response, high safety, and backdrivability. The purpose of this study is to develop an ER gel belt transmission system for use in power assist systems. We applied an ER gel in the power transmission role of a belt transmission system. When the ER gel of this system is de-energized, the input torque is not transferred because of minimal shear stress. When the ER gel is energized by an electric field, the increased shear stress results in a torque transfer. The ER gel belt transmission system functions as a clutch with controlling torque based on these characteristics of the ER gel. The paper proposes such an ER gel belt transmission system, describes it´s design and operational features, and presents the results of basic performance experiments.
  • Keywords
    belts; clutches; electric fields; electrorheology; mechatronics; power transmission (mechanical); stress analysis; torque control; belt transmission system; clutch; electric field; electro-rheological gel; functional material; mechatronic device; power assist device; power transmission; shear stress; torque control; torque transfer; Belts; Erbium; Pulleys; Steel; Stress; Torque; Welding; ER gel belt transmission; Electro-Rheological gel; controlled shear stress; energized ER gel backdrivability devices; functional material;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    SICE Annual Conference (SICE), 2011 Proceedings of
  • Conference_Location
    Tokyo
  • ISSN
    pending
  • Print_ISBN
    978-1-4577-0714-8
  • Type

    conf

  • Filename
    6060495