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Toward motor-unit-recruitment actuators for soft robotics

  • The University of Tulsa
    ,
  • Department of Advanced Robotics
    ,
  • Istituto Italiano di Tecnologia
    ,
  • Vrije Universiteit Brussel
    ,
  • Università di Pisa
Research Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Abstract

Among the many features of muscles, their softness, (the ability to deform to accommodate uncertainty in the environment), and their ability to continue functioning despite disturbances, even partial damage, are qualities one would desire to see in robotic actuators. These properties are intimately related to the manner in which muscles work since they arise from the progressive recruitment of many motor units. This differs greatly from current robotic actuator technologies. We present an actuation platform prototype that can support experimental validation of algorithms for muscle fiber recruitment-inspired control, and where further ways to exploit discretization and redundancy in muscle-like control can be discovered. This platform, like muscles, is composed of discretely activated motor units with an integrated compliant coupling. The modular, cellular structure endows the actuator with good resilience in response to damage. It can also be repaired or modified to accommodate changing requirements in situ rather than replaced. Several performance metrics particular to muscle-like actuators are introduced and calculated for one of these units. The prototype has a blocked force of 2.51 N, a strain rate of 21.1 %, and has an input density of 5.46 ×103 motor units per square meter. It consumes 18 W of electrical power during a full isometric contraction. The actuator unit is 41.0 mm3 in size. The force during isometric contractions as it varies with activation is evaluated experimentally for two configurations of modules.

Bibliographic Information

Output type

Research Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Original language

English

Article number

6913893

Pages from-to (Number of pages)

Pages 887-892 (6 pages)

Publication milestones

  • Published - 30/09/2014

Publication status

Published - 30/09/2014

Publisher

IEEE Computer Society

Publication series

  • Publication series name: Proceedings of the IEEE RAS and EMBS International Conference on Biomedical Robotics and Biomechatronics
    ISSN (Print): 2155-1774

ISBN (Electronic)

9781479931262

Publication IDs

  • Scopus: 84918565765

Host publication title

"2014 5th IEEE RAS and EMBS International Conference on Biomedical Robotics and Biomechatronics, BioRob 2014

Host publication editors

  • Raffaella Carloni
  • Lorenzo Masia
  • Jose Maria Sabater-Navarro
  • Marko Ackermann
  • Sunil Agrawal
  • Arash Ajoudani
  • Panagiotis Artemiadis
  • Matteo Bianchi
  • Antonio Padilha Lanari Bo
  • Maura Casadio
  • Kevin Cleary
  • Ashish Deshpande
  • Domenico Formica
  • Matteo Fumagalli
  • Nicolas Garcia-Aracil
  • Sasha Blue Godfrey
  • Islam S.M. Khalil
  • Olivier Lambercy
  • Rui C. V. Loureiro
  • Leonardo Mattos
  • Victor Munoz
  • Hyung-Soon Park
  • Luis Eduardo Rodriguez Cheu
  • Roque Saltaren
  • Adriano A. G. Siqueira
  • Valentina Squeri
  • Arno H.A. Stienen
  • Nikolaos Tsagarakis
  • Herman Van der Kooij
  • Bram Vanderborght
  • Nicola Vitiello
  • Jose Zariffa
  • Loredana Zollo