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Proprioceptive Origami Manipulator

Research output: Chapter in Book/Report/Conference proceedingArticle in proceedingsResearchpeer-review

Abstract

Origami offers a versatile framework for designing morphable structures and soft robots by exploiting the geometry of folds. Tubular origami structures can act as continuum manipulators that balance flexibility and strength. However, precise control of such manipulators often requires reliance on vision-based systems that limit their application in complex and cluttered environments. Here, we propose a proprioceptive tendon-driven origami manipulator without compromising its flexibility. Using conductive threads as actuating tendons, we multiplex them with proprioceptive sensing capabilities. The change in the active length of the tendons is reflected in their effective resistance, which can be measured with a simple circuit. We correlated the change in the resistance to the lengths of the tendons. We input this information into a forward kinematic model to reconstruct the manipulator configuration and end-effector position. This platform provides a foundation for the closed-loop control of continuum origami manipulators while preserving their inherent flexibility.

Original languageEnglish
Title of host publication2025 IEEE 8th International Conference on Soft Robotics, RoboSoft 2025
Number of pages6
PublisherIEEE
Publication dateApr 2025
ISBN (Electronic)9798331520205
DOIs
Publication statusPublished - Apr 2025
Event8th IEEE International Conference on Soft Robotics, RoboSoft 2025 - Lausanne, Switzerland
Duration: 22. Apr 202526. Apr 2025

Conference

Conference8th IEEE International Conference on Soft Robotics, RoboSoft 2025
Country/TerritorySwitzerland
CityLausanne
Period22/04/202526/04/2025
SeriesIEEE International Conference on Soft Robotics (RoboSoft)
ISSN2769-4526

Bibliographical note

Publisher Copyright:
© 2025 IEEE.

Keywords

  • continuum manipulator
  • origami
  • proprioception

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