A worm-inspired robot based on origami structures driven by the magnetic field

Author:

Jin YuchenORCID,Li Jing,Liu Shiyang,Cao Gongqi,Liu JianlinORCID

Abstract

Abstract With the rapid development of origami technology, worm-inspired origami robots have attracted tremendous interest owing to their colourful locomotion behaviours, such as creeping, rolling, climbing and obstacle crossing. In the present study, we aim to engineer a worm-inspired robot based on knitting process with paper, which could realize complicated functions associated large deformation and exquisite locomotion patterns. At first we fabricate the backbone of the robot by using the paper-knitting technique. The experiment shows that the backbone of the robot can endure significant deformation during the tension, compression and bending process, and this feature ensures it can achieve the desired targets of motion. Next, the magnetic forces and torques under the actuation of permanent magnets are analysed, which are just the driving forces of the robot. We then consider three formats of motion on the robot, i.e. the inchworm motion, the Omega motion, and the hybrid motion. Typical examples for the robot fulfil desired tasks are given, including sweeping obstacles, climbing the wall and delivering cargoes. Detailed theoretical analyses and numerical simulations are performed to illustrate these experimental phenomena. The results show that the developed origami robot is equipped with such characteristics as lightweight and great flexibility, which is sufficiently robust in various environments. These promising performances shed new light on design and fabrication of bio-inspired robots with good intelligence.

Funder

the Natural Science Foundation of Shandong Province

Special Funds for the Basic Scientific Research Expenses of Central Government Universities

National Natural Science Foundation of China

Publisher

IOP Publishing

Subject

Engineering (miscellaneous),Molecular Medicine,Biochemistry,Biophysics,Biotechnology

Reference40 articles.

1. Turning in worm-like robots: the geometry of slip elimination suggests nonperiodic waves;Kandhari;Soft Robot.,2019

2. Locomotion control of modular self-reconfigurable robot worm-like structure;Zhao;J. Southeast Univ. Nat. Sci. Ed.,2007

3. A deformable magnetizable worm in a magnetic field—a prototype of a mobile crawling robot;Zimmermann;J. Magn. Magn. Mater.,2007

4. Design and locomotion analysis of a novel deformable mobile robot with worm-like, self-crossing and rolling motion;Tian;Robotica,2016

5. Gait generation considering dynamics for artificial segmented worms;Steigenberger;Robot. Auton. Syst.,2011

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