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A bio-inspired intestine robot utilizing soft origami Kresling structures to imitate peristaltic wave motion and transport

  • Manjia Su
  • , Beibin Liang
  • , Haoxu Chen
  • , Jing Lan
  • , Jinhui Zhou
  • , Hua Zhong
  • , Yijiong Lin
  • , Chunlong Wang
  • , Ruiwei Liu*
  • *Corresponding author for this work
  • Guangzhou Maritime University
  • University of Bristol
  • Tianjin University

Research output: Contribution to journalArticlepeer-review

Abstract

This paper presents a single-drive bio-inspired intestine robot that leverages the coupled rotational-contraction dynamics of Kresling origami structures and unidirectional valves to replicate intestinal peristalsis for directional transport. The minimalist design, comprising a servo motor, antagonistic chiral Kresling units, and check valves, enables continuous peristaltic wave propagation through reciprocal torsional input. Experimental validation demonstrates exceptional performance: transport speeds up to 20.91 mm/s, load capacity exceeding 97 g, and adaptability to objects spanning 32–46 mm in diameter across inclinations of 0°–90°. Key innovations include: (1) Biomechanical mimicry through antagonistic chiral units that convert rotation into radial contractions, replicating segmented intestinal propulsion; (2) Performance breakthroughs in speed and payload, enabled by efficient energy transfer from torsional kinematics; and (3) Valve-enabled directionality ensuring net forward displacement. Theoretical analysis establishes geometric constraints for valve-mediated transport, explaining the optimized operating range via valve aperture dynamics and material compliance. This work advances gastrointestinal robotics by addressing critical limitations in existing simulators: complex actuation, slow transport, and directional instability, providing a robust platform for medical applications such as segment artificial intestines replacement.

Original languageEnglish
Article number100282
JournalBiomimetic Intelligence and Robotics
Volume6
Issue number1
DOIs
StatePublished - Mar 2026
Externally publishedYes

Keywords

  • Artificial intestine development
  • Bio-intestine robot
  • Kresling structure
  • Peristaltic wave

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