3D Printed Meter‐Scale Soft Origami Robots Capable of Load‐Bearing Actuation Via Crease Stiffness Modulation

Origami has been a rich source for the design of soft deployable mechanisms capable of safe human-robot interaction. However, the relatively weak structural stiffness of the folding crease lines gives rise to kinematic instability during shape transition, constraining practical robotic applications. Here, a 3D printed origami robotic actuator capable of load-bearing deformation at the meter scale is proposed, enabled by programming the creaseline stiffness through modular assembly. During origami unfolding, the joint modules assembled onto the origami facets are stretched and subsequently provide antagonistic passive shape retention force to maintain kinematic stability. The integration of roll-to-roll (r2r) 3D printing further facilitates scalable fabrication of origami actuators with programmable robotic performance. The effectiveness of our framework is highlighted by a 1.3 m-long collaborative robotic arm with variable workspace and an origami tent frame capable of automatic deployment and folding.

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Publication Details

Journal
Advanced Science
Published
2026-08-24
DOI
https://doi.org/10.1002/advs.77127
Primary Topic
Advanced Materials and Mechanics
Type
article
Field-Weighted Citation Impact
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article

3D Printed Meter‐Scale Soft Origami Robots Capable of Load‐Bearing Actuation Via Crease Stiffness Modulation

Sung Yol Yu, Kyu‐Jin Cho, Sang‐Joon Ahn, Seunguk Moon et al.
Advanced Science
Advanced Materials and Mechanics
article

3D Printed Meter‐Scale Soft Origami Robots Capable of Load‐Bearing Actuation Via Crease Stiffness Modulation

Sung Yol Yu, Kyu‐Jin Cho, Sang‐Joon Ahn, Seunguk Moon, Hyun‐Jin Hong, Wonchul Lee
article en

Abstract

Origami has been a rich source for the design of soft deployable mechanisms capable of safe human-robot interaction. However, the relatively weak structural stiffness of the folding crease lines gives rise to kinematic instability during shape transition, constraining practical robotic applications. Here, a 3D printed origami robotic actuator capable of load-bearing deformation at the meter scale is proposed, enabled by programming the creaseline stiffness through modular assembly. During origami unfolding, the joint modules assembled onto the origami facets are stretched and subsequently provide antagonistic passive shape retention force to maintain kinematic stability. The integration of roll-to-roll (r2r) 3D printing further facilitates scalable fabrication of origami actuators with programmable robotic performance. The effectiveness of our framework is highlighted by a 1.3 m-long collaborative robotic arm with variable workspace and an origami tent frame capable of automatic deployment and folding.

Advanced Science
Seoul National University (KR), Robotics Research (United States) (US), Korea Institute of Science and Technology (KR), Delft University of Technology (NL)
Openalex Percentile: Top 19%
Advanced Materials and Mechanics
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