Self-Locking Pneumatic Actuators Formed from Origami Shape-Morphing Sheets.

IF 6.4 2区 计算机科学 Q1 ROBOTICS Soft Robotics Pub Date : 2024-02-01 Epub Date: 2023-08-24 DOI:10.1089/soro.2022.0233
Juri Kim, Joonbum Bae
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Abstract

The art of origami has gained traction in various fields such as architecture, the aerospace industry, and soft robotics, owing to the exceptional versatility of flat sheets to exhibit complex shape transformations. Despite the promise that origami robots hold, their use in high-capacity environments has been limited due to the lack of rigidity. This article introduces novel, origami-inspired, self-locking pneumatic modular actuators (SPMAs), enabling them to operate in such environments. Our innovative approach is based on origami patterns that allow for various types of shape morphing, including linear and rotational motion. We have significantly enhanced the stiffness of the actuators by embedding magnets in composite sheets, thus facilitating their application in real-world scenarios. In addition, the embedded self-adjustable valves facilitate the control of sequential origami actuations, making it possible to simplify the pneumatic system for actuating multimodules. With just one actuation source and one solenoid valve, the valves enable efficient control of our SPMAs. The SPMAs can control robotic arms operating in confined spaces, and the entire system can be modularized to accomplish various tasks. Our results demonstrate the potential of origami-inspired designs to achieve more efficient and reliable robotic systems, thus opening up new avenues for the development of robotic systems for various applications.

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用折纸形状变形片材制成的自锁气动执行器。
折纸艺术在建筑、航空航天工业和软体机器人技术等各个领域都获得了广泛的关注,这是因为平板具有出色的多功能性,可以呈现复杂的形状变化。尽管折纸机器人大有可为,但由于缺乏刚性,它们在大容量环境中的应用一直受到限制。本文介绍了受折纸启发的新型自锁定气动模块致动器(SPMA),使其能够在此类环境中运行。我们的创新方法以折纸图案为基础,允许各种类型的形状变形,包括线性和旋转运动。我们通过在复合片材中嵌入磁铁,大大增强了致动器的刚度,从而促进了它们在现实世界中的应用。此外,嵌入式可自动调节阀便于控制连续的折纸动作,从而简化了用于驱动多模块的气动系统。只需一个执行源和一个电磁阀,阀门就能实现对 SPMA 的有效控制。SPMA 可以控制在狭小空间内工作的机械臂,而且整个系统可以模块化,以完成各种任务。我们的研究结果表明,受折纸启发的设计具有实现更高效、更可靠的机器人系统的潜力,从而为开发各种应用的机器人系统开辟了新的途径。
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来源期刊
Soft Robotics
Soft Robotics ROBOTICS-
CiteScore
15.50
自引率
5.10%
发文量
128
期刊介绍: Soft Robotics (SoRo) stands as a premier robotics journal, showcasing top-tier, peer-reviewed research on the forefront of soft and deformable robotics. Encompassing flexible electronics, materials science, computer science, and biomechanics, it pioneers breakthroughs in robotic technology capable of safe interaction with living systems and navigating complex environments, natural or human-made. With a multidisciplinary approach, SoRo integrates advancements in biomedical engineering, biomechanics, mathematical modeling, biopolymer chemistry, computer science, and tissue engineering, offering comprehensive insights into constructing adaptable devices that can undergo significant changes in shape and size. This transformative technology finds critical applications in surgery, assistive healthcare devices, emergency search and rescue, space instrument repair, mine detection, and beyond.
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