Task-Specific Design Optimization and Fabrication for Inflated-Beam Soft Robots with Growable Discrete Joints

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Date

2022

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Ieee

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Green Open Access

Yes

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Abstract

Soft robot serial chain manipulators with the capability for growth, stiffness control, and discrete joints have the potential to approach the dexterity of traditional robot arms, while improving safety, lowering cost, and providing an increased workspace, with potential application in home environments. This paper presents an approach for design optimization of such robots to reach specified targets while minimizing the number of discrete joints and thus construction and actuation costs. We define a maximum number of allowable joints, as well as hardware constraints imposed by the materials and actuation available for soft growing robots, and we formulate and solve an optimization problem to output a planar robot design, i.e., the total number of potential joints and their locations along the robot body, which reaches all the desired targets, avoids known obstacles, and maximizes the workspace. We demonstrate a process to rapidly construct the resulting soft growing robot design. Finally, we use our algorithm to evaluate the ability of this design to reach new targets and demonstrate the algorithm's utility as a design tool to explore robot capabilities given various constraints and objectives.

Description

Coad, Margaret/0000-0002-2272-6086; Okamura, Allison/0000-0002-6912-1666

Keywords

[No Keyword Available], FOS: Computer and information sciences, Robot arms, Design optimization, Inflated beams, Serial chains, Stiffness control, Soft robot, Home environment, Robot designs, Manipulators, Computer Science - Robotics, Machine design, Joint constraint, Minimizing the number of, Robotics (cs.RO)

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Fields of Science

0209 industrial biotechnology, 02 engineering and technology

Citation

WoS Q

N/A

Scopus Q

Q2
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OpenCitations Citation Count
5

Source

IEEE International Conference on Robotics and Automation (ICRA) -- MAY 23-27, 2022 -- Philadelphia, PA

Volume

Issue

Start Page

7145

End Page

7151
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CrossRef : 1

Scopus : 14

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Mendeley Readers : 26

Web of Science™ Citations

14

checked on Feb 08, 2026

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2

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3.71760351

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