Literature DB >> 33501285

Parallel Helix Actuators for Soft Robotic Applications.

James H Chandler1, Manish Chauhan1, Nicolo Garbin2, Keith L Obstein2,3, Pietro Valdastri1.   

Abstract

Fabrication of soft pneumatic bending actuators typically involves multiple steps to accommodate the formation of complex internal geometry and the alignment and bonding between soft and inextensible materials. The complexity of these processes intensifies when applied to multi-chamber and small-scale (~10 mm diameter) designs, resulting in poor repeatability. Designs regularly rely on combining multiple prefabricated single chamber actuators or are limited to simple (fixed cross-section) internal chamber geometry, which can result in excessive ballooning and reduced bending efficiency, compelling the addition of constraining materials. In this work, we address existing limitations by presenting a single material molding technique that uses parallel cores with helical features. We demonstrate that through specific orientation and alignment of these internal structures, small diameter actuators may be fabricated with complex internal geometry in a single material-without- additional design-critical steps. The helix design produces wall profiles that restrict radial expansion while allowing compact designs through chamber interlocking, and simplified demolding. We present and evaluate three-chambered designs with varied helical features, demonstrating appreciable bending angles (>180°), three-dimensional workspace coverage, and three-times bodyweight carrying capability. Through application and validation of the constant curvature assumption, forward kinematic models are presented for the actuator and calibrated to account for chamber-specific bending characteristics, resulting in a mean model tip error of 4.1 mm. This simple and inexpensive fabrication technique has potential to be scaled in size and chamber numbers, allowing for application-specific designs for soft, high-mobility actuators especially for surgical, or locomotion applications.
Copyright © 2020 Chandler, Chauhan, Garbin, Obstein and Valdastri.

Entities:  

Keywords:  bending actuators; inflatable actuators; kinematic model; monolithic actuators; robot fabrication; soft materials; soft robot applications; soft robotics

Year:  2020        PMID: 33501285      PMCID: PMC7805886          DOI: 10.3389/frobt.2020.00119

Source DB:  PubMed          Journal:  Front Robot AI        ISSN: 2296-9144


  25 in total

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Authors:  Hing-Choi Fu; Justin D L Ho; Kit-Hang Lee; Yu Cai Hu; Samuel K W Au; Kyu-Jin Cho; Kam Yim Sze; Ka-Wai Kwok
Journal:  Soft Robot       Date:  2019-10-15       Impact factor: 8.071

9.  Design and Integration of a Telerobotic System for Minimally Invasive Surgery of the Throat.

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Authors:  Weiping Hu; Gursel Alici
Journal:  Soft Robot       Date:  2019-11-05       Impact factor: 8.071

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  3 in total

1.  Evolutionary Inverse Material Identification: Bespoke Characterization of Soft Materials Using a Metaheuristic Algorithm.

Authors:  Michele Di Lecce; Onaizah Onaizah; Peter Lloyd; James H Chandler; Pietro Valdastri
Journal:  Front Robot AI       Date:  2022-01-14

2.  Parallel Manipulation and Flexible Assembly of Micro-Spiral via Optoelectronic Tweezers.

Authors:  Shuzhang Liang; Jiayu Sun; Chaonan Zhang; Zixi Zhu; Yuguo Dai; Chunyuan Gan; Jun Cai; Huawei Chen; Lin Feng
Journal:  Front Bioeng Biotechnol       Date:  2022-03-21

3.  An Origami-Based Soft Robotic Actuator for Upper Gastrointestinal Endoscopic Applications.

Authors:  Manish Chauhan; James H Chandler; Animesh Jha; Venkataraman Subramaniam; Keith L Obstein; Pietro Valdastri
Journal:  Front Robot AI       Date:  2021-05-10
  3 in total

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