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Sigmoidal Auxiliary Tendon-Driven Mechanism Reinforcing Structural Stiffness of Hyper-Redundant Manipulator for Endoscopic Surgery

Title
Sigmoidal Auxiliary Tendon-Driven Mechanism Reinforcing Structural Stiffness of Hyper-Redundant Manipulator for Endoscopic Surgery
Author(s)
Kim, HansoulYou, Jae MinHwang, MinhoKyung, Ki-UkKwon, Dong-Soo
Issued Date
2023-04
Citation
Soft Robotics, v.10, no.2, pp.234 - 245
Type
Article
Author Keywords
tendon path optimizationhyper-redundant manipulatortendon-driven mechanismstructural stiffness
Keywords
ESDHYPERREDUNDANT MANIPULATORLOCKING MECHANISMOUTER SHEATHAIR-PRESSURETRACTIONDESIGN
ISSN
2169-5172
Abstract
The overtube of an endoscopic surgery robot is fixed when performing tasks, unlike those of commercial endoscopes, and this overtube should have high structural stiffness after reaching the target lesion so that sufficient tension can be applied to the lesion tissue with the surgical tool and there are fewer changes in the field of view of the endoscopic camera from this reaction force. Various methods have been proposed to reinforce the structural stiffnesses of hyper-redundant manipulators. However, the safety, rapid response, space efficiency, and cost-effectiveness of these methods should be considered for use in actual clinical environments, such as the gastrointestinal tract. This study proposed a method to minimize the positional changes of the overtube end tip due to external forces using only auxiliary tendons in the optimized path without additional mechanical structures. Overall, the proposed method involved moving the overtube to the target lesion through the main driving tendon and applying tension to the auxiliary tendons to reinforce the structural stiffness. The complete system was analyzed in terms of energy, and the sigmoidal auxiliary tendons were verified to effectively reinforce the structural stiffness of the overtube consisting of rolling joints. In addition, the design guidelines of the overtube for actual endoscopic surgery were proposed considering hollowness, retroflexion, and high structural stiffness. The positional changes due to external forces were confirmed to be reduced by 60% over the entire workspace. ⓒ Copyright 2022, Mary Ann Liebert, Inc., publishers
URI
http://hdl.handle.net/20.500.11750/17233
DOI
10.1089/soro.2021.0148
Publisher
Mary Ann Liebert, INC
Related Researcher
  • 황민호 Hwang, Minho
  • Research Interests Robotics and Control; Automation and Learning; Surgical robotics; Mechanism Design; Computer Assisted Surgery; Autonomous Robot; Machine Learning
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Appears in Collections:
Department of Robotics and Mechatronics Engineering Surgical Robotics and Robot Manipulation Lab 1. Journal Articles

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