Flexible and Expandable Robot for Tissue Therapies - Modeling and Design

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Open Access Color

BRONZE

Green Open Access

Yes

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No
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Top 10%
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Average
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Top 10%

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Abstract

Objective: Implantable technologies should be mechanically compliant with the tissue in order to maximize tissue quality and reduce inflammation during tissue reconstruction. We introduce the development of a flexible and expandable implantable robotic (FEIR) device for the regenerative elongation of tubular tissue by applying controlled and precise tension to the target tissue while minimizing the forces produced on the surrounding tissue. Methods: We introduce a theoretical framework based on iterative beam theory static analysis for the design of an expandable robot with a flexible rack. The model takes into account the geometry and mechanics of the rack to determine a trade-off between its stiffness and capability to deliver the required tissue tension force. We empirically validate this theory on the benchtop and with biological tissue. Results: We show that FEIR can apply the required therapeutical forces on the tissue while reducing the amount of force it applies to the surrounding tissues as well as reducing self-damage. Conclusion: The study demonstrates a method to develop robots that can change size and shape to fit their dynamic environment while maintaining the precision and delicacy necessary to manipulate tissue by traction. Significance: The method is relevant to designers of implantable technologies. The robot is a precursor medical device for the treatment of Long-Gap Esophageal Atresia and Short Bowel Syndrome.

Description

Keywords

Implants, Robots, Force, Rails, Encapsulation, Esophagus, Grippers, Flexible robot, Robotic implants, Robotics

Fields of Science

0301 basic medicine, 0303 health sciences, 03 medical and health sciences

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OpenCitations Citation Count
8

Volume

68

Issue

2

Start Page

568

End Page

578
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Citations

CrossRef : 4

Scopus : 8

PubMed : 1

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Mendeley Readers : 19

SCOPUS™ Citations

8

checked on Apr 27, 2026

Web of Science™ Citations

6

checked on Apr 27, 2026

Page Views

337

checked on Apr 27, 2026

Downloads

206

checked on Apr 27, 2026

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