Design of Magnetic Continuum Robots with Tunable Force Response Using Rotational Ring Pairs

Fuente: arXiv
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Main Authors: Sayres, Alex, Pittiglio, Giovanni
Format: Preprint
Published: 2026
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author Sayres, Alex
Pittiglio, Giovanni
author_facet Sayres, Alex
Pittiglio, Giovanni
contents In this paper, we discuss a novel continuum robot design that enables the online tuning of the magnetic response at its tip. The proposed method allows for the change of both effective magnetic direction and intensity, introducing steering DOF without the need to control the external fields. This is unattainable with classical designs, which rely on fixed internal magnetic content and steer solely under the effect of a controllable magnetic field. The proposed robot design can be used in both controllable and fixed magnetic fields, potentially widening the clinical applicability of these robots. We experimentally show a max tip deflection of 33.8 mm from the resting state (23 % of the length of the robot). We discuss a model based on modified beam theory that captures the mechanical behavior of the continuum robot, with a mean absolute tip tracking error of 1.86 mm (1.2 % of the length) and maximum errors of less than 4.8 mm (3.2 % of the length) for all experimental points.
format Preprint
id arxiv_https___arxiv_org_abs_2605_13613
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Design of Magnetic Continuum Robots with Tunable Force Response Using Rotational Ring Pairs
Sayres, Alex
Pittiglio, Giovanni
Robotics
In this paper, we discuss a novel continuum robot design that enables the online tuning of the magnetic response at its tip. The proposed method allows for the change of both effective magnetic direction and intensity, introducing steering DOF without the need to control the external fields. This is unattainable with classical designs, which rely on fixed internal magnetic content and steer solely under the effect of a controllable magnetic field. The proposed robot design can be used in both controllable and fixed magnetic fields, potentially widening the clinical applicability of these robots. We experimentally show a max tip deflection of 33.8 mm from the resting state (23 % of the length of the robot). We discuss a model based on modified beam theory that captures the mechanical behavior of the continuum robot, with a mean absolute tip tracking error of 1.86 mm (1.2 % of the length) and maximum errors of less than 4.8 mm (3.2 % of the length) for all experimental points.
title Design of Magnetic Continuum Robots with Tunable Force Response Using Rotational Ring Pairs
topic Robotics
url https://arxiv.org/abs/2605.13613