Optimization of Soft Actuator Control in a Continuum Robot

This study presents a quasi-static optimization framework for the pressure-based control of a multi-segment soft continuum manipulator. The proposed method circumvents traditional curvature and length-based modeling by directly identifying the quasi-static input–output relationship between actuator...

Full description

Saved in:
Bibliographic Details
Main Authors: Oleksandr Sokolov, Serhii Sokolov, Angelina Iakovets, Miroslav Malaga
Format: Article
Language:English
Published: MDPI AG 2025-07-01
Series:Actuators
Subjects:
Online Access:https://www.mdpi.com/2076-0825/14/7/352
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:This study presents a quasi-static optimization framework for the pressure-based control of a multi-segment soft continuum manipulator. The proposed method circumvents traditional curvature and length-based modeling by directly identifying the quasi-static input–output relationship between actuator pressures and the 6-DoF end-effector pose. Experimental data were collected using a high-frequency electromagnetic tracking system under monotonic pressurization to minimize hysteresis effects. Transfer functions were identified for each coordinate–actuator pair using the System Identification Toolbox in MATLAB, and optimal actuator pressures were computed analytically by solving a constrained quadratic program via a manual active-set method. The resulting control strategy achieved sub-millimeter positioning error while minimizing the number of actuators engaged. The approach is computationally efficient, sensor-minimal, and fully implementable in open-loop settings. Despite certain limitations due to sensor nonlinearity and actuator hysteresis, the method provides a robust foundation for feedforward control and the real-time deployment of soft robots in quasi-static tasks.
ISSN:2076-0825