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Article

The Design and Development of a Wearable Cable-Driven Shoulder Exosuit (CDSE) for Multi-DOF Upper Limb Assistance

by
Hamed Vatan
*,
Theodoros Theodoridis
,
Guowu Wei
,
Zahra Saffari
and
William Holderbaum
School of Science, Engineering and Environment, University of Salford, Salford M5 4WT, UK
*
Author to whom correspondence should be addressed.
Appl. Sci. 2025, 15(19), 10673; https://doi.org/10.3390/app151910673
Submission received: 30 August 2025 / Revised: 26 September 2025 / Accepted: 29 September 2025 / Published: 2 October 2025
(This article belongs to the Special Issue Advances in Cable Driven Robotic Systems)

Abstract

This study presents the design, development, and experimental validation of a novel cable-driven shoulder exosuit (CDSE) for upper limb rehabilitation and assistance. Unlike existing exoskeletons, which are often bulky, limited in degrees of freedom (DOFs), or impractical for home use, the proposed DSE offers a lightweight (≈2 kg), portable, and wearable solution capable of supporting three shoulder movements: abduction, flexion, and horizontal adduction. The system employs a bioinspired tendon-driven mechanism using Bowden cables, transferring actuation forces from a backpack to the arm, thereby reducing user load and improving comfort. Mathematical models and inverse kinematics were derived to determine cable length variations for targeted motions, while control strategies were implemented using a PID-based approach in MATLAB Simscape-Multibody simulations. The prototype was fabricated in three iterations using PLA, aluminum, and carbon fiber—culminating in a durable and ergonomic final version. Experimental evaluations on a healthy subject demonstrated high accuracy in position tracking (<5% error) and torque profiles consistent with simulation outcomes, validating system robustness. The CDSE successfully supported loads up to 4 kg during rehabilitation tasks, highlighting its potential for clinical and at-home applications. This research contributes to advancing wearable robotics by addressing portability, biomechanical alignment, and multi-DOF functionality in upper limb exosuits.
Keywords: cable-driven exosuit; upper limb rehabilitation and assistance; shoulder exoskeleton; wearable robotics; inverse kinematics; robot control cable-driven exosuit; upper limb rehabilitation and assistance; shoulder exoskeleton; wearable robotics; inverse kinematics; robot control

Share and Cite

MDPI and ACS Style

Vatan, H.; Theodoridis, T.; Wei, G.; Saffari, Z.; Holderbaum, W. The Design and Development of a Wearable Cable-Driven Shoulder Exosuit (CDSE) for Multi-DOF Upper Limb Assistance. Appl. Sci. 2025, 15, 10673. https://doi.org/10.3390/app151910673

AMA Style

Vatan H, Theodoridis T, Wei G, Saffari Z, Holderbaum W. The Design and Development of a Wearable Cable-Driven Shoulder Exosuit (CDSE) for Multi-DOF Upper Limb Assistance. Applied Sciences. 2025; 15(19):10673. https://doi.org/10.3390/app151910673

Chicago/Turabian Style

Vatan, Hamed, Theodoros Theodoridis, Guowu Wei, Zahra Saffari, and William Holderbaum. 2025. "The Design and Development of a Wearable Cable-Driven Shoulder Exosuit (CDSE) for Multi-DOF Upper Limb Assistance" Applied Sciences 15, no. 19: 10673. https://doi.org/10.3390/app151910673

APA Style

Vatan, H., Theodoridis, T., Wei, G., Saffari, Z., & Holderbaum, W. (2025). The Design and Development of a Wearable Cable-Driven Shoulder Exosuit (CDSE) for Multi-DOF Upper Limb Assistance. Applied Sciences, 15(19), 10673. https://doi.org/10.3390/app151910673

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