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April 11, 2026Sensors2 citationsOpen Access

Design and Experimental Evaluation of a Shoulder Assistive Exoskeleton for Insulator Replacement

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HCHaoyuan ChenJYJia YaoMLMingwei Li

Key Points

  • The aim is to design a shoulder exoskeleton that reduces muscle fatigue and prevents injuries during insulator replacement.
  • Conducted kinematic analysis and phase segmentation of lifting motion
  • Developed a unilateral three-degree-of-freedom shoulder mechanism
  • Integrated a waist-back support structure for better torque transmission
  • Created a neural network-based control algorithm for phase-specific torque output
  • Performed experimental evaluation with a simulated 20 kg load
  • Significantly reduced sEMG activity of the biceps brachii and triceps brachii
  • Effectively alleviated muscle fatigue during insulator replacement operations

Abstract

Aiming to reduce muscle fatigue and prevent occupational injuries caused by prolonged lifting in insulator replacement operations, this study presents the design of an upper-limb exoskeleton. Firstly, this study performs kinematic analysis and phase segmentation of the lifting motion in the insulator replacement operation. Based on the analysis, in terms of mechanical structure, the proposed upper-limb exoskeleton adopts a unilateral three-degree-of-freedom shoulder mechanism that biomimics the human glenohumeral joint, which reduces the misalignment between the exoskeleton and the human body. Meanwhile, a waist–back support structure is integrated into the exoskeleton to realize a more reasonable torque transmission path. In terms of the control strategy, based on the operation’s phase segmentation and dynamic modeling of the human upper limb, this study develops a neural network-based assistive control algorithm for insulator replacement operations, enabling the exoskeleton to provide phase-specific torque output. Experimental results demonstrate that, under a simulated insulator replacement operation with a 20 kg load, the exoskeleton significantly reduces the subject’s sEMG activity of the biceps brachii and triceps brachii, effectively alleviating muscle fatigue.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69d9e5ec78050d08c1b76336https://doi.org/10.3390/s26082313
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