Passive Back-Support Exoskeletons Reduce Cumulative Spinal Loading During Aeronautical Tasks

Effects of passive back-support exoskeletons (BSEs) on internal spinal loading during aeronautical tasks remain unclear. We quantified changes in L5/S1 compression force while 19 male participants performed representative aeronautical polishing and handling tasks (sustained flexed inspection, simulated polishing, and asymmetric load transfers) under three BSE conditions: no BSE control, BackX and Laevo FLEX. Whole-body kinematics were measured with wearable inertial sensors, and peak and time-averaged compression forces were estimated using musculoskeletal modeling. During inspection and polishing tasks, both BackX and Laevo reduced time-averaged compression by 14% and 6%, respectively, indicating decreased cumulative spinal loading during sustained trunk flexion. During asymmetric transfers, Laevo showed greater benefits, reducing time-averaged compression by 17% during lifting and reducing peak and time-averaged compression by 13% and 26%, respectively, during lowering. Overall, passive BSEs primarily reduced cumulative rather than peak spinal loading, supporting their selective use for aeronautical tasks involving sustained trunk flexion and asymmetric handling.

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Publication Details

Journal
Proceedings of the Human Factors and Ergonomics Society Annual Meeting
Published
2026-09-06
DOI
https://doi.org/10.1177/10711813261485951
Primary Topic
Prosthetics and Rehabilitation Robotics
Type
article
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article

Passive Back-Support Exoskeletons Reduce Cumulative Spinal Loading During Aeronautical Tasks

Mohsen Zare, Thomas Albouy, Estelle Chin, Jang-Ho Park et al.
Proceedings of the Human Factors and Ergonomics Society Annual Meeting
Prosthetics and Rehabilitation Robotics
article

Passive Back-Support Exoskeletons Reduce Cumulative Spinal Loading During Aeronautical Tasks

Mohsen Zare, Thomas Albouy, Estelle Chin, Jang-Ho Park, Ishmam Tasnim
article en

Abstract

Effects of passive back-support exoskeletons (BSEs) on internal spinal loading during aeronautical tasks remain unclear. We quantified changes in L5/S1 compression force while 19 male participants performed representative aeronautical polishing and handling tasks (sustained flexed inspection, simulated polishing, and asymmetric load transfers) under three BSE conditions: no BSE control, BackX and Laevo FLEX. Whole-body kinematics were measured with wearable inertial sensors, and peak and time-averaged compression forces were estimated using musculoskeletal modeling. During inspection and polishing tasks, both BackX and Laevo reduced time-averaged compression by 14% and 6%, respectively, indicating decreased cumulative spinal loading during sustained trunk flexion. During asymmetric transfers, Laevo showed greater benefits, reducing time-averaged compression by 17% during lifting and reducing peak and time-averaged compression by 13% and 26%, respectively, during lowering. Overall, passive BSEs primarily reduced cumulative rather than peak spinal loading, supporting their selective use for aeronautical tasks involving sustained trunk flexion and asymmetric handling.

Proceedings of the Human Factors and Ergonomics Society Annual Meeting
Université de technologie de belfort-montbéliard (FR), Safran (France) (FR), Texas A&M University (US)
Openalex Percentile: Top 20%
Prosthetics and Rehabilitation Robotics
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Passive Back-Support Exoskeletons Reduce Cumulative Spinal Loading During Aeronautical Tasks — Mohsen Zare, Thomas Albouy, et al. · Proceedings of the Human Factors and Ergonomics Society Annual Meeting (2026) | TGRS Research Map | TGRS