Minimalistic Soft Exosuit for Assisting the Shoulder via Biomechanics-Aware Optimization

Conference Paper (2022)
Author(s)

S.D. Joshi (TU Delft - Learning & Autonomous Control)

Irene L.Y. Beck (TU Delft - Human-Robot Interaction)

Ajay Seth (TU Delft - Biomechatronics & Human-Machine Control)

C. Santina (TU Delft - Learning & Autonomous Control, Deutsches Zentrum für Luft- und Raumfahrt (DLR))

Research Group
Biomechatronics & Human-Machine Control
DOI related publication
https://doi.org/10.1109/Humanoids53995.2022.10000128
More Info
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Publication Year
2022
Language
English
Research Group
Biomechatronics & Human-Machine Control
Pages (from-to)
667-673
ISBN (electronic)
979-8-3503-0979-9
Reuse Rights

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Abstract

Soft exosuits can help to prevent work-related musculoskeletal disorders by offloading human muscles through the application of external forces across the human joints. Many exosuits achieve this through tension producing elements called as exotendons. However, the design of these devices is based on intuition and experience. This leads to potentially sub-optimal or even harmful designs that could cause discomfort or injury to the wearer. This paper deals with automatically finding appropriate attachments and routing locations for exotendons. We propose to do that by accurate musculoskeletal modeling and design parameter optimization of soft exosuits. We focus here on a soft exosuit with a single passive exotendon to assist the shoulder. Using three arm raising-lowering and internal-external rotation motions as examples, we optimize the attachment point and rest-length of the exotendon to reduce overall muscle effort. We then fabricate the exosuit and validate the model predictions by testing with six participants. Supporting the predictions from simulations, measured muscle activity shows reductions in the deltoid and trapezius muscles. This work represents the first instance of explicitly optimizing functional and geometric parameters of exotendons in wearable assistive devices for minimizing human effort.

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