Abstract
Abstract
The compliance of soft wearable robots driven by fluids is high, but their portability and controllability are limited due to complex fluidic systems. On the other hand, tendon-driven soft wearable robots are compact and easy to control, but they have lower compliance when actively interacting with unknown environments. To address this trade-off between compliance and controllability, we propose a novel actuator design for soft wearable robots, named the passive bellow actuator (PBA). The PBA is 3D-printed using elastic materials, which enables it to be easily customized into various shapes and sizes. When tendons running through the PBA are pulled, it contracts and preserves elastic potential energy. When the tendons are released, the PBA extends like a spring and exerts the stored elastic energy to drive the human body. Additionally, programmable deformation can be easily achieved by adjusting the thickness of the PBA chamber. By utilizing these effects, the PBA can be used to assist human flexion and extension movements. We developed a portable soft robotic glove to demonstrate the feasibility of the PBA. The glove is light weight, power safe, and is inherently compliant when grasping irregular objects. Theoretical modeling and experimental tests were conducted to characterize the PBA, and experimental tests were conducted to demonstrate the performance of the soft robotic gloves.
Funder
Guangzhou basic and applied basic research project
Guang Dong Basic and Applied Basic Research Foundation
Reference35 articles.
1. A review of soft wearable robots that provide active assistance: trends, common actuation methods, fabrication, and applications;Thalman;Wearable Technol.,2020
2. Soft robotics: academic insights and perspectives through bibliometric analysis;Bao;Soft Robot.,2018
3. Development of a soft robotic shoulder assistive device for shoulder abduction;Natividad,2016
4. Sensing and control of a multi-joint soft wearable robot for upper-limb assistance and rehabilitation;Proietti;IEEE Robot. Autom. Lett.,2021
5. Functional fibers and fabrics for soft robotics, wearables, and human-robot interface;Xiong;Adv. Mater.,2021