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Silicone-layered waterproof electrohydraulic soft actuators for bio-inspired underwater robots
Takumi Shibuya1, Shuya Watanabe1, Jun Shintake1
1Department of Mechanical and Intelligent Systems Engineering, School of Informatics and Engineering, The University of Electro-Communications, Tokyo, Japan.
Frontiers in Robotics and AI
|July 1, 2024
Summary
This study introduces silicone-layered electrohydraulic soft actuators for underwater robots, overcoming high voltage limitations. These novel actuators enable robust underwater soft robotics applications, including swimming robots and grippers.
Area of Science:
- Robotics
- Materials Science
- Fluid Mechanics
Background:
- Electrohydraulic soft actuators offer advantages for bio-inspired underwater robots, including large deformations, fast responses, and high efficiency.
- A key limitation is the requirement for high voltages, restricting their use in aquatic environments and hindering underwater robot development.
Purpose of the Study:
- To develop and demonstrate silicone-layered electrohydraulic soft actuators capable of operating underwater.
- To enable the construction of bio-inspired underwater robots and various soft robotic devices.
Main Methods:
- Fabrication of bending and linear electrohydraulic soft actuators with silicone layers acting as insulators.
- Characterization of actuator performance, including bending angle, linear strain, and blocked force at high voltages (10 kV).
- Integration of actuators into diverse soft robotic platforms such as fish robots, ray robots, and grippers for underwater testing.
Main Results:
- Silicone-layered actuators successfully demonstrated underwater actuation, functioning at depths near the water surface.
- Bending actuators achieved a 39.0° bending angle and 9.6 mN blocked force; linear actuators showed 6.6% contraction strain and 956.1 mN blocked force at 10 kV.
- Implemented robotic devices exhibited expected functionalities, with swimming robots reaching locomotion speeds up to 31.2 mm/s and a gripper performing a pick-and-place task.
Conclusions:
- The developed silicone-layered electrohydraulic soft actuators effectively overcome the high-voltage limitation for underwater operation.
- This technology holds significant potential for advancing bio-inspired underwater robotics and broader soft robotics applications.

