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Shocking Artificial Muscles! - Robin Milward Cooney

University of Auckland
2026
underwater robotics
artificial muscles
soft robotics
bioinspired robotics
Biomimetics
Electrostatic Actuators
Electroactive Polymers
Marine Robotics
Underwater Vehicles
Autonomous Underwater Vehicles
AUV
Robot Design
Marine Engineering
Ocean Technology
robotics
artificial intelligence
environmental monitoring
Reef Monitoring
Coral Reefs
Invasive Seaweed
marine conservation
Underwater Infrastructure
Soft Actuators
Electrostatics
Polymer Engineering
Fluid Mechanics
Bioinspired Engineering
Shark-Inspired Robotics
Sixgill Shark
Sustainable Robotics
ocean science
Mechatronics
engineering research
Robotic Actuation
Underwater Exploration
marine ecosystems
robotics research
Soft Materials
Future Robotics
Nature-Inspired Design

This research develops electrostatic artificial muscles for underwater robots inspired by the movement of fish and sharks. Unlike noisy propeller-driven systems, these soft actuators enable quieter, more efficient swimming that minimises disturbance to marine ecosystems, offering a promising alternative for environmental monitoring, reef surveys, and underwater infrastructure inspection.

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