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A Bioinspired Cownose Ray Robot for Seabed Exploration.
Giovanni Bianchi1, Lorenzo Maffi1, Michele Tealdi1
1Dipartimento di Meccanica, Politecnico di Milano, Via La Masa 1, 20156 Milano, Italy.
Biomimetics (Basel, Switzerland)
|January 17, 2023
Summary
Researchers developed a bioinspired robot that mimics cownose ray locomotion. This robotic ray effectively swims, turns, and maneuvers underwater using flexible pectoral fins and a wave-like motion.
Area of Science:
- Robotics
- Bio-inspired Engineering
- Fluid Dynamics
Background:
- Cownose rays (Rhinoptera bonasus) exhibit efficient underwater locomotion through pectoral fin undulation.
- This natural swimming mechanism relies on generating traveling waves to conserve momentum.
- Robotic systems can benefit from emulating these biological principles for improved maneuverability.
Purpose of the Study:
- To design and test a bio-inspired robot that replicates the cownose ray's fin-based propulsion.
- To validate the effectiveness of a flexible fin design actuated by a traveling wave motion.
- To assess the robot's ability to perform various underwater maneuvers.
Main Methods:
- A robot was constructed with a rigid central body and flexible silicone pectoral fins.
- Servomotors actuated links within the fin's leading edge to create traveling waves.
- Underwater experiments were conducted to evaluate forward swimming, turning, and depth control.
Main Results:
- The bio-inspired locomotion principle was experimentally validated.
- The robot successfully achieved forward propulsion through pectoral fin actuation.
- The robot demonstrated capabilities for turning, floating, and diving maneuvers.
Conclusions:
- The study confirms the viability of bio-inspired robotic swimming based on cownose ray kinematics.
- Flexible pectoral fins actuated by traveling waves are effective for underwater propulsion.
- The developed robot shows potential for versatile underwater applications requiring agile movement.


