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A Manta Ray-Inspired Biosyncretic Robot with Stable Controllability by Dynamic Electric Stimulation.
Chuang Zhang1,2, Yiwei Zhang1,2,3, Wenxue Wang1,2
1State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China.
Cyborg and Bionic Systems (Washington, D.C.)
|January 31, 2025
Summary
Researchers developed a muscle tissue-based biosyncretic swimmer using a novel control method for stable, controllable motion. This advancement in biosyncretic robots enhances soft robotics and muscle tissue engineering applications.
Area of Science:
- Robotics and Biomimetics
- Bio-inspired Engineering
- Soft Robotics
Background:
- Biosyncretic robots, utilizing biological materials, represent a new frontier in robotics, complementing bionic designs.
- Actuation is critical for robotic performance, driving interest in biosyncretic robots powered by living biological actuators.
- Controllable motion in biosyncretic robots requires innovative propulsion and control strategies.
Purpose of the Study:
- To develop a muscle tissue-based biosyncretic swimmer with a manta ray-inspired propulsion mode.
- To introduce a dynamic control method for enhancing the stable controllability of biosyncretic swimmers.
- To eliminate actuation instability caused by misalignment between tissue and electric fields.
Main Methods:
- A muscle tissue-based biosyncretic swimmer was engineered with a manta ray-inspired fin structure.
- A dynamic control method employing circularly distributed multiple electrodes (CDME) was developed.
- The CDME system enabled real-time control of the electric field direction to align with the actuation tissue.
Main Results:
- The biosyncretic swimmer demonstrated stable, controllable, and effective swimming capabilities.
- The CDME method successfully eliminated actuation instability by maintaining electric field-tissue alignment.
- Performance was modulated by adjusting electric stimulation pulse direction, amplitude, and frequency.
Conclusions:
- This study presents a novel biosyncretic swimmer with enhanced controllability through a dynamic electrode control system.
- The findings contribute to the advancement of biosyncretic robotics and offer insights for bionic soft robot design.
- The developed muscle tissue actuation and control methods have implications for muscle tissue engineering research.

