Biomimetic flight and propulsion mechanisms Peer reviewed

Balancing thrust and stability: design and simulation of a miniature median–paired-fin underwater robot

Yih‐Lin Cheng, Chun-I Lu, Yen-Ting Li

Journal of the Chinese Institute of Engineers | Jun 24, 2026

Abstract

Abstract

This work presents the design, fabrication, experimental testing, and numerical analysis of a 15-cm bio-inspired robotic fish that swims by a median–paired-fin (MPF) traveling-wave mechanism. A twin-crankshaft/three-rocker transmission, fabricated entirely by fused-filament printing (PLA+ fin skeleton) and cast silicone membranes, drives the fin with only two low-cost brushed DC motors. A simplified moving-mesh model implemented in COMSOL Multiphysics® couples a piecewise kinematic input to an extremely fine, dynamically remeshed domain and reproduces the fluid–structure interaction in 60 min of CPU time per case. Experiments conducted in a 1 m × 0.6 m × 0.4 m tank show that increasing the supply voltage from 3 V to 5 V raises the mean swimming speed from 1.44 cm s−1 to 1.93 cm s−1; the model predicts these speeds within ±5%. Flow-field visualizations reveal that the performance gain is accompanied by larger vortex structures and higher turbulent kinetic energy, identifying a trade-off between maximum speed and directional stability.

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Authors

Researchers on this paper

Yih‐Lin Cheng

first | National Taiwan University of Science and Technology | ORCID 0000-0002-2594-4863

Chun-I Lu

middle | National Taiwan University of Science and Technology

Yen-Ting Li

last | Tamkang University | ORCID 0000-0001-5742-8081

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Citation

BibTeX

@article{Cheng2026Balancing,
  title = {Balancing thrust and stability: design and simulation of a miniature median–paired-fin underwater robot},
  author = {Yih‐Lin Cheng and Chun-I Lu and Yen-Ting Li},
  journal = {Journal of the Chinese Institute of Engineers},
  year = {2026},
  doi = {10.1080/02533839.2026.2683463},
  url = {https://doi.org/10.1080/02533839.2026.2683463}
}

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