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Overall Design Technology of Unmanned Underwater Systems | Publishing Language: Chinese

Effects of fin-hull geometric parameters on propulsion performance in bionic vehicles

College of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, China
College of Shipbuilding Engineering, Harbin Engineering University, Qingdao 266000, China
College of Naval Architecture and Ocean Engineering, Naval University of Engineering, Wuhan 430033, China
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Abstract

Objective

This study aims to systematically quantify the effects of fin-hull geometric configuration on the propulsion performance of bionic undulating-fin vehicles employing media and/or paired fin propulsion (MPF). It addresses the lack of a unified analysis of geometric parameters across different bionic underwater vehicles in existing research.

Methods

To this end, a universal parametric geometric model incorporating the hull and a pair of undulating fins was developed. The model innovatively introduces the ratio of fin width to hull width β as the core dimensionless geometric parameter. Based on this model, high-fidelity CFD numerical simulations were conducted to analyze the propulsion performance and flow field structure of the vehicle under different β values.

Results

The results indicate that β has a nonlinear and significant influence on propulsion performance, and that an optimal range of β values exists for maximizing propulsion efficiency. Excessively small β values lead to insufficient thrust generation, whereas excessively large β values increase drag due to intensified fin-hull interactions that induce flow separation. Furthermore, β significantly modulates the magnitude of the pitching moment, imposing a critical constraint on the vehicle's attitude stability.

Conclusions

This study clarifies the design trade-off between efficiency and stability governed by the β parameter. The established parametric model and the identified underlying mechanisms provide a quantitative theoretical basis for the shape design of bionic underwater vehicles and lay a solid foundation for future research on multi-parameter coupling optimization and self-propulsion performance.

CLC number: U674.941 Document code: A

References

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Chinese Journal of Ship Research
Pages 256-265

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Cite this article:
SUN C, LONG X, WANG C, et al. Effects of fin-hull geometric parameters on propulsion performance in bionic vehicles. Chinese Journal of Ship Research, 2026, 21(2): 256-265. https://doi.org/10.19693/j.issn.1673-3185.04783

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Received: 03 November 2025
Revised: 26 January 2026
Published: 04 February 2026
© 2026 Chinese Journal of Ship Research.