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

Investigation on the effects of ducted propeller and tail fin deflection parameters on the underwater hydrodynamic characteristics of trans-medium submersibles

Deshun LU1,2Wei ZHAO3Cisong GAO1,2Tiezhi SUN1,2( )
School of Naval Architecture & Ocean Engineering, Dalian University of Technology, Dalian 116024, China
State Key Laboratory of Structural Analysis, Optimization and CAE Software for Industrial Equipment, Dalian University of Technology, Dalian 116024, China
Unit 93160 of PLA, Beijing 100076, China
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Abstract

Objective

This study aims to investigate the dynamic behavior and flow field characteristics of trans-medium submersibles during underwater straight-line navigation and turning maneuvers.

Method

To this end, computational fluid dynamics simulations were employed, using the VOF multiphase flow model and the SST kω turbulence model to establish a numerical model of the underwater navigation of the trans-medium submersibles. The accuracy of the numerical method was validated by comparing the experimental total drag data for the DARPA Suboff submarine model at various speeds with the numerical calculation results. On this basis, numerical simulations and analyses of underwater straight-line navigation and turning maneuvers of the trans-medium submersible were conducted, focusing on the effects of ducted propeller rotation speed and tail fin deflection angle on the underwater straight-line navigation and turning performance of the submersible.

Results

The research results indicate that during straight-line underwater navigation, the forward speed of the trans-medium submersible exhibits an approximately linear relationship with the propeller's rotational speed. For instance, as the propeller speed increases from 600 r/min to 4800 r/min, the forward speed rises from 1.1 m/s to 8.1 m/s. At the same time, the pitch moment becomes less negative with increasing propeller speed (from −0.35 N·m to −0.17 N·m), indicating that the submersible remains stable in pitch during high-speed navigation. The propeller speed has little effect on the surface pressure distribution and the structure of the surrounding flow field. During underwater turning, the turning radius is mainly determined by the tail fin deflection angle and is largely unaffected by the propeller speed. The turning radius decreases with increasing tail fin deflection angle (from 3.35 times the submersible's body length to 0.75 times), though the rate of decrease diminishes. In contrast, the turning speed is affected by both the propeller speed and the tail fin deflection angle. The thrust generated by both propellers increases with higher propeller speeds and larger tail fin deflection angles. During turning, the thrust of the outer propeller consistently exceeds that of the inner propeller, and the thrust difference increases with greater tail fin deflection. Furthermore, tail fin deflection during turning leads to a significantly asymmetric surface pressure distribution on the submersible. This asymmetry becomes more pronounced with increasing tail fin deflection and is closely associated with the asymmetric flow characteristics of the surrounding flow field.

Conclusion

This study provides a reference for the design and performance analysis of trans-medium submersible configurations.

CLC number: U661.3 Document code: A

References

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Chinese Journal of Ship Research
Pages 63-76

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Cite this article:
LU D, ZHAO W, GAO C, et al. Investigation on the effects of ducted propeller and tail fin deflection parameters on the underwater hydrodynamic characteristics of trans-medium submersibles. Chinese Journal of Ship Research, 2026, 21(2): 63-76. https://doi.org/10.19693/j.issn.1673-3185.04274

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Received: 15 November 2024
Revised: 30 April 2025
Published: 12 June 2025
© 2026 Chinese Journal of Ship Research.