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

Research on the failure mechanism and shock response characteristics of titanium alloy cylindrical shell implosion in deep-sea high-pressure environment

Mingyi LI1,2,3Min ZHAO1,2,3,4( )Jiancai ZHENG1,2,3( )Jixie HUANG1,2,3
School of Ocean and Civil Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
State Key Laboratory of Submarine Geoscience, Shanghai Jiao Tong University, Shanghai 200240, China
Shanghai Jiao Tong University Sichuan Research Institute, Chengdu 610213, China
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Abstract

Objectives

Deep-sea pressure hulls are at risk of implosion when subjected to extreme hydrostatic pressures that exceed their ultimate bearing capacities. Therefore, it is essential to investigate the failure mechanisms and shock response characteristics of titanium alloy cylindrical shells under implosion conditions.

Methods

First, an independent deep-sea implosion experimental platform was developed, and underwater experiments were conducted on the titanium alloy cylindrical shell in a deep-sea high-pressure environment. A compressible multiphase flow module was then developed to simulate the high-speed motion of the flow field during the underwater implosion. The explicit nonlinear finite element method was employed to analyze the dynamic response associated with the collapse and failure of the titanium alloy cylindrical shell. Finally, the characteristics of the titanium alloy cylindrical shell implosion were investigated, focusing on the fluid-structure interaction mechanism, the evolution of asymmetric shock waves in the multiphase medium, the nonlinear dynamic response of the structure, and the energy balance relationships.

Results

The results showed that the titanium alloy cylindrical shell, with a length-to-diameter ratio of 2, collapsed in the first-order instability mode, and the implosion center formed twice successively. As hydrostatic pressure increased, a pronounced migration effect of the first implosion center was observed. Meanwhile, the failure mechanism of the shell transitioned progressively from inward extrusion to inward curling, and the rupture morphology evolved from an arcuate shape to an M-shaped configuration.

Conclusions

This study reveals the failure mechanism and shock response characteristics of the titanium alloy cylindrical shell implosion, providing valuable insights for the implosion assessment and protection of deep-sea pressure hulls.

CLC number: U674.941;U661.43 Document code: A

References

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Chinese Journal of Ship Research
Pages 148-159

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Cite this article:
LI M, ZHAO M, ZHENG J, et al. Research on the failure mechanism and shock response characteristics of titanium alloy cylindrical shell implosion in deep-sea high-pressure environment. Chinese Journal of Ship Research, 2026, 21(2): 148-159. https://doi.org/10.19693/j.issn.1673-3185.04523

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Received: 16 May 2025
Revised: 06 September 2025
Published: 09 October 2025
© 2026 Chinese Journal of Ship Research.