The submerged floating tunnel (SFT) is a promising underwater transportation solution for deep-water crossings. Existing designs primarily address ordinary wave actions, while tsunami impacts on SFTs remain understudied despite the threat posed by tsunamis to nearshore infrastructure. This study employs a smoothed particle hydrodynamics (SPH) model to investigate the hydrodynamic characteristics of SFTs under a tsunami-like solitary wave impact. The SPH model is first validated against published experimental data. Parametric studies then examine the effects of cross-sectional shape (CSS), buoyancy-weight ratio (BWR), and mooring cable angle (MCA) on kinematic motions and mooring forces. Results show that the SFT exhibits coupled sway, heave, and roll motions. Compared with an elliptical CSS of equal area, a circular CSS reduces the maximum motion amplitudes by between 4.2% and 53.2% and the maximum mooring forces by 41.7% and 46.8%. Increasing the BWR from 1.2 to 1.4 reduces the maximum motion amplitudes by between 12.9% and 53.8% and the maximum mooring forces by 6.9% and 45.4%. Lowering the MCA from 60° to 45° reduces the maximum motion amplitudes by between 19.0% and 48.1% and the maximum mooring forces by 11.3% and 33.3%. These findings provide guidance for the design of SFTs subjected to tsunami impacts.
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1 October 2025
Research Article|
October 07 2025
Design of submerged floating tunnel subjected to solitary wave impact using SPH method
Ming He
;
Ming He
State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation,
Tianjin University
, Tianjin, China
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Yipei Wang
;
Yipei Wang
Computational Marine Hydrodynamics Lab (CMHL), School of Naval Architecture, Ocean and Civil Engineering,
Shanghai Jiao Tong University
, Shanghai, China
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Jun Ma
;
Jun Ma
CHN Energy Technology and Economics Research Institute,
Future Science City Shenhua Research Institute
, Beijing, China
; Department of Engineering, University of Cambridge, Cambridge, UK
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Junliang Gao
;
Junliang Gao
School of Naval Architecture and Ocean Engineering,
Jiangsu University of Science and Technology
, Zhenjiang, China
; State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation, Tianjin University, Tianjin, China
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Can Yang
;
Yantai Research Institute of Harbin Engineering University
, Yantai, China
Corresponding author Can Yang (cyang@hrbeu.edu.cn)
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Dongfang Liang
Dongfang Liang
Department of Engineering,
University of Cambridge
, Cambridge, UK
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Corresponding author Can Yang (cyang@hrbeu.edu.cn)
Publisher: Emerald Publishing
Received:
October 17 2024
Accepted:
August 23 2025
Online ISSN: 1751-7737
Print ISSN: 1741-7597
Funding
Funding Group:
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): 52471295
- Funder(s):
- Award Group:
- Funder(s): State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation, Tianjin University
- Award Id(s): HESS-2323
- Funder(s):
- Award Group:
- Funder(s): Royal Society International Exchange Project
- Award Id(s): IEC\NSFC\242411
- Funder(s):
- Award Group:
- Funder(s): China Scholarship Council
- Award Id(s): 202206255003
- Funder(s):
- Funding Statement(s): The authors would like to acknowledge the National Natural Science Foundation of China (52471295), the State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation, Tianjin University (HESS-2323), the Royal Society International Exchange Project (IEC\NSFC\242411), and the China Scholarship Council (Grant No. 202206255003).
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Maritime Engineering (2025) 178 (4): 143–156.
Article history
Received:
October 17 2024
Accepted:
August 23 2025
Citation
He M, Wang Y, Ma J, Gao J, Yang C, Liang D (2025), "Design of submerged floating tunnel subjected to solitary wave impact using SPH method". Maritime Engineering, Vol. 178 No. 4 pp. 143–156, doi: https://doi.org/10.1680/jmaen.24.00032
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