Free-surface and rigid-lid MCC models for internal waves generated by a bottom disturbance

Bottom disturbances in density-stratified oceans can generate both internal and surface waves. In this paper, the strongly non-linear free-surface Miyata-Choi-Camassa model (MCC-FS) is applied to investigate the internal and surface waves generated by a moving bottom body in a two-layer fluid system, and a comparison with its rigid-lid counterpart (MCC-RL) is conducted to clarify the influence of the free surface on the generated internal waves. The waves generated by a moving bottom body are simulated and compared with computational fluid dynamics results, showing good agreement in both internal- and surface-wave profiles. A systematic comparison between the MCC-FS and MCC-RL models shows that the MCC-FS model predicts fewer internal waves within the same time interval, a shorter propagation distance of the leading wave, and a slightly lower critical speed, while the wave amplitude is only weakly affected. Moreover, the leading-wave location difference increases non-linearly with body speed when the moving-body speed is lower than the critical speed, but the free-surface effect becomes insignificant when the moving-body speed exceeds the critical speed.

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Publication Details

Journal
Proceedings of the Institution of Civil Engineers - Maritime Engineering
Published
2026-09-25
DOI
https://doi.org/10.1680/jmaen.26.00034
Primary Topic
Oceanographic and Atmospheric Processes
Type
article
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article

Free-surface and rigid-lid MCC models for internal waves generated by a bottom disturbance

Binbin Zhao, Zhan Wang, Tianyu Zhang, Wenyang Duan et al.
Proceedings of the Institution of Civil Engineers - Maritime Engineering
Oceanographic and Atmospheric Processes
article

Free-surface and rigid-lid MCC models for internal waves generated by a bottom disturbance

Binbin Zhao, Zhan Wang, Tianyu Zhang, Wenyang Duan, Maolin Wang
article en

Abstract

Bottom disturbances in density-stratified oceans can generate both internal and surface waves. In this paper, the strongly non-linear free-surface Miyata-Choi-Camassa model (MCC-FS) is applied to investigate the internal and surface waves generated by a moving bottom body in a two-layer fluid system, and a comparison with its rigid-lid counterpart (MCC-RL) is conducted to clarify the influence of the free surface on the generated internal waves. The waves generated by a moving bottom body are simulated and compared with computational fluid dynamics results, showing good agreement in both internal- and surface-wave profiles. A systematic comparison between the MCC-FS and MCC-RL models shows that the MCC-FS model predicts fewer internal waves within the same time interval, a shorter propagation distance of the leading wave, and a slightly lower critical speed, while the wave amplitude is only weakly affected. Moreover, the leading-wave location difference increases non-linearly with body speed when the moving-body speed is lower than the critical speed, but the free-surface effect becomes insignificant when the moving-body speed exceeds the critical speed.

Proceedings of the Institution of Civil Engineers - Maritime Engineering
Harbin University (CN), Harbin Engineering University (CN), National University of Defense Technology (CN)
Life below water
Openalex Percentile: Top 15%
Oceanographic and Atmospheric Processes
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Free-surface and rigid-lid MCC models for internal waves generated by a bottom disturbance — Binbin Zhao, Zhan Wang, et al. · Proceedings of the Institution of Civil Engineers - Maritime Engineering (2026) | TGRS Research Map | TGRS