Numerical Simulation of the Interaction between Solitary Waves and Underwater Barriers Using a VPM–THINC/QQ-Coupled Model

Author:

Li Mengyu12ORCID,Zhao Xizeng3,Yin Mingjian3,Zong Yiyang3,Lu Jinyou12,Yao Shiming12,Qu Geng12,Luan Hualong12

Affiliation:

1. Changjiang River Scientific Research Institute, Wuhan 430010, China

2. Key Laboratory for River and Lake Regulation and Flood Control in the Middle and Lower Reaches of the Changjiang River, Ministry of Water Resources, Wuhan 430000, China

3. Ocean College, Zhejiang University, Zhoushan 316000, China

Abstract

The interaction between solitary waves and underwater barriers is investigated using our in-house code, entitled VPM (volume-average/point-value multi-moment)–THINC/QQ (THINC method with quadratic surface representation and Gaussian quadrature)-coupled model. The stability and accuracy of the proposed model are validated by comparing the numerical results with those of the well established two-phase flow solver interFoam. All the results indicate that the presented coupled model has the advantage of high fidelity in simulating solitary wave propagation. Subsequently, solitary waves passing over a single underwater barrier are simulated by the present model. Numerical results are compared with experimental results in terms of the free surface elevation, velocity profile, vorticity field, and wave forces. Great agreements are obtained. In the end, the interactions between solitary waves and double underwater barriers are investigated numerically. The results reveal that the reflection coefficient increases first, and then decreases, with the increasing space between the two barriers. For cases with different wave heights, the transmission coefficient decreases monotonically, and the dissipation coefficient is opposed to the transmission coefficient.

Funder

China Postdoctoral Science Foundation

the Natural Science Foundation of China—Ministry of Water Resources—China Three Gorges Corporation Joint Fund for Changjiang Water Science Research

National Natural Science Foundation of China

Fundamental Research Funds for Central Public Welfare Research Institutes

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

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