Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed

Most offshore wind turbines are installed in shallow water and exposed to breaking waves. Previous numerical studies focusing on breaking wave forces generally ignored the seabed permeability. In this paper, a numerical model based on Volume-Averaged Reynolds Averaged Navier–Stokes equations (VARANS...

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Main Authors: Zhenyu Liu, Zhen Guo, Yuzhe Dou, Fanyu Zeng
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Journal of Marine Science and Engineering
Subjects:
Online Access:https://www.mdpi.com/2077-1312/9/5/520
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spelling doaj-3c57f12146f64d63b24b8da33dbe6cf92021-05-31T23:46:57ZengMDPI AGJournal of Marine Science and Engineering2077-13122021-05-01952052010.3390/jmse9050520Characteristics of Breaking Wave Forces on Piles over a Permeable SeabedZhenyu Liu0Zhen Guo1Yuzhe Dou2Fanyu Zeng3State Key Laboratory of Hydraulic Engineering Simulation and Safety, Tianjin University, Tianjin 300072, ChinaState Key Laboratory of Hydraulic Engineering Simulation and Safety, Tianjin University, Tianjin 300072, ChinaKey Laboratory of Offshore Geotechnics and Material of Zhejiang Province, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, ChinaKey Laboratory of Offshore Geotechnics and Material of Zhejiang Province, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, ChinaMost offshore wind turbines are installed in shallow water and exposed to breaking waves. Previous numerical studies focusing on breaking wave forces generally ignored the seabed permeability. In this paper, a numerical model based on Volume-Averaged Reynolds Averaged Navier–Stokes equations (VARANS) is employed to reveal the process of a solitary wave interacting with a rigid pile over a permeable slope. Through applying the Forchheimer saturated drag equation, effects of seabed permeability on fluid motions are simulated. The reliability of the present model is verified by comparisons between experimentally obtained data and the numerical results. Further, 190 cases are simulated and the effects of different parameters on breaking wave forces on the pile are studied systematically. Results indicate that over a permeable seabed, the maximum breaking wave forces can occur not only when waves break just before the pile, but also when a “secondary wave wall” slams against the pile, after wave breaking. With the initial wave height increasing, breaking wave forces will increase, but the growth can decrease as the slope angle and permeability increase. For inclined piles around the wave breaking point, the maximum breaking wave force usually occurs with an inclination angle of α = −22.5° or 0°.https://www.mdpi.com/2077-1312/9/5/520pilesolitary wavebreaking wavesubmarine slopeporous seabedpermeability
collection DOAJ
language English
format Article
sources DOAJ
author Zhenyu Liu
Zhen Guo
Yuzhe Dou
Fanyu Zeng
spellingShingle Zhenyu Liu
Zhen Guo
Yuzhe Dou
Fanyu Zeng
Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
Journal of Marine Science and Engineering
pile
solitary wave
breaking wave
submarine slope
porous seabed
permeability
author_facet Zhenyu Liu
Zhen Guo
Yuzhe Dou
Fanyu Zeng
author_sort Zhenyu Liu
title Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
title_short Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
title_full Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
title_fullStr Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
title_full_unstemmed Characteristics of Breaking Wave Forces on Piles over a Permeable Seabed
title_sort characteristics of breaking wave forces on piles over a permeable seabed
publisher MDPI AG
series Journal of Marine Science and Engineering
issn 2077-1312
publishDate 2021-05-01
description Most offshore wind turbines are installed in shallow water and exposed to breaking waves. Previous numerical studies focusing on breaking wave forces generally ignored the seabed permeability. In this paper, a numerical model based on Volume-Averaged Reynolds Averaged Navier–Stokes equations (VARANS) is employed to reveal the process of a solitary wave interacting with a rigid pile over a permeable slope. Through applying the Forchheimer saturated drag equation, effects of seabed permeability on fluid motions are simulated. The reliability of the present model is verified by comparisons between experimentally obtained data and the numerical results. Further, 190 cases are simulated and the effects of different parameters on breaking wave forces on the pile are studied systematically. Results indicate that over a permeable seabed, the maximum breaking wave forces can occur not only when waves break just before the pile, but also when a “secondary wave wall” slams against the pile, after wave breaking. With the initial wave height increasing, breaking wave forces will increase, but the growth can decrease as the slope angle and permeability increase. For inclined piles around the wave breaking point, the maximum breaking wave force usually occurs with an inclination angle of α = −22.5° or 0°.
topic pile
solitary wave
breaking wave
submarine slope
porous seabed
permeability
url https://www.mdpi.com/2077-1312/9/5/520
work_keys_str_mv AT zhenyuliu characteristicsofbreakingwaveforcesonpilesoverapermeableseabed
AT zhenguo characteristicsofbreakingwaveforcesonpilesoverapermeableseabed
AT yuzhedou characteristicsofbreakingwaveforcesonpilesoverapermeableseabed
AT fanyuzeng characteristicsofbreakingwaveforcesonpilesoverapermeableseabed
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