Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine

An analytical solution for the diffraction of short-crested incident wave with uniform current on a composite bucket foundation is derived. The influences of the uniform current on wave frequency, wave run-up, wave force, and inertia and drag coefficients on the composite bucket foundation are inves...

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Main Authors: Piguang Wang, Mi Zhao, Xiuli Du
Format: Article
Language:English
Published: Hindawi Limited 2019-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2019/5932742
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spelling doaj-9651529b63f1490e959008e25c83526c2020-11-24T22:22:41ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472019-01-01201910.1155/2019/59327425932742Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind TurbinePiguang Wang0Mi Zhao1Xiuli Du2Beijing University of Technology, Beijing 100124, ChinaBeijing University of Technology, Beijing 100124, ChinaBeijing University of Technology, Beijing 100124, ChinaAn analytical solution for the diffraction of short-crested incident wave with uniform current on a composite bucket foundation is derived. The influences of the uniform current on wave frequency, wave run-up, wave force, and inertia and drag coefficients on the composite bucket foundation are investigated. The numerical results indicate that the current incident angle and current velocity have significant effects on the short-crested wave run-up, wave force, and inertia and drag coefficients on the composite bucket foundation. For a fixed wave number, the wave frequency, wave run-up, wave forces, and inertia and drag coefficients obviously increase with the increase of current velocity when the relative angle between the current velocity and wave propagation direction is smaller than 90°, whereas they obviously decrease when the relative angle is larger than 90°. It also can be found that the effect of wave-current interaction on the short-crested wave increases with the increase of the total wave number and the decrease of the water depth. The short-crested wave forces will be significantly increased when the current incident angle parallels to the direction of the wave propagating. Therefore, the short-crested wave-current load should be carefully considered in the design of the composite bucket foundation for an offshore wind turbine.http://dx.doi.org/10.1155/2019/5932742
collection DOAJ
language English
format Article
sources DOAJ
author Piguang Wang
Mi Zhao
Xiuli Du
spellingShingle Piguang Wang
Mi Zhao
Xiuli Du
Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
Mathematical Problems in Engineering
author_facet Piguang Wang
Mi Zhao
Xiuli Du
author_sort Piguang Wang
title Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
title_short Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
title_full Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
title_fullStr Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
title_full_unstemmed Short-Crested Wave-Current Forces on Composite Bucket Foundation for an Offshore Wind Turbine
title_sort short-crested wave-current forces on composite bucket foundation for an offshore wind turbine
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2019-01-01
description An analytical solution for the diffraction of short-crested incident wave with uniform current on a composite bucket foundation is derived. The influences of the uniform current on wave frequency, wave run-up, wave force, and inertia and drag coefficients on the composite bucket foundation are investigated. The numerical results indicate that the current incident angle and current velocity have significant effects on the short-crested wave run-up, wave force, and inertia and drag coefficients on the composite bucket foundation. For a fixed wave number, the wave frequency, wave run-up, wave forces, and inertia and drag coefficients obviously increase with the increase of current velocity when the relative angle between the current velocity and wave propagation direction is smaller than 90°, whereas they obviously decrease when the relative angle is larger than 90°. It also can be found that the effect of wave-current interaction on the short-crested wave increases with the increase of the total wave number and the decrease of the water depth. The short-crested wave forces will be significantly increased when the current incident angle parallels to the direction of the wave propagating. Therefore, the short-crested wave-current load should be carefully considered in the design of the composite bucket foundation for an offshore wind turbine.
url http://dx.doi.org/10.1155/2019/5932742
work_keys_str_mv AT piguangwang shortcrestedwavecurrentforcesoncompositebucketfoundationforanoffshorewindturbine
AT mizhao shortcrestedwavecurrentforcesoncompositebucketfoundationforanoffshorewindturbine
AT xiulidu shortcrestedwavecurrentforcesoncompositebucketfoundationforanoffshorewindturbine
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