Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme

Development of novel risk and reliability assessment methods is intended to support safer construction of offshore structures, subjected to environmental wave loads. Current study investigated 10-MW FWT (i.e., Floating Wind Turbine), operating under realistic environmental conditions. While increasi...

Full description

Saved in:
Bibliographic Details
Main Authors: Oleg Gaidai, Zirui Liu, Yu Cao, Jinlu Sheng, Yan Zhu, Fuxi Zhang
Format: Article
Language:English
Published: SAGE Publishing 2025-03-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/14613484241275301
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1850222112345686016
author Oleg Gaidai
Zirui Liu
Yu Cao
Jinlu Sheng
Yan Zhu
Fuxi Zhang
author_facet Oleg Gaidai
Zirui Liu
Yu Cao
Jinlu Sheng
Yan Zhu
Fuxi Zhang
author_sort Oleg Gaidai
collection DOAJ
description Development of novel risk and reliability assessment methods is intended to support safer construction of offshore structures, subjected to environmental wave loads. Current study investigated 10-MW FWT (i.e., Floating Wind Turbine), operating under realistic environmental conditions. While increasing operating safety, enhanced risk and reliability assessment methods may eventually help reduce manufacturing and maintenance costs. Excessive structural dynamics being usually caused by environmental stressors, acting on structural system. Environmental loads resulting from ambient wind and wave motions are typical for offshore structures. Current work advocates a novel risk and reliability assessment methodology that allows for reliable forecasting of failure/damage risks, arising from excessive FWT structural dynamics. Recently developed Gaidai multivariate reliability methodology along with state-of-the-art deconvolution method had been employed. Unlike existing reliability approaches such as Weibull-type, GP (i.e., Generalized Pareto), POT (i.e., Peaks Over the Threshold), etc., the recommended methodology does not rely on any pre-assumed functional class, when extrapolating failure probability functional tail. Practical advantages of the suggested multivariate reliability methodology combined with deconvolution scheme over, that is, 4-parameter Weibull’s extrapolation method had been demonstrated. Suggested methodology makes effective use of even limited underlying datasets, enabling robust and accurate projections of multidimensional structural system failure/damage risks. Overall methodological performance suggests that numerically stable and accurate extreme dynamics forecasts for FWT structural bending moments might be obtained, utilizing suggested multivariate reliability methodology. Deconvolution extrapolation approach being more numerically stable than parametric extrapolation techniques, due to its non-parametric nature.
format Article
id doaj-art-957814b52c644e6fa0d3609067f415b1
institution OA Journals
issn 1461-3484
2048-4046
language English
publishDate 2025-03-01
publisher SAGE Publishing
record_format Article
series Journal of Low Frequency Noise, Vibration and Active Control
spelling doaj-art-957814b52c644e6fa0d3609067f415b12025-08-20T02:06:27ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462025-03-014410.1177/14613484241275301Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution schemeOleg GaidaiZirui LiuYu CaoJinlu ShengYan ZhuFuxi ZhangDevelopment of novel risk and reliability assessment methods is intended to support safer construction of offshore structures, subjected to environmental wave loads. Current study investigated 10-MW FWT (i.e., Floating Wind Turbine), operating under realistic environmental conditions. While increasing operating safety, enhanced risk and reliability assessment methods may eventually help reduce manufacturing and maintenance costs. Excessive structural dynamics being usually caused by environmental stressors, acting on structural system. Environmental loads resulting from ambient wind and wave motions are typical for offshore structures. Current work advocates a novel risk and reliability assessment methodology that allows for reliable forecasting of failure/damage risks, arising from excessive FWT structural dynamics. Recently developed Gaidai multivariate reliability methodology along with state-of-the-art deconvolution method had been employed. Unlike existing reliability approaches such as Weibull-type, GP (i.e., Generalized Pareto), POT (i.e., Peaks Over the Threshold), etc., the recommended methodology does not rely on any pre-assumed functional class, when extrapolating failure probability functional tail. Practical advantages of the suggested multivariate reliability methodology combined with deconvolution scheme over, that is, 4-parameter Weibull’s extrapolation method had been demonstrated. Suggested methodology makes effective use of even limited underlying datasets, enabling robust and accurate projections of multidimensional structural system failure/damage risks. Overall methodological performance suggests that numerically stable and accurate extreme dynamics forecasts for FWT structural bending moments might be obtained, utilizing suggested multivariate reliability methodology. Deconvolution extrapolation approach being more numerically stable than parametric extrapolation techniques, due to its non-parametric nature.https://doi.org/10.1177/14613484241275301
spellingShingle Oleg Gaidai
Zirui Liu
Yu Cao
Jinlu Sheng
Yan Zhu
Fuxi Zhang
Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
Journal of Low Frequency Noise, Vibration and Active Control
title Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
title_full Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
title_fullStr Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
title_full_unstemmed Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
title_short Novel multivariate design concept for floating wind turbines by Gaidai multivariate reliability method and deconvolution scheme
title_sort novel multivariate design concept for floating wind turbines by gaidai multivariate reliability method and deconvolution scheme
url https://doi.org/10.1177/14613484241275301
work_keys_str_mv AT oleggaidai novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme
AT ziruiliu novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme
AT yucao novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme
AT jinlusheng novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme
AT yanzhu novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme
AT fuxizhang novelmultivariatedesignconceptforfloatingwindturbinesbygaidaimultivariatereliabilitymethodanddeconvolutionscheme