Comparison of DDC and ISO method for FLI analysis of bottom fixed wind turbine

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Auteurs principaux: Yin, Haoyang, Wang, Bing, Gao, Shan, Qu, Yan, Chuang, Zhenju
Format: Recurso digital
Langue:anglais
Publié: Zenodo 2024
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author Yin, Haoyang
Wang, Bing
Gao, Shan
Qu, Yan
Chuang, Zhenju
author_facet Yin, Haoyang
Wang, Bing
Gao, Shan
Qu, Yan
Chuang, Zhenju
contents <p><strong>Abstract</strong></p> <p>Ice-induced vibration is a serious problem for offshore structures in ice-covered sea areas. Various monitoring efforts have identified three types of ice-structure vibrations. Similarly, wind turbine structures experience three main types of vibration. When ice moves slowly against structures, the coupling of ice crushing and structural vibration can cause a lock-in between ice loads and structural vibrations, leading to a dangerous loading condition known as frequency lock-in (FLI) vibration. This scenario must be considered during the design process because it can result in strong structural vibrations. Current practice involves either using approaches provided in design standards or applying pregenerated ice load time series in the wind turbine aeroelastic model. This paper proposes a new mechanism and analysis method. A 5MW fixed monopile wind turbine was used as a sample to compare the new analysis method with the ISO method. The study shows that the results of the ISO method are smaller than those of the new method proposed in this paper. The study also indicates that the probability of FLI occurrence on an offshore wind turbine is lower than that on oil platforms and lighthouses because the wind turbine has high-rise and low-frequency characteristics. </p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_14532443
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language eng
publishDate 2024
publisher Zenodo
record_format zenodo
spellingShingle Comparison of DDC and ISO method for FLI analysis of bottom fixed wind turbine
Yin, Haoyang
Wang, Bing
Gao, Shan
Qu, Yan
Chuang, Zhenju
ice-induced vibration
frequency lock-in
ductile damage-collapse
fixed offshore wind turbine
ice-structure interactions
wind turbine in ice regions
Ice
<p><strong>Abstract</strong></p> <p>Ice-induced vibration is a serious problem for offshore structures in ice-covered sea areas. Various monitoring efforts have identified three types of ice-structure vibrations. Similarly, wind turbine structures experience three main types of vibration. When ice moves slowly against structures, the coupling of ice crushing and structural vibration can cause a lock-in between ice loads and structural vibrations, leading to a dangerous loading condition known as frequency lock-in (FLI) vibration. This scenario must be considered during the design process because it can result in strong structural vibrations. Current practice involves either using approaches provided in design standards or applying pregenerated ice load time series in the wind turbine aeroelastic model. This paper proposes a new mechanism and analysis method. A 5MW fixed monopile wind turbine was used as a sample to compare the new analysis method with the ISO method. The study shows that the results of the ISO method are smaller than those of the new method proposed in this paper. The study also indicates that the probability of FLI occurrence on an offshore wind turbine is lower than that on oil platforms and lighthouses because the wind turbine has high-rise and low-frequency characteristics. </p>
title Comparison of DDC and ISO method for FLI analysis of bottom fixed wind turbine
topic ice-induced vibration
frequency lock-in
ductile damage-collapse
fixed offshore wind turbine
ice-structure interactions
wind turbine in ice regions
Ice
url https://doi.org/10.5281/zenodo.14532443