Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation

Freak waves are an extreme marine environment factor in offshore structure design and become a potential risk, particularly for laying oil-gas pipelines in deep waters. The objective of this study was to reveal the freak wave effects on dynamic behaviors of offshore pipelines for deepwater installat...

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Main Authors: Pu Xu, Zhixin Du, Shunfeng Gong
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Journal of Marine Science and Engineering
Subjects:
Online Access:https://www.mdpi.com/2077-1312/8/2/119
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spelling doaj-14ae5f56866044fbaf4d2321a25a5f372021-04-02T14:13:30ZengMDPI AGJournal of Marine Science and Engineering2077-13122020-02-018211910.3390/jmse8020119jmse8020119Numerical Investigation into Freak Wave Effects on Deepwater Pipeline InstallationPu Xu0Zhixin Du1Shunfeng Gong2College of Civil Engineering, Fuzhou University, Fuzhou 350116, ChinaCollege of Civil Engineering, Fuzhou University, Fuzhou 350116, ChinaInstitute of Structural Engineering, Zhejiang University, Hangzhou 310058, ChinaFreak waves are an extreme marine environment factor in offshore structure design and become a potential risk, particularly for laying oil-gas pipelines in deep waters. The objective of this study was to reveal the freak wave effects on dynamic behaviors of offshore pipelines for deepwater installation. Thus, a dedicated finite element model (FEM) for deepwater pipeline installation by the S-lay method was developed with special consideration of freak waves. The FEM also took pipelay vessel motions, pipe−stinger roller interactions, and the cyclic contacts between the pipeline and seabed soil into account. Real vessel and stinger data from an actual engineering project in the South China Sea were collected to obtain an accurate simulation. Moreover, an effective superposition approach of combined transient wave trains and random wave trains was introduced, and various types of freak wave trains were simulated. Extensive numerical analyses of a 12 inch gas pipeline being installed into a water depth of 1500 m were implemented under various freak wave conditions. The noticeable influences of freak waves on the pipeline and seabed responses were identified, which provides significant awareness of offshore pipelines for deepwater installation design and field operation monitoring.https://www.mdpi.com/2077-1312/8/2/119offshore pipelineinstallation simulationdeepwaterfreak waves-lay method
collection DOAJ
language English
format Article
sources DOAJ
author Pu Xu
Zhixin Du
Shunfeng Gong
spellingShingle Pu Xu
Zhixin Du
Shunfeng Gong
Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
Journal of Marine Science and Engineering
offshore pipeline
installation simulation
deepwater
freak wave
s-lay method
author_facet Pu Xu
Zhixin Du
Shunfeng Gong
author_sort Pu Xu
title Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
title_short Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
title_full Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
title_fullStr Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
title_full_unstemmed Numerical Investigation into Freak Wave Effects on Deepwater Pipeline Installation
title_sort numerical investigation into freak wave effects on deepwater pipeline installation
publisher MDPI AG
series Journal of Marine Science and Engineering
issn 2077-1312
publishDate 2020-02-01
description Freak waves are an extreme marine environment factor in offshore structure design and become a potential risk, particularly for laying oil-gas pipelines in deep waters. The objective of this study was to reveal the freak wave effects on dynamic behaviors of offshore pipelines for deepwater installation. Thus, a dedicated finite element model (FEM) for deepwater pipeline installation by the S-lay method was developed with special consideration of freak waves. The FEM also took pipelay vessel motions, pipe−stinger roller interactions, and the cyclic contacts between the pipeline and seabed soil into account. Real vessel and stinger data from an actual engineering project in the South China Sea were collected to obtain an accurate simulation. Moreover, an effective superposition approach of combined transient wave trains and random wave trains was introduced, and various types of freak wave trains were simulated. Extensive numerical analyses of a 12 inch gas pipeline being installed into a water depth of 1500 m were implemented under various freak wave conditions. The noticeable influences of freak waves on the pipeline and seabed responses were identified, which provides significant awareness of offshore pipelines for deepwater installation design and field operation monitoring.
topic offshore pipeline
installation simulation
deepwater
freak wave
s-lay method
url https://www.mdpi.com/2077-1312/8/2/119
work_keys_str_mv AT puxu numericalinvestigationintofreakwaveeffectsondeepwaterpipelineinstallation
AT zhixindu numericalinvestigationintofreakwaveeffectsondeepwaterpipelineinstallation
AT shunfenggong numericalinvestigationintofreakwaveeffectsondeepwaterpipelineinstallation
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