Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth

An improved reduction model is constructed to interpret coupled dynamic properties of an integrated support system for floating offshore wind turbine (FOWT), which is built up by a turbine, a tower, a typical tension leg platform (TLP) floater and tendons. A customized optimization program is develo...

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Main Authors: Meng, X., Liu, X., Tian, H., Liu, M., Wu, Changzhi
Format: Conference Paper
Published: 2016
Online Access:http://hdl.handle.net/20.500.11937/17343
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author Meng, X.
Liu, X.
Tian, H.
Liu, M.
Wu, Changzhi
author_facet Meng, X.
Liu, X.
Tian, H.
Liu, M.
Wu, Changzhi
author_sort Meng, X.
building Curtin Institutional Repository
collection Online Access
description An improved reduction model is constructed to interpret coupled dynamic properties of an integrated support system for floating offshore wind turbine (FOWT), which is built up by a turbine, a tower, a typical tension leg platform (TLP) floater and tendons. A customized optimization program is developed for typical TLP-type 5MW FOWTs in moderately deep water. Parameterized designs are evaluated including slow-drift, sum-frequency effects from environmental loads and dynamic resonance excitation from turbines. The performance and constrains of the system, especially the pre-stress state of tendons are implemented as additional optimal restrictions to make sure feasible results sound at extreme conditions. A physical model experiment with main structural parameters is conducted according to the sensitivity analysis to evaluate optimal concepts. The paper presents an effective methodology to determine dimensions of components for TLP type of FOWT with specific optimization approach.
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format Conference Paper
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T07:20:59Z
publishDate 2016
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-173432017-05-30T08:01:06Z Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth Meng, X. Liu, X. Tian, H. Liu, M. Wu, Changzhi An improved reduction model is constructed to interpret coupled dynamic properties of an integrated support system for floating offshore wind turbine (FOWT), which is built up by a turbine, a tower, a typical tension leg platform (TLP) floater and tendons. A customized optimization program is developed for typical TLP-type 5MW FOWTs in moderately deep water. Parameterized designs are evaluated including slow-drift, sum-frequency effects from environmental loads and dynamic resonance excitation from turbines. The performance and constrains of the system, especially the pre-stress state of tendons are implemented as additional optimal restrictions to make sure feasible results sound at extreme conditions. A physical model experiment with main structural parameters is conducted according to the sensitivity analysis to evaluate optimal concepts. The paper presents an effective methodology to determine dimensions of components for TLP type of FOWT with specific optimization approach. 2016 Conference Paper http://hdl.handle.net/20.500.11937/17343 restricted
spellingShingle Meng, X.
Liu, X.
Tian, H.
Liu, M.
Wu, Changzhi
Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title_full Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title_fullStr Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title_full_unstemmed Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title_short Optimal design and experimental evaluation of a TLP for FOWT at moderate water depth
title_sort optimal design and experimental evaluation of a tlp for fowt at moderate water depth
url http://hdl.handle.net/20.500.11937/17343