Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine
This paper presents an integrated analysis about dynamic performance of a Floating Offshore Wind Turbine (FOWT) OC4 DeepCwind with semi-submersible platform under real sea environment. The emphasis of this paper is to investigate how the wave mean drift force and slow-drift wave excitation load (Qua...
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doaj-aaa0945763594ad084d1331ba2894a9f2021-01-08T04:19:35ZengElsevierInternational Journal of Naval Architecture and Ocean Engineering2092-67822020-01-0112367375Influence of second order wave excitation loads on coupled response of an offshore floating wind turbineZhenju Chuang0Shewen Liu1Yu Lu2Naval Architecture and Ocean Engineering College, Dalian Maritime University, China; Corresponding author. Naval Architecture and Ocean Engineering College, Dalian Maritime University, China.Naval Architecture and Ocean Engineering College, Dalian Maritime University, ChinaNaval Architecture and Ocean Engineering College, Dalian Maritime University, ChinaThis paper presents an integrated analysis about dynamic performance of a Floating Offshore Wind Turbine (FOWT) OC4 DeepCwind with semi-submersible platform under real sea environment. The emphasis of this paper is to investigate how the wave mean drift force and slow-drift wave excitation load (Quadratic transfer function, namely QTF) influence the platform motions, mooring line tension and tower base bending moments. Second order potential theory is being used for computing linear and nonlinear wave effects, including first order wave force, mean drift force and slow-drift excitation loads. Morison model is utilized to account the viscous effect from fluid. This approach considers floating wind turbine as an integrated coupled system. Two time-domain solvers, SIMA (SIMO/RIFLEX/AERODYN) and FAST are being chosen to analyze the global response of the integrated coupled system under small, moderate and severe sea condition. Results show that second order mean drift force and slow-drift force will drift the floater away along wave propagation direction. At the same time, slow-drift force has larger effect than mean drift force. Also tension of the mooring line at fairlead and tower base loads are increased accordingly in all sea conditions under investigation.http://www.sciencedirect.com/science/article/pii/S2092678220300029Floating offshore wind turbineMean drift forceSlow-drift wave excitation loadsQTFOC4 DeepCwind |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhenju Chuang Shewen Liu Yu Lu |
spellingShingle |
Zhenju Chuang Shewen Liu Yu Lu Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine International Journal of Naval Architecture and Ocean Engineering Floating offshore wind turbine Mean drift force Slow-drift wave excitation loads QTF OC4 DeepCwind |
author_facet |
Zhenju Chuang Shewen Liu Yu Lu |
author_sort |
Zhenju Chuang |
title |
Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
title_short |
Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
title_full |
Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
title_fullStr |
Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
title_full_unstemmed |
Influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
title_sort |
influence of second order wave excitation loads on coupled response of an offshore floating wind turbine |
publisher |
Elsevier |
series |
International Journal of Naval Architecture and Ocean Engineering |
issn |
2092-6782 |
publishDate |
2020-01-01 |
description |
This paper presents an integrated analysis about dynamic performance of a Floating Offshore Wind Turbine (FOWT) OC4 DeepCwind with semi-submersible platform under real sea environment. The emphasis of this paper is to investigate how the wave mean drift force and slow-drift wave excitation load (Quadratic transfer function, namely QTF) influence the platform motions, mooring line tension and tower base bending moments. Second order potential theory is being used for computing linear and nonlinear wave effects, including first order wave force, mean drift force and slow-drift excitation loads. Morison model is utilized to account the viscous effect from fluid. This approach considers floating wind turbine as an integrated coupled system. Two time-domain solvers, SIMA (SIMO/RIFLEX/AERODYN) and FAST are being chosen to analyze the global response of the integrated coupled system under small, moderate and severe sea condition. Results show that second order mean drift force and slow-drift force will drift the floater away along wave propagation direction. At the same time, slow-drift force has larger effect than mean drift force. Also tension of the mooring line at fairlead and tower base loads are increased accordingly in all sea conditions under investigation. |
topic |
Floating offshore wind turbine Mean drift force Slow-drift wave excitation loads QTF OC4 DeepCwind |
url |
http://www.sciencedirect.com/science/article/pii/S2092678220300029 |
work_keys_str_mv |
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