Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms

Based on laboratory experiments and numerical simulations, the scale effect of Internal Solitary Wave (ISW) loads on spar platforms is investigated. First, the waveforms, loads, and torques on the spar model at a laboratory obtained by the experiments and simulations agree well with each other. Then...

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Main Authors: Xu Wang, Ji-Fu Zhou
Format: Article
Language:English
Published: Elsevier 2020-01-01
Series:International Journal of Naval Architecture and Ocean Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2092678220300170
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spelling doaj-3e62d40a56a24dda8478e3cd8c10eeb82021-01-08T04:19:42ZengElsevierInternational Journal of Naval Architecture and Ocean Engineering2092-67822020-01-0112569577Numerical and experimental study on the scale effect of internal solitary wave loads on spar platformsXu Wang0Ji-Fu Zhou1Key Laboratory for Mechanics in Fluid Solid Coupling System, Institute of Mechanics, Chinese Academy of Sciences, Beijing, 100190, China; Corresponding author.Key Laboratory for Mechanics in Fluid Solid Coupling System, Institute of Mechanics, Chinese Academy of Sciences, Beijing, 100190, China; School of Engineering Sciences, University of Chinese Academy of Sciences, Beijing, 100049, ChinaBased on laboratory experiments and numerical simulations, the scale effect of Internal Solitary Wave (ISW) loads on spar platforms is investigated. First, the waveforms, loads, and torques on the spar model at a laboratory obtained by the experiments and simulations agree well with each other. Then, a prototype spar platform is simulated numerically to elucidate the scale effect. The scale effect for the horizontal forces is significant owing to the viscosity effect, whereas it is insignificant and can be neglected for the vertical forces. From the similarity point of view, the Froude number was the same for the scaled model and its prototype, while the Reynolds number increased significantly. The results show that the Morison equation with the same set of drag and inertia coefficients is not applicable to estimate the ISW loads for both the prototype and laboratory scale model. The coefficients should be modified to account for the scale effect. In conclusion, the dimensionless vertical forces on experimental models can be applied to the prototype, but the dimensionless horizontal forces of the experimental model are larger than those of the prototype, which will lead to overestimation of the horizontal force of the prototype if direct conversion is implemented.http://www.sciencedirect.com/science/article/pii/S2092678220300170Internal solitary wave loadsSpar platformScale effect
collection DOAJ
language English
format Article
sources DOAJ
author Xu Wang
Ji-Fu Zhou
spellingShingle Xu Wang
Ji-Fu Zhou
Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
International Journal of Naval Architecture and Ocean Engineering
Internal solitary wave loads
Spar platform
Scale effect
author_facet Xu Wang
Ji-Fu Zhou
author_sort Xu Wang
title Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
title_short Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
title_full Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
title_fullStr Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
title_full_unstemmed Numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
title_sort numerical and experimental study on the scale effect of internal solitary wave loads on spar platforms
publisher Elsevier
series International Journal of Naval Architecture and Ocean Engineering
issn 2092-6782
publishDate 2020-01-01
description Based on laboratory experiments and numerical simulations, the scale effect of Internal Solitary Wave (ISW) loads on spar platforms is investigated. First, the waveforms, loads, and torques on the spar model at a laboratory obtained by the experiments and simulations agree well with each other. Then, a prototype spar platform is simulated numerically to elucidate the scale effect. The scale effect for the horizontal forces is significant owing to the viscosity effect, whereas it is insignificant and can be neglected for the vertical forces. From the similarity point of view, the Froude number was the same for the scaled model and its prototype, while the Reynolds number increased significantly. The results show that the Morison equation with the same set of drag and inertia coefficients is not applicable to estimate the ISW loads for both the prototype and laboratory scale model. The coefficients should be modified to account for the scale effect. In conclusion, the dimensionless vertical forces on experimental models can be applied to the prototype, but the dimensionless horizontal forces of the experimental model are larger than those of the prototype, which will lead to overestimation of the horizontal force of the prototype if direct conversion is implemented.
topic Internal solitary wave loads
Spar platform
Scale effect
url http://www.sciencedirect.com/science/article/pii/S2092678220300170
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