Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface
In the present work, a generic ducted azimuth propulsor, which are frequently installed on a wide range of vessels, is subject to numerical investigation with the primary focus on performance deterioration and dynamic loads arising from the influence of oblique inflow and the presence of free surfac...
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doaj-65c9e0ddfdde4325a9eeb940f5c7db5f2021-04-02T03:19:51ZengMDPI AGJournal of Marine Science and Engineering2077-13122018-04-01623710.3390/jmse6020037jmse6020037Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free SurfaceNabila Berchiche0Vladimir I. Krasilnikov1Kourosh Koushan2SINTEF Ocean, P.O. Box 4762 Torgard, N-7465 Trondheim, NorwaySINTEF Ocean, P.O. Box 4762 Torgard, N-7465 Trondheim, NorwaySINTEF Ocean, P.O. Box 4762 Torgard, N-7465 Trondheim, NorwayIn the present work, a generic ducted azimuth propulsor, which are frequently installed on a wide range of vessels, is subject to numerical investigation with the primary focus on performance deterioration and dynamic loads arising from the influence of oblique inflow and the presence of free surface. An unsteady Reynolds-Averaged Navier-Stokes (RANS) method with the interface Sliding Mesh technique is employed to resolve interaction between the propulsor components. The VOF formulation is used to resolve the presence of free surface. Numerical simulations are performed, separately, in single-phase fluid to address the influence of oblique inflow on the characteristics of a propulsor operating in free-sailing, trawling and bollard conditions, and in multi-phase flow to address the influence of propulsor submergence. Detailed comparisons with experimental data are presented for the case of a propulsor in oblique flow conditions, including integral propulsor characteristics, loads on propulsor components and single blade loads. The results of the study illustrate the differences in propulsor performance at positive and negative heading angles, reveal the frequencies of dynamic load peaks, and provide quantification of thrust losses due to the effect of a free surface without waves. The mechanisms of ventilation inception found at different propulsor loading conditions are discussed.http://www.mdpi.com/2077-1312/6/2/37CFDRANSazimuth propulsorunsteady loadsventilation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nabila Berchiche Vladimir I. Krasilnikov Kourosh Koushan |
spellingShingle |
Nabila Berchiche Vladimir I. Krasilnikov Kourosh Koushan Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface Journal of Marine Science and Engineering CFD RANS azimuth propulsor unsteady loads ventilation |
author_facet |
Nabila Berchiche Vladimir I. Krasilnikov Kourosh Koushan |
author_sort |
Nabila Berchiche |
title |
Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface |
title_short |
Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface |
title_full |
Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface |
title_fullStr |
Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface |
title_full_unstemmed |
Numerical Analysis of Azimuth Propulsor Performance in Seaways: Influence of Oblique Inflow and Free Surface |
title_sort |
numerical analysis of azimuth propulsor performance in seaways: influence of oblique inflow and free surface |
publisher |
MDPI AG |
series |
Journal of Marine Science and Engineering |
issn |
2077-1312 |
publishDate |
2018-04-01 |
description |
In the present work, a generic ducted azimuth propulsor, which are frequently installed on a wide range of vessels, is subject to numerical investigation with the primary focus on performance deterioration and dynamic loads arising from the influence of oblique inflow and the presence of free surface. An unsteady Reynolds-Averaged Navier-Stokes (RANS) method with the interface Sliding Mesh technique is employed to resolve interaction between the propulsor components. The VOF formulation is used to resolve the presence of free surface. Numerical simulations are performed, separately, in single-phase fluid to address the influence of oblique inflow on the characteristics of a propulsor operating in free-sailing, trawling and bollard conditions, and in multi-phase flow to address the influence of propulsor submergence. Detailed comparisons with experimental data are presented for the case of a propulsor in oblique flow conditions, including integral propulsor characteristics, loads on propulsor components and single blade loads. The results of the study illustrate the differences in propulsor performance at positive and negative heading angles, reveal the frequencies of dynamic load peaks, and provide quantification of thrust losses due to the effect of a free surface without waves. The mechanisms of ventilation inception found at different propulsor loading conditions are discussed. |
topic |
CFD RANS azimuth propulsor unsteady loads ventilation |
url |
http://www.mdpi.com/2077-1312/6/2/37 |
work_keys_str_mv |
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