Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver

Propellers may encounter oblique flow during operation in off-design conditions. Study of this issue is important from the design and ship performance points of view. On the other hand, a propeller operating in oblique flow may sometimes result in a better propulsion efficiency. The main goal of the...

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Main Authors: Nouroozi Hossein, Zeraatgar Hamid
Format: Article
Language:English
Published: Sciendo 2020-03-01
Series:Polish Maritime Research
Subjects:
Online Access:https://doi.org/10.2478/pomr-2020-0001
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spelling doaj-33f7aa73120841208c47e46db780edd92021-09-05T14:01:08ZengSciendoPolish Maritime Research2083-74292020-03-0127161710.2478/pomr-2020-0001pomr-2020-0001Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse SolverNouroozi Hossein0Zeraatgar Hamid1Amirkabir University of Technology,Tehran, IranAmirkabir University of Technology,Tehran, IranPropellers may encounter oblique flow during operation in off-design conditions. Study of this issue is important from the design and ship performance points of view. On the other hand, a propeller operating in oblique flow may sometimes result in a better propulsion efficiency. The main goal of the present study is to provide an insight on the propeller characteristics in the oblique flow condition. In this research, the performance of the DTMB 4419 propeller is studied by the numerical method based on solving Reynolds Averaged Navier–Stokes (RANS) equations in several inflow angles. The sliding mesh approach is used to model the rotary motion of the propeller. Initially, the numerical method is verified by grid and time step dependency analysis at various inflow angles. Additionally, computed results at zero inflow angle are compared with the available experimental data and good agreement is achieved. Finally, the forces and moments acting on the propeller are obtained for 0° to 30° inflow angles. It is concluded that the inflow angle up to 10° has no significant influence on the thrust and torque coefficients as well as the propeller efficiency. However, at high angles up to 30°, the thrust and torque coefficients increase as the inflow angle increases, which may result in a significant improvement of propeller efficiency.https://doi.org/10.2478/pomr-2020-0001dtmb-p4119 propellerurans equationoblique flowsliding mesh technique
collection DOAJ
language English
format Article
sources DOAJ
author Nouroozi Hossein
Zeraatgar Hamid
spellingShingle Nouroozi Hossein
Zeraatgar Hamid
Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
Polish Maritime Research
dtmb-p4119 propeller
urans equation
oblique flow
sliding mesh technique
author_facet Nouroozi Hossein
Zeraatgar Hamid
author_sort Nouroozi Hossein
title Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
title_short Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
title_full Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
title_fullStr Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
title_full_unstemmed Propeller Hydrodynamic Characteristics in Oblique Flow by Unsteady Ranse Solver
title_sort propeller hydrodynamic characteristics in oblique flow by unsteady ranse solver
publisher Sciendo
series Polish Maritime Research
issn 2083-7429
publishDate 2020-03-01
description Propellers may encounter oblique flow during operation in off-design conditions. Study of this issue is important from the design and ship performance points of view. On the other hand, a propeller operating in oblique flow may sometimes result in a better propulsion efficiency. The main goal of the present study is to provide an insight on the propeller characteristics in the oblique flow condition. In this research, the performance of the DTMB 4419 propeller is studied by the numerical method based on solving Reynolds Averaged Navier–Stokes (RANS) equations in several inflow angles. The sliding mesh approach is used to model the rotary motion of the propeller. Initially, the numerical method is verified by grid and time step dependency analysis at various inflow angles. Additionally, computed results at zero inflow angle are compared with the available experimental data and good agreement is achieved. Finally, the forces and moments acting on the propeller are obtained for 0° to 30° inflow angles. It is concluded that the inflow angle up to 10° has no significant influence on the thrust and torque coefficients as well as the propeller efficiency. However, at high angles up to 30°, the thrust and torque coefficients increase as the inflow angle increases, which may result in a significant improvement of propeller efficiency.
topic dtmb-p4119 propeller
urans equation
oblique flow
sliding mesh technique
url https://doi.org/10.2478/pomr-2020-0001
work_keys_str_mv AT nouroozihossein propellerhydrodynamiccharacteristicsinobliqueflowbyunsteadyransesolver
AT zeraatgarhamid propellerhydrodynamiccharacteristicsinobliqueflowbyunsteadyransesolver
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