Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance

The configuration and service condition of a wing can influence the performance of wing-in-ground effect (WIG) craft. In this study, the aerodynamic performance of compound wings in ground effect was numerically investigated through a parametric design study. The compound wing is divided into three...

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Main Authors: Jamei, Saeed, Abdul Malik, Adi Maimun, Mansor, Shuhaimi, Che Sidik, Nor Azwadi, Priyanto, Agoes
Format: Article
Published: American Society of Civil Engineers (ASCE) 2016
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Online Access:http://eprints.utm.my/id/eprint/68497/
http://ascelibrary.org/journal/jaeeez
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spelling my.utm.684972017-11-30T02:15:31Z http://eprints.utm.my/id/eprint/68497/ Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance Jamei, Saeed Abdul Malik, Adi Maimun Mansor, Shuhaimi Che Sidik, Nor Azwadi Priyanto, Agoes T Technology TJ Mechanical engineering and machinery The configuration and service condition of a wing can influence the performance of wing-in-ground effect (WIG) craft. In this study, the aerodynamic performance of compound wings in ground effect was numerically investigated through a parametric design study. The compound wing is divided into three parts with one rectangular wing in the middle and two reverse taper wings with an anhedral angle at the sides. A NACA6409 airfoil was employed as a section of the wing. The design parameters included the span size, anhedral angle, and taper ratio plus two boundary conditions: ground clearance and Reynolds number. The three-dimensional, Reynolds-averaged Navier-Stokes (RANS) equations were solved numerically. A realizable k-e turbulent model was used to compute the effects of the turbulent flow over the wing surface. The computational results of the basic wing were compared with the experimental data of other published works. Next, the aerodynamic performance of the compound wings was computed for various design parameters. Accordingly, all design parameters had effects on the lift-to-drag ratio of the compound wing, although their effects were not equal. The span size of the side wing, anhedral angle, and ground clearance have substantial effects on the lift-to-drag ratio of the compound wing. Two phenomena, namely the ram effect pressure and tip vortex could affect the lift-to-drag ratio of the compound wing in different configurations and conditions. American Society of Civil Engineers (ASCE) 2016-01-01 Article PeerReviewed Jamei, Saeed and Abdul Malik, Adi Maimun and Mansor, Shuhaimi and Che Sidik, Nor Azwadi and Priyanto, Agoes (2016) Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance. Journal of Aerospace Engineering, 29 (1). 04015022-04015022. ISSN 0893-1321 http://ascelibrary.org/journal/jaeeez
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic T Technology
TJ Mechanical engineering and machinery
spellingShingle T Technology
TJ Mechanical engineering and machinery
Jamei, Saeed
Abdul Malik, Adi Maimun
Mansor, Shuhaimi
Che Sidik, Nor Azwadi
Priyanto, Agoes
Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
description The configuration and service condition of a wing can influence the performance of wing-in-ground effect (WIG) craft. In this study, the aerodynamic performance of compound wings in ground effect was numerically investigated through a parametric design study. The compound wing is divided into three parts with one rectangular wing in the middle and two reverse taper wings with an anhedral angle at the sides. A NACA6409 airfoil was employed as a section of the wing. The design parameters included the span size, anhedral angle, and taper ratio plus two boundary conditions: ground clearance and Reynolds number. The three-dimensional, Reynolds-averaged Navier-Stokes (RANS) equations were solved numerically. A realizable k-e turbulent model was used to compute the effects of the turbulent flow over the wing surface. The computational results of the basic wing were compared with the experimental data of other published works. Next, the aerodynamic performance of the compound wings was computed for various design parameters. Accordingly, all design parameters had effects on the lift-to-drag ratio of the compound wing, although their effects were not equal. The span size of the side wing, anhedral angle, and ground clearance have substantial effects on the lift-to-drag ratio of the compound wing. Two phenomena, namely the ram effect pressure and tip vortex could affect the lift-to-drag ratio of the compound wing in different configurations and conditions.
format Article
author Jamei, Saeed
Abdul Malik, Adi Maimun
Mansor, Shuhaimi
Che Sidik, Nor Azwadi
Priyanto, Agoes
author_facet Jamei, Saeed
Abdul Malik, Adi Maimun
Mansor, Shuhaimi
Che Sidik, Nor Azwadi
Priyanto, Agoes
author_sort Jamei, Saeed
title Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
title_short Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
title_full Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
title_fullStr Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
title_full_unstemmed Design parametric study of a compound wing-in-ground effect. I: aerodynamics performance
title_sort design parametric study of a compound wing-in-ground effect. i: aerodynamics performance
publisher American Society of Civil Engineers (ASCE)
publishDate 2016
url http://eprints.utm.my/id/eprint/68497/
http://ascelibrary.org/journal/jaeeez
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score 13.160551