Please use this identifier to cite or link to this item: https://doi.org/10.48441/4427.367
Publisher DOI: 10.1142/S021945542250016X
10.5281/zenodo.5834343
Title: Flutter Analysis of a 3-D Box-Wing Aircraft Configuration
Language: English
Authors: Ghasemikaram, Amirhossein 
Mazidi, Abbas 
Fazelzadeh, S. Ahmad 
Scholz, Dieter  
Keywords: Flutter; Box Wing Aircraft; BWA; 3-D Box-Wing; Wagner Function; Wagner Aerodynamic Model; Aircraft
Issue Date: 29-Dec-2021
Publisher: World Scientific Publishing
Journal or Series Name: International journal of structural stability and dynamics 
Volume: 22
Issue: 2
Startpage: 2250016-1
Endpage: 2250016-24
Is previous version of: 20.500.12738/13523
Project: Airport 2030 
Abstract: 
The aim of the current paper is to present a flutter analysis of a 3-D Box-Wing Aircraft (BWA) configuration. The box wing structure is considered as consisting of two wings (front and rear wings) connected with a winglet. Plunge and pitch motions are considered for each wing and the winglet is modeled by a longitudinal spring. In order to exert the effect of the wing-joint interactions (bending and torsion coupling), two ends of the spring are located on the gravity centers of the wings tip sections. Wagner unsteady model is used to simulate the aerodynamic force and moment on the wing. The governing equations are extracted via Hamilton’s variational principle. To transform the resulting partial integro-differential governing equations into a set of ordinary differential equations, the assumed modes method is utilized. In order to confirm the aerodynamic model, the flutter results of a clean wing are compared and validated with the previously published results. Also, for the validation, the 3-D box wing aircraft configuration flutter results are compared with MSC NASTRAN software and good agreement is observed. The effects of design parameters such as the winglet tension stiffness, the wing sweep and dihedral angles, and the aircraft altitude on the flutter velocity and frequency are investigated. The results reveal that physical and geometrical properties of the front and rear wings and also the winglet design have a significant influence on BWA aeroelastic stability boundary.
URI: http://hdl.handle.net/20.500.12738/12677
DOI: 10.48441/4427.367
ISSN: 0219-4554
Review status: Only preprints: This version has not yet been reviewed
Institute: Forschungsgruppe Flugzeugentwurf und -systeme (AERO) 
Department Fahrzeugtechnik und Flugzeugbau 
Fakultät Technik und Informatik 
Forschungs- und Transferzentrum Future Air Mobility 
Type: Preprint
Additional note: Preprint of an article published in International Journal of Structural Stability and Dynamics, vol. 22, no. 02, pp. 2250016-1 – 2250016-24. https://doi.org/10.1142/S021945542250016X. © 2021, World Scientific Publishing Company, https://www.worldscientific.com/worldscinet/ijssd, https://www.worldscientific.com/page/authors/author-rights
Appears in Collections:Publications with full text

Files in This Item:
File Description SizeFormat
GHASEMIKARAM-2021_Flutter_Analysis_BoxWingAircraft.pdfPreprint1.43 MBAdobe PDFView/Open
Show full item record

Page view(s)

334
checked on Apr 23, 2024

Download(s)

175
checked on Apr 23, 2024

Google ScholarTM

Check

HAW Katalog

Check

Note about this record


This item is licensed under a Creative Commons License Creative Commons