Optimization of a Human-Powered Aircraft Using Fluid-Structure Interaction Simulations

被引:4
|
作者
Vanderhoydonck, Bob [1 ]
Santo, Gilberto [1 ]
Vierendeels, Jan [1 ]
Degroote, Joris [1 ]
机构
[1] Univ Ghent, Dept Flow Heat & Combust Mech, Fac Engn & Architecture, Sint Pietersnieuwstr 41, B-9000 Ghent, Belgium
关键词
human-powered aircraft; vortex lattice method; computational fluid dynamics; fluid-structure interaction; optimization;
D O I
10.3390/aerospace3030026
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The special type of aircrafts in which the human power of the pilot is sufficient to take off and sustain flight are known as Human-Powered Aircrafts (HPAs). To explore the peculiarities of these aircrafts, the aerodynamic performance of an existing design is evaluated first, using both the vortex lattice method and computational fluid dynamics. In a second step, it is attempted to design and optimize a new HPA capable of winning the Kremer International Marathon Competition. The design will be special in that it allows one to include a second pilot on board the aircraft. As the structural deflection of the wing is found to be a key aspect during design, fluid-structure interaction simulations are performed and included in the optimization procedure. To assess the feasibility of winning the competition, the physical performance of candidate pilots is measured and compared with the predicted required power.
引用
收藏
页数:25
相关论文
共 50 条
  • [31] Fluid-Structure Interaction Simulations of the Initiation Process of Cerebral Aneurysms
    Nagy, Jozsef
    Fenz, Wolfgang
    Miron, Veronika M.
    Thumfart, Stefan
    Maier, Julia
    Major, Zoltan
    Stefanits, Harald
    Oberndorfer, Johannes
    Stroh, Nico
    Mazanec, Vanessa
    Rauch, Philip-Rudolf
    Gruber, Andreas
    Gmeiner, Matthias
    BRAIN SCIENCES, 2024, 14 (10)
  • [32] Optimization with nonstationary, nonlinear monolithic fluid-structure interaction
    Wick, Thomas
    Wollner, Winnifried
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2021, 122 (19) : 5430 - 5449
  • [33] A review of fluid-structure interaction simulations of prosthetic heart valves
    Borazjani, Iman
    Journal of Long-Term Effects of Medical Implants, 2015, 25 (1-2) : 75 - 93
  • [34] An Optimization of a Turbocharger Blade Based on Fluid-Structure Interaction
    Li, Minghai
    Li, Yuanzhe
    Jiang, Feng
    Hu, Jie
    PROCESSES, 2022, 10 (08)
  • [35] Convergence acceleration for partitioned simulations of the fluid-structure interaction in arteries
    Lars Radtke
    Axel Larena-Avellaneda
    Eike Sebastian Debus
    Alexander Düster
    Computational Mechanics, 2016, 57 : 901 - 920
  • [36] Parallel coupling numerics for partitioned fluid-structure interaction simulations
    Mehl, Miriam
    Uekermann, Benjamin
    Bijl, Hester
    Blom, David
    Gatzhammer, Bernhard
    van Zuijlen, Alexander
    COMPUTERS & MATHEMATICS WITH APPLICATIONS, 2016, 71 (04) : 869 - 891
  • [37] Fluid-Structure Interaction Simulations of Bicuspid Aortic Valve Disease
    Kaiser, Alexander D.
    Shad, Rohan
    Schiavone, Nicole
    Hiesinger, William
    Marsden, Alison L.
    CIRCULATION, 2021, 144
  • [38] A Particle Method for Fluid-Structure Interaction Simulations in Multiple GPUs
    Becerra-Sagredo, Julia
    Sigalotti, Leonardo
    Klapp, Jaime
    HIGH PERFORMANCE COMPUTING CARLA 2016, 2017, 697 : 346 - 358
  • [39] Comparison of arterial wall models in fluid-structure interaction simulations
    Balzani, D.
    Heinlein, A.
    Klawonn, A.
    Rheinbach, O.
    Schroeder, J.
    COMPUTATIONAL MECHANICS, 2023, 72 (05) : 949 - 965
  • [40] Convergence acceleration for partitioned simulations of the fluid-structure interaction in arteries
    Radtke, Lars
    Larena-Avellaneda, Axel
    Debus, Eike Sebastian
    Duester, Alexander
    COMPUTATIONAL MECHANICS, 2016, 57 (06) : 901 - 920