Multifidelity approach to the numerical aeroelastic simulation of flexible membrane wings

被引:0
|
作者
Torregrosa, A. J. [1 ]
Gil, A. [1 ]
Quintero, P. [1 ]
Cremades, A. [1 ]
机构
[1] Univ Politecn Valencia, CMT Motores Term, Camino Vera S-N, Valencia 46022, Spain
关键词
Aeroelasticity; Low-fidelity model; Membrane structure; Structural coupling; Flutter; FLUID-STRUCTURE INTERACTION; YACHT SAILS; MODELS; PREDICTIONS; PERFORMANCE; BEHAVIOR; BLADES; FLIGHT;
D O I
10.1016/j.ast.2024.109673
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Due to their lightness, the capacity to adapt to the flow conditions, and the safety when operating near humans, the use of membrane-resistant structures has increased in fields as micro aerial vehicles and yachts sails. This work focuses on the computational methodology required for simulating the aeroelastic coupling of the structure with the incident wind flow. A semi-monocoque structure (composed of a main spar, a set of ribs, and an external membrane) inside a wind tunnel is simulated using two different methodologies. Firstly, a complete fluid-structure interaction is calculated by combining the finite element methodology for the solid and the unsteady Reynolds average Navier-Stokes computational fluid dynamics for the air, including nonlinear effects and prestress. Then, a low-fidelity model is applied, obtaining the linear aeroelastic eigenvalues and the temporal response of the wing. Both methodologies results are in agreement with estimating the transient mean deformation and flutter velocity. However, the modal analysis tends to overestimate the aeroelastic effects, as it calculates potential aerodynamics, predicting an instability velocity lower than that provided by the transient simulations.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Aeroelastic oscillations of a pitching flexible wing with structural geometric nonlinearities: Theory and numerical simulation
    Robinson, Brandon
    da Costa, Leandro
    Poirel, Dominique
    Pettit, Chris
    Khalil, Mohammad
    Sarkar, Abhijit
    JOURNAL OF SOUND AND VIBRATION, 2020, 484
  • [22] Static aeroelastic model validation of membrane micro air vehicle wings
    Stanford, Bret
    Sytsma, Michael
    Albertani, Roberto
    Viieru, Dragos
    Shyy, Wei
    Ifju, Peter
    AIAA JOURNAL, 2007, 45 (12) : 2828 - 2837
  • [23] An aeroelastic optimization design approach for structural configuration of flying wings
    Yang, C. (yangchao@buaa.edu.cn), 1600, Chinese Society of Astronautics (34):
  • [24] Impact of Low-Order Modeling on Aeroelastic Predictions for Very Flexible Wings
    Riso, Cristina
    Cesnik, Carlos E. S.
    JOURNAL OF AIRCRAFT, 2022, 60 (03): : 662 - 687
  • [25] Nonlinear Aeroelastic Analysis of Highly Flexible Wings Using the Modal Rotation Method
    Drachinsky, Ariel
    Raveh, Daniella E.
    AIAA JOURNAL, 2022, 60 (05) : 3122 - 3134
  • [26] Aeroelastic Analysis of Highly Flexible Wings with Linearized Frequency-Domain Aerodynamics
    Stanford, Bret K.
    Jacobson, Kevin E.
    Chwalowski, Pawel
    JOURNAL OF AIRCRAFT, 2024, 61 (02): : 365 - 374
  • [27] Semi-analytical static aeroelastic analysis and response of flexible subsonic wings
    Berci, M.
    APPLIED MATHEMATICS AND COMPUTATION, 2015, 267 : 148 - 169
  • [28] Optimization of Locations and Fiber Orientations of Piezocomposite Actuators on Flexible Wings for Aeroelastic Control
    Zhou, Wenya
    Wang, Xiaoming
    Qian, Wei
    Wu, Wenhua
    JOURNAL OF AEROSPACE ENGINEERING, 2019, 32 (05)
  • [29] A refined aeroelastic beam finite element for the stability analysis of flexible subsonic wings
    Vindigni, Carmelo Rosario
    Mantegna, Giuseppe
    Orlando, Calogero
    Alaimo, Andrea
    Berci, Marco
    COMPUTERS & STRUCTURES, 2025, 307
  • [30] Simulation of Aeroelastic Limit-Cycle Oscillations of Aircraft Wings with Stores
    Padmanabhan, Madhusudan A.
    Pasiliao, Crystal L.
    Dowell, Earl H.
    AIAA JOURNAL, 2014, 52 (10) : 2291 - 2299