Active Flutter Suppression of a Wing Section in a Compressible Flow

被引:4
|
作者
Munoz, Alvaro [1 ]
Garcia-Fogeda, Pablo [1 ]
机构
[1] Univ Politecn Madrid, Dept Aircraft & Space Vehicles, ETSIAE, Madrid 28040, Spain
关键词
aeroservoelasticity; active flutter suppression; unsteady aerodynamics in the Laplace domain; TUNNEL;
D O I
10.3390/aerospace9120804
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
In this paper, a unified method for the computation of the unsteady aerodynamic forces in the Laplace domain for a wing section in subsonic, sonic and supersonic potential flows is presented. The subsonic solution is a new development based on the pressure mode method. The unsteady aerodynamic forces are evaluated in the Laplace domain by an efficient method for computing the kernel. The sonic potential flow solution is an extension of the solution for the frequency domain to the Laplace domain. Analytical expressions for the unsteady pressure coefficient and the unsteady aerodynamic forces in the Laplace domain are obtained for this flow regime. The method is validated in these regimes with existing theories in the frequency domain, and its application to flutter computation is provided for different Mach numbers by the use of the p-method. Active flutter suppression for a wing section with three degrees of freedom has been studied, and an adequate control law has been obtained. Using the proposed approach allows to calculate the unsteady aerodynamic forces directly in the Laplace domain, avoiding the inconvenience of the curve fitting from the frequency to the Laplace domain. In particular, this work can be used as a base for the application of other procedures for flutter suppression in the transonic regime.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Robust wing flutter suppression considering aerodynamic uncertainty
    Borglund, D
    Nilsson, U
    JOURNAL OF AIRCRAFT, 2004, 41 (02): : 331 - 334
  • [42] COMPRESSIBLE-FLOW CHANNEL FLUTTER.
    Grotberg, J.B.
    Shee, T.R.
    Journal of Fluid Mechanics, 1985, 159 : 175 - 193
  • [43] Active suppression of flutter with a smart flap
    Vepa, Ranjan
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2007, 30 (05) : 1536 - 1538
  • [44] Flutter Suppression by Active Control Technology
    Nae, Catalin
    Stroe, Gabriela Liliana
    Andrei, Irina-Carmen
    Berbente, Sorin
    INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS (ICNAAM-2018), 2019, 2116
  • [45] DESIGN OF AN ACTIVE FLUTTER SUPPRESSION SYSTEM
    LIEBST, BS
    GARRARD, WL
    ADAMS, WM
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 1986, 9 (01) : 64 - 71
  • [46] Optimal Flutter Suppression of Nonlinear Typical Wing Section Using Time-Domain Finite Elements Method
    Fazelzadeh, S. A.
    Rasti, A.
    Sadat-Hoseini, H.
    JOURNAL OF AEROSPACE ENGINEERING, 2014, 27 (05)
  • [47] Transonic flutter suppression for a three-dimensional elastic wing via active disturbance rejection control
    Yang, Zhijun
    Huang, Rui
    Zhao, Yonghui
    Hu, Haiyan
    JOURNAL OF SOUND AND VIBRATION, 2019, 445 : 168 - 187
  • [48] Design of active flutter suppression and wind-tunnel tests of a wing model involving a control delay
    Huang, Rui
    Qian, Wenmin
    Hu, Haiyan
    Zhao, Yonghui
    JOURNAL OF FLUIDS AND STRUCTURES, 2015, 55 : 409 - 427
  • [49] H∞ Control Design for Active Flutter Suppression of Flexible-Wing Unmanned Aerial Vehicle Demonstrator
    Waitman, Sergio
    Marcos, Andres
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2020, 43 (04) : 656 - 672
  • [50] Two-dimensional active wing/store flutter suppression using H-infinity theory
    Gade, PVN
    Inman, DJ
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 1997, 20 (05) : 949 - 955