Volume 47 Issue 12
Dec.  2021
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HU Haode, MA Dongli, YANG Muqing, et al. Aerodynamic characteristics of airfoil near wavy water surface[J]. Journal of Beijing University of Aeronautics and Astronautics, 2021, 47(12): 2521-2532. doi: 10.13700/j.bh.1001-5965.2020.0448(in Chinese)
Citation: HU Haode, MA Dongli, YANG Muqing, et al. Aerodynamic characteristics of airfoil near wavy water surface[J]. Journal of Beijing University of Aeronautics and Astronautics, 2021, 47(12): 2521-2532. doi: 10.13700/j.bh.1001-5965.2020.0448(in Chinese)

Aerodynamic characteristics of airfoil near wavy water surface

doi: 10.13700/j.bh.1001-5965.2020.0448
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  • Corresponding author: YANG Muqing, E-mail: qingfengrumu@163.com
  • Received Date: 24 Aug 2020
  • Accepted Date: 29 Jan 2021
  • Publish Date: 20 Dec 2021
  • The aerodynamic characteristics of NACA 4412 airfoil moving over wavy water at small clearance is studied by solving Navier-Stokes equations. The accuracy of the numerical method is verified. The aerodynamic coefficients of airfoil moving over wavy water surface and wavy ground are calculated and compared. The results show that the aerodynamic coefficient changes periodically when the airfoil moves over the wavy water surface. Compared with the case of wavy ground, the variation curve of aerodynamic coefficient is significantly different and the fluctuation amplitude is larger. Through the analysis of the flow field structure, the interaction mechanism between the airfoil and the wavy water surface is found. The particles on the wavy water surface have vertical motion, when the clearance is small, the upward movement of the particles on the water surface will squeeze the air between the airfoil and the water surface, resulting in a large fluctuation of the airfoil aerodynamic force. At the same time, the reason why the fluctuation amplitude of aerodynamic coefficient decreases with the increase of incoming flow velocity is explained.

     

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  • [1]
    ROZHDESTVENSKY K V. Wing-in-ground effect vehicles[J]. Progress in Aerospace Sciences, 2006, 42(3): 211-283. http://www.sciencedirect.com/science/article/pii/S0376042106000637
    [2]
    HSIUN C, CHEN C. Aerodynamic characteristics of a two-dimensional airfoil with ground effect[J]. Journal of Aircraft, 1996, 33(2): 386-392. doi: 10.2514/3.46949
    [3]
    OCKFEN A E, MATVEEV K I. Numerical study of wing aerodynamics in ground proximity[C]//ASME International Mechanical Engineering Congress and Exposition. New York: ASME Press, 2008: 97-103.
    [4]
    OCKFEN A E, MATVEEV K I. Aerodynamic characteristics of NACA 4412 airfoil section with flap in extreme ground effect[J]. International Journal of Naval Architecture and Ocean Engineering, 2009, 1(1): 1-12. doi: 10.2478/IJNAOE-2013-0001
    [5]
    JUNG J H, KIM M J, YOON H S, et al. Endplate effect on aerodynamic characteristics of three-dimensional wings in close free surface proximity[J]. International Journal of Naval Architecture and Ocean Engineering, 2012, 4(4): 477-487. doi: 10.2478/IJNAOE-2013-0112
    [6]
    JAMEI S, MAIMUN A, MANSOR S, et al. Numerical investigation on aerodynamic characteristics of a compound wing-in-ground effect[J]. Journal of Aircraft, 2012, 49(5): 1297-1305. doi: 10.2514/1.C031627
    [7]
    QU Q, XI J, WANG W, et al. Numerical study of the aerodynamics of a NACA 4412 airfoil in dynamic ground effect[J]. Aerospace Science and Technology, 2014, 38: 56-63. doi: 10.1016/j.ast.2014.07.016
    [8]
    QU Q, WANG W, LIU P, et al. Airfoil aerodynamics in ground effect for wide range of angles of attack[J]. AIAA Journal, 2015, 53(4): 1048-1061. doi: 10.2514/1.J053366
    [9]
    BARBER T. A study of water surface deformation due to tip vortices of a wing-in-ground effect[J]. Journal of Ship Research, 2007, 51(2): 182-186. doi: 10.5957/jsr.2007.51.2.182
    [10]
    ZONG Z, LIANG H, ZHOU L. Lifting line theory for wing-in-ground effect in proximity to a free surface[J]. Journal of Engineering Mathematics, 2012, 74(1): 143-158. doi: 10.1007/s10665-011-9497-x
    [11]
    LIANG H, ZHOU L, ZONG Z, et al. An analytical investigation of two-dimensional and three-dimensional biplanes operating in the vicinity of a free surface[J]. Journal of Marine Science and Technology, 2013, 18(1): 12-31. doi: 10.1007/s00773-012-0187-9
    [12]
    BAL S. Free surface effects on 2-D airfoils and 3-D wings moving over water[J]. Ocean Systems Engineering, 2016, 6(3): 245-264. doi: 10.12989/ose.2016.6.3.245
    [13]
    米百刚, 詹浩. 近地、水面时的飞行器动态稳定特性数值模拟[J]. 船舶力学, 2017, 21(11): 1348-1355. doi: 10.3969/j.issn.1007-7294.2017.11.004

    MI B G, ZHAN H. Numerical simulation of aircraft dynamic stability characteristics flying over ground and water surface[J]. Journal of Ship Mechanics, 2017, 21(11): 1348-1355(in Chinese). doi: 10.3969/j.issn.1007-7294.2017.11.004
    [14]
    IM Y, CHANG K. Unsteady aerodynamics of a wing-in-ground effect airfoil flying over a wavy wall[J]. Journal of Aircraft, 2000, 37(4): 690-696. doi: 10.2514/2.2653
    [15]
    QU Q, LU Z, LIU P, et al. Numerical study of aerodynamics of a wing-in-ground effect craft[J]. Journal of Aircraft, 2014, 51(3): 913-924. doi: 10.2514/1.C032531
    [16]
    GAO B, QU Q, AGARWAL R K. Aerodynamics of a transonic airfoil above wavy ground[C]//AIAA Aerospace Sciences Meeting. Reston: AIAA, 2018: 1784.
    [17]
    LEE T, TREMBLAYDIONNE V. Experimental investigation of the aerodynamics and flowfield of a NACA 0015 airfoil over a wavy ground[J]. Journal of Fluids Engineering-Transactions of the ASME, 2018, 140(7): 71202. doi: 10.1115/1.4039236
    [18]
    TREMBLAYDIONNE V, LEE T. Effect of trailing-edge flap deflection on a symmetric airfoil over a wavy ground[J]. Journal of Fluids Engineering-Transactions of the ASME, 2019, 141(6): 64501. http://www.onacademic.com/detail/journal_1000041629480199_b749.html
    [19]
    ZHI H, XIAO T, CHEN J, et al. Numerical analysis of aerodynamics of a NACA4412 airfoil above wavy water surface[C]//AIAA Aviation 2019 Forum. Reston: AIAA, 2019: 3694.
    [20]
    FIROOZ A, GADAMI M. Turbulence flow for NACA 4412 in unbounded flow and ground effect with different turbulence models and two ground conditions: Fixed and moving ground conditions[C]//International Conference on Boundary and Interior Layers, 2006, 98: 161-164.
    [21]
    AHMED M R, TAKASAKI T, KOHAMA Y. Aerodynamics of a NACA4412 airfoil in ground effect[J]. AIAA Journal, 2007, 45(1): 37-47. doi: 10.2514/1.23872
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