Vortex force maps for three-dimensional unsteady flows with application to a delta wing

被引:17
|
作者
Li, Juan [1 ]
Zhao, Xiaowei [1 ]
Graham, Michael [2 ]
机构
[1] Univ Warwick, Sch Engn, Coventry CV4 7AL, W Midlands, England
[2] Imperial Coll, Dept Aeronaut, London SW7 2BY, England
基金
欧盟地平线“2020”;
关键词
vortex shedding; separated flows; LEADING-EDGE VORTEX; LIFT; MOMENT; BODIES; FLUID; MODEL; BODY; WAKE;
D O I
10.1017/jfm.2020.515
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The unsteady forces acting on a body depend strongly on the local flow structures such as vortices. A quantitative understanding of the contribution of these structures to the instantaneous overall force is of fundamental significance. In the present study, a three-dimensional (3-D) vortex force map (VFM) method, extended from a two-dimensional (2-D) one, is used to provide better insight into the complex 3-D flow dynamics. The VFM vectors are obtained from solutions of potential equations and used to build the 3-D VFMs where the critical regions and directions associated with significant positive or negative contributions to the forces are identified. Using the existing velocity/vorticity field near the body, these VFMs can be used to obtain the body forces. A decomposed form of the force formula is also derived to separate the correction term contributed from the uncaptured vortices (close to or far away from the body). The present method is applied to the starting flow of a delta wing at high angle of attack, where LEVs are enhanced and stabilized by an axial flow effect. The analogy between the normal force of a slender delta wing and that of a 2-D flat plate with a steadily growing span is demonstrated via the VFM analysis. We find, for this application, that the force evolution exhibits some similar behaviour to a 2-D airfoil starting flow and, surprisingly, the force contribution mainly comes from the conical vortex sheet rather than the central core. Moreover, a quantitative understanding of the influence of LEVs in different evolution regimes on the body force is demonstrated.
引用
收藏
页数:28
相关论文
共 50 条
  • [31] Scalar Description of Three-Dimensional Vortex Flows of an Incompressible Fluid
    Stepanyants, Yu. A.
    Yakubovich, E. I.
    DOKLADY PHYSICS, 2011, 56 (02) : 130 - 133
  • [33] Scalar description of three-dimensional vortex flows of an incompressible fluid
    Yu. A. Stepanyants
    E. I. Yakubovich
    Doklady Physics, 2011, 56 : 130 - 133
  • [34] A comparison of spectral and vortex methods in three-dimensional incompressible flows
    Cottet, GH
    Michaux, B
    Ossia, S
    VanderLinden, G
    JOURNAL OF COMPUTATIONAL PHYSICS, 2002, 175 (02) : 702 - 712
  • [35] Validation of a Three-Dimensional Vortex Particle Method for Fluid Flows
    Giovannini, Andre
    Gagnon, Yves
    APPLIED MATHEMATICS RESEARCH EXPRESS, 2006, (01)
  • [36] The three-dimensional structure of confined swirling flows with vortex breakdown
    Sotiropoulos, F
    Ventikos, Y
    JOURNAL OF FLUID MECHANICS, 2001, 426 : 155 - 175
  • [37] Numerical simulation of three-dimensional unsteady granular flows in rotary kiln
    Yin, Hongchao
    Zhang, Ming
    Liu, Hong
    POWDER TECHNOLOGY, 2014, 253 : 138 - 145
  • [38] Physical topology of three-dimensional unsteady flows with spheroidal invariant surfaces
    Contreras, P. S.
    Speetjens, M. F. M.
    Clercx, H. J. H.
    PHYSICAL REVIEW E, 2020, 101 (05)
  • [39] Parallel Computations of Unsteady Three-Dimensional Flows in a High Pressure Turbine
    Chang, Dongil
    Tavoularis, Stavros
    HIGH PERFORMANCE COMPUTING SYSTEMS AND APPLICATIONS, 2010, 5976 : 20 - 29
  • [40] DEVELOPMENT OF THREE-DIMENSIONAL PARTICLE TRACKING VELOCIMETRY FOR THE INVESTIGATION OF UNSTEADY FLOWS
    Homeniuk, D.
    Nobes, D. S.
    Wilson, D.
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER CONFERENCE - 2008, VOL 2, 2009, : 285 - 289