Wandering of a Wing-Tip Vortex: Rapid Scanning and Correction of Fixed-Point Measurements

被引:13
|
作者
Iungo, Giacomo Valerio [1 ]
机构
[1] Univ Texas Dallas, Dept Mech Engn, 800 West Campbell Rd,WT10, Dallas, TX 75080 USA
来源
JOURNAL OF AIRCRAFT | 2017年 / 54卷 / 05期
关键词
NEAR-FIELD; VELOCITY; ORIGIN; FLOW;
D O I
10.2514/1.C034120
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Oscillations of a wing-tip vortex over planes orthogonal to the freestream direction are typically ascribed to a specific fluid dynamic phenomenon, which is referred to as vortex wandering or meandering. Vortex wandering affects noticeably fixed-point measurements, producing measured vortices with larger size and weaker intensity than the actual ones, and thus methods for correction of wandering smoothing effects are needed. For this survey, the tip vortex generated from a tapered NACA 0012 half-wing is measured through the rapid scanning technique, which consists of quickly traversing a five-hole pressure probe through the vortex core to obtain velocity signals practically not affected by wandering. Rapid scanning allows evaluating probability distributions of the vortex center positions, which are found to be characterized by bivariate normal probability density functions. Estimate of wandering smoothing effects on fixed-point measurements is carried out by comparing rapid scanning data not affected by wandering with fixed-point three-sensor hot-film measurements. The vortex strength seems to be the main vortex parameter controlling wandering; wandering amplitude is reduced by increasing wing angle of attack or freestream velocity or by reducing streamwise distance from the wing. However, a sufficiently strong or concentrated vortex can be weakly affected by wandering.
引用
收藏
页码:1779 / 1790
页数:12
相关论文
共 50 条
  • [21] Influence of Tip Shape on Structure of Wing-Tip Vortex at Low Reynolds Numbers
    Kamari, Djavad
    Tadjfar, Mehran
    PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER CONFERENCE, VOL 1, PTS A-C, 2009, : 1663 - 1667
  • [22] Numerical study of a wing-tip vortex using the Euler equations
    Spall, RE
    JOURNAL OF AIRCRAFT, 2001, 38 (01): : 22 - 27
  • [23] Turbulence structure resulting from a vortex/wing-tip encounter
    Wittmer, KS
    Devenport, WJ
    Wenger, CW
    JOURNAL OF THE AMERICAN HELICOPTER SOCIETY, 1999, 44 (02) : 141 - 149
  • [24] Effect of dielectric barrier discharge on wing-tip vortex formation
    S. A. Agibalova
    V. V. Golub
    I. A. Moralev
    A. S. Saveliev
    Technical Physics Letters, 2011, 37 : 1070 - 1073
  • [25] Wing-Tip Vortex Jet Interaction in the Extended Near Field
    Zurheide, Frank T.
    Meinke, Matthias
    Schroeder, Wolfgang
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '08, 2009, : 269 - 283
  • [26] Near field study of vortex attenuation using wing-tip blowing
    Simpson, RG
    Ahmed, NA
    Archer, RD
    AERONAUTICAL JOURNAL, 2002, 106 (1057): : 117 - 120
  • [27] VISUALIZATION OF THE WING-TIP VORTEX IN TEMPORAL AND SPATIAL PRESSURE-GRADIENTS
    LIANG, X
    RAMAPRIAN, BR
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1991, 113 (03): : 511 - 515
  • [28] Near-field wing-tip vortices and exponential vortex solution
    Zhana, HJ
    Zhou, Y
    Whitelaw, JH
    JOURNAL OF AIRCRAFT, 2006, 43 (02): : 445 - 449
  • [29] The structure and development of a counter-rotating wing-tip vortex pair
    Devenport, WJ
    Zsoldos, JS
    Vogel, CM
    JOURNAL OF FLUID MECHANICS, 1997, 332 : 71 - 104
  • [30] Meandering of a wing-tip vortex in a grid-generated turbulent flow
    Dghim, Marouen
    Ben Miloud, Kamal
    Ferchichi, Mohsen
    Fellouah, Hachimi
    PHYSICS OF FLUIDS, 2021, 33 (11)