Near-surface topology and flow structure on a delta wing

被引:41
|
作者
Yavuz, MM [1 ]
Elkhoury, M [1 ]
Rockwell, D [1 ]
机构
[1] Lehigh Univ, Dept Mech Engn & Mech, Bethlehem, PA 18015 USA
关键词
Aerodynamics - Bifurcation (mathematics) - Computer simulation - Delta wing aircraft - Flow patterns - Interpolation - Perturbation techniques - Relaxation processes - Shear stress - Topology - Velocity measurement;
D O I
10.2514/1.3499
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The streamlines, and the corresponding patterns of velocity and vorticity, are characterized on a plane immediately adjacent to the surface of a delta wing using a laser-based technique of high-image-density particle image velocimetry. This technique provides the sequence of instantaneous states, as well as the corresponding time-averaged state, of the near-surface streamline topology and the associated critical points. These topological features are interpreted in terms of patterns of averaged and unsteady velocity, and averaged vorticity, which allow identification of regions of unsteadiness along the surface of the wing. These representations of the flow patterns on the stationary wing are also employed for the case of the wing subjected to small-amplitude perturbations in the pitching mode. Perturbations at or near the inherent frequency of the predominant unsteady event on the stationary wing yield substantial changes of the surface topology and flow structure. Furthermore, response of this topology and flow structure to transient, ramplike pitching motion is addressed to define the succession of states during the relaxation process immediately after cessation of the wing motion.
引用
收藏
页码:332 / 340
页数:9
相关论文
共 50 条
  • [31] Near-surface structure of a bicontinuous microemulsion with a transition region
    Kerscher, M.
    Busch, P.
    Mattauch, S.
    Frielinghaus, H.
    Richter, D.
    Belushkin, M.
    Gompper, G.
    PHYSICAL REVIEW E, 2011, 83 (03):
  • [32] Impact of terrain heterogeneity on near-surface turbulence structure
    Fesquet, Clement
    Drobinski, Philippe
    Barthlott, Christian
    Dubos, Thomas
    ATMOSPHERIC RESEARCH, 2009, 94 (02) : 254 - 269
  • [33] Structure of near-surface magnetic layer in iron borate
    Zubov, V. E.
    Strugatsky, M. B.
    Skibinsky, K. M.
    FUNCTIONAL MATERIALS, 2007, 14 (03): : 382 - 385
  • [34] Technological Basis for the Production of Ammonium Nitrate with a Nanoporous Surface and Near-surface Structure in Combined Flow Motion Devices
    Artyukhov, Artem
    Berladir, Kristina
    Krmela, Jan
    PROCEEDINGS OF THE 2020 IEEE 10TH INTERNATIONAL CONFERENCE ON NANOMATERIALS: APPLICATIONS & PROPERTIES (NAP-2020), 2020,
  • [35] FLOW STRUCTURE GENERATED BY OSCILLATING DELTA-WING SEGMENTS
    UTSCH, T
    ROCKWELL, D
    JOURNAL OF AIRCRAFT, 1990, 27 (06): : 574 - 576
  • [37] Objective maps of near-surface flow states near Point Conception, California
    Dever, EP
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2004, 34 (02) : 444 - 461
  • [38] SMALL SCALE SEA-SURFACE AND NEAR-SURFACE TEMPERATURE STRUCTURE
    SIMPSON, JJ
    PAULSON, CA
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1974, 55 (12): : 1133 - 1133
  • [39] RADIATIVE RECOMBINATION AT SURFACE AND NEAR-SURFACE STRUCTURE DEFECTS IN GaAs.
    Zuev, V.A.
    Korbutyak, D.V.
    Litovchenko, V.G.
    Soviet Physics, Semiconductors (English translation of Fizika i Tekhnika Poluprovodnikov), 1975, 8 (09): : 1071 - 1074
  • [40] SURFACE AND NEAR-SURFACE STRUCTURE OF GAAS(110) FROM LEED ANALYSIS
    MARK, P
    KAHN, A
    SO, E
    DUKE, CB
    MEYER, RJ
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1978, 23 (03): : 400 - 400