Experimental study of pitching and plunging airfoils at low Reynolds numbers

被引:26
|
作者
Baik, Yeon Sik [1 ]
Bernal, Luis P. [1 ]
机构
[1] Univ Michigan, Dept Aerosp Engn, Ann Arbor, MI 48109 USA
关键词
UNSTEADY AERODYNAMIC PERFORMANCE; LEADING-EDGE VORTICES; OSCILLATING FOILS; FLAPPING WINGS; LIFT; DYNAMICS; VORTEX; FLIGHT; FORCE; WAKE;
D O I
10.1007/s00348-012-1401-6
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Measurements of the unsteady flow structure and force time history of pitching and plunging SD7003 and flat plate airfoils at low Reynolds numbers are presented. The airfoils were pitched and plunged in the effective angle of attack range of 2.4A degrees-13.6A degrees (shallow-stall kinematics) and -6A degrees to 22A degrees (deep-stall kinematics). The shallow-stall kinematics results for the SD7003 airfoil show attached flow and laminar-to-turbulent transition at low effective angle of attack during the down stroke motion, while the flat plate model exhibits leading edge separation. Strong Re-number effects were found for the SD7003 airfoil which produced approximately 25 % increase in the peak lift coefficient at Re = 10,000 compared to higher Re flows. The flat plate airfoil showed reduced Re effects due to leading edge separation at the sharper leading edge, and the measured peak lift coefficient was higher than that predicted by unsteady potential flow theory. The deep-stall kinematics resulted in leading edge separation that led to formation of a large leading edge vortex (LEV) and a small trailing edge vortex (TEV) for both airfoils. The measured peak lift coefficient was significantly higher (similar to 50 %) than that for the shallow-stall kinematics. The effect of airfoil shape on lift force was greater than the Re effect. Turbulence statistics were measured as a function of phase using ensemble averages. The results show anisotropic turbulence for the LEV and isotropic turbulence for the TEV. Comparison of unsteady potential flow theory with the experimental data showed better agreement by using the quasi-steady approximation, or setting C(k) = 1 in Theodorsen theory, for leading edge-separated flows.
引用
收藏
页码:1979 / 1992
页数:14
相关论文
共 50 条
  • [31] Lift enhancement through flexibility of plunging wings at low Reynolds numbers
    Cleaver, D. J.
    Calderon, D. E.
    Wang, Z.
    Gursul, I.
    JOURNAL OF FLUIDS AND STRUCTURES, 2016, 64 : 27 - 45
  • [32] An experimental study of submerged jets at low reynolds numbers
    Lemanov, V. V.
    Terekhov, V. I.
    Sharov, K. A.
    Shumeiko, A. A.
    TECHNICAL PHYSICS LETTERS, 2013, 39 (05) : 421 - 423
  • [33] An experimental study of submerged jets at low reynolds numbers
    V. V. Lemanov
    V. I. Terekhov
    K. A. Sharov
    A. A. Shumeiko
    Technical Physics Letters, 2013, 39 : 421 - 423
  • [34] Multi-Point Shape Optimization of Airfoils at Low Reynolds Numbers
    Srinath, D. N.
    Mittal, Sanjay
    Manek, Veera
    CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2009, 51 (02): : 169 - 189
  • [35] Aerodynamic shape optimization of airfoils at ultra-low Reynolds numbers
    Meedhu Geogy Ukken
    M Sivapragasam
    Sādhanā, 2019, 44
  • [36] Unsteady fluid–structure interactions of membrane airfoils at low Reynolds numbers
    P. Rojratsirikul
    Z. Wang
    I. Gursul
    Experiments in Fluids, 2009, 46
  • [37] Aerodynamic shape optimization of airfoils at ultra-low Reynolds numbers
    Ukken, Meedhu Geogy
    Sivapragasam, M.
    SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES, 2019, 44 (06):
  • [38] Analysis and design of airfoils for use at ultra-low Reynolds numbers
    Kunz, PJ
    Kroo, I
    FIXED AND FLAPPING WING AERODYNAMICS FOR MICRO AIR VEHICLE APPLICATIONS, 2002, 195 : 35 - 60
  • [39] On the Measurement of Aerodynamic Characteristics of Airfoils with Laminarized Profiles at Low Reynolds Numbers
    Zverkov, I. D.
    Kryukov, A. V.
    Evtushok, G. U.
    HIGH ENERGY PROCESSES IN CONDENSED MATTER (HEPCM 2019), 2019, 2125
  • [40] Unsteady Aerodynamic Characteristics of Pitching Flat Plates at Low Reynolds Numbers
    Badrya, Camli
    Govindarajan, Bharath
    Medina, Albert
    Joon Yang, Seung
    Chopra, Inderjit
    JOURNAL OF AIRCRAFT, 2021, 58 (04): : 917 - 934