Dominant flow features in the wake of a wind turbine at high Reynolds numbers

被引:1
|
作者
Pique, A. [1 ]
Miller, M. A. [2 ]
Hultmark, M. [1 ]
机构
[1] Princeton Univ, Dept Mech & Aerosp Engn, Princeton, NJ 08544 USA
[2] Penn State Univ, Dept Aerosp Engn, State Coll, PA USA
基金
美国国家科学基金会;
关键词
SIMPLIFIED VORTEX MODEL; STABILITY ANALYSIS; TIP VORTICES; LAYER; TUNNEL; SIMULATIONS; INSTABILITY; MECHANISMS; EVOLUTION; PROPELLER;
D O I
10.1063/5.0086746
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Dominant flow features in the near and intermediate wake of a horizontal-axis wind turbine are studied at near field-scale Reynolds numbers. Measurements of the axial velocity component were performed using a nano-scale hot-wire anemometer and analyzed using spectral methods to reveal the extent and evolution of the flow features. Experiments were conducted at a range of Reynolds numbers, of 2.7 x 10(6) <= Re-D <= 7.2 x 10(6), based on the rotor diameter and freestream velocity. Five different downstream locations were surveyed, between 0.77 <= x / D <= 5.52, including the near wake, transition to the intermediate wake, and the intermediate wake. Three dominant wake features are identified and studied: the tip vortices, an annular shear layer in the wake core, and wake meandering. The tip vortices are shown to have a broadband influence in the flow in their vicinity, which locally alters the turbulence in that area. It is shown that shedding in the wake core and wake meandering are two distinct and independent low frequency features, and the wake meandering persists into the intermediate wake, whereas the signatures of the core shedding vanish early in the near wake. Published under an exclusive license by AIP Publishing.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Experimental investigation of the effects of the Reynolds number on the performance and near wake of a wind turbine
    Bourhis, M.
    Pereira, M.
    Ravelet, F.
    [J]. RENEWABLE ENERGY, 2023, 209 : 63 - 70
  • [22] On Wind Turbine structural stiffness influence on wake flow
    Muscari, C.
    Giordani, R.
    Schito, P.
    [J]. JOURNAL OF FLUIDS AND STRUCTURES, 2023, 118
  • [23] A hybrid method for modelling wake flow of a wind turbine
    Yuan, Yuming
    Ma, Q. W.
    Yan, Shiqiang
    Zheng, Xing
    Liao, Kangping
    Ma, Gang
    Sun, Hanbing
    Khayyer, Abbas
    [J]. OCEAN ENGINEERING, 2023, 281
  • [24] High-resolution direct numerical simulations of flow structure and aerodynamic performance of wind turbine airfoil at wide range of Reynolds numbers
    Nakhchi, M. E.
    Naung, S. Win
    Rahmati, M.
    [J]. ENERGY, 2021, 225
  • [25] ON THE WAKE TRANSITION IN THE FLOW PAST A CIRCULAR CYLINDER AT CRITICAL REYNOLDS NUMBERS
    Rodriguez, Ivette
    Lehmkuhl, Oriol
    Chiva, Jorge
    Borrell, Ricard
    Oliva, Assensi
    [J]. 11TH WORLD CONGRESS ON COMPUTATIONAL MECHANICS; 5TH EUROPEAN CONFERENCE ON COMPUTATIONAL MECHANICS; 6TH EUROPEAN CONFERENCE ON COMPUTATIONAL FLUID DYNAMICS, VOLS V - VI, 2014, : 5520 - 5527
  • [26] Numerical simulation of a vertical axis wind turbine airfoil experiencing dynamic stall at high Reynolds numbers
    Hand, Brian
    Kelly, Ger
    Cashman, Andrew
    [J]. COMPUTERS & FLUIDS, 2017, 149 : 12 - 30
  • [27] FLOW IN CONCENTRIC ANNULI AT HIGH REYNOLDS NUMBERS
    ROTHFUS, RR
    SARTORY, WK
    KERMODE, RI
    [J]. AICHE JOURNAL, 1966, 12 (06) : 1086 - &
  • [28] CAVITY FLOW AT HIGH REYNOLDS-NUMBERS
    NALLASAMY, M
    PRASAD, KK
    [J]. JOURNAL OF FLUID MECHANICS, 1977, 79 (FEB22) : 391 - 414
  • [29] AN EXPERIMENTAL INVESTIGATION OF THE WAKE SHED FROM A HIGH-LIFT LOW PRESSURE TURBINE CASCADE AT DIFFERENT REYNOLDS NUMBERS
    Satta, Francesca
    Ubaldi, Marina
    Zunino, Pietro
    Schipani, Claudia
    [J]. PROCEEDINGS OF THE ASME TURBO EXPO 2008, VOL 6, PT A, 2008, : 1369 - 1378
  • [30] Analysis of high Reynolds numbers effects on a wind turbine airfoil using 2D wind tunnel test data
    Pires, O.
    Munduate, X.
    Ceyhan, O.
    Jacobs, M.
    Snel, H.
    [J]. SCIENCE OF MAKING TORQUE FROM WIND (TORQUE 2016), 2016, 753