Time-averaged flow over a hydrofoil at high Reynolds number

被引:27
|
作者
Bourgoyne, DA [1 ]
Hamel, JM [1 ]
Ceccio, SL [1 ]
Dowling, DR [1 ]
机构
[1] Univ Michigan, Dept Mech Engn, Ann Arbor, MI 48109 USA
关键词
D O I
10.1017/S0022112003006190
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
At high Reynolds number, the flow of an incompressible viscous fluid over a lifting surface is a rich blend of fluid dynamic phenomena. Here, boundary layers formed at the leading edge develop over both the suction and pressure sides of the lifting surface, transition to turbulence, separate near the foil's trailing edge, combine in the near wake, and eventually form a turbulent far-field wake. The individual elements of this process have been the subject of much prior work. However, controlled experimental investigations of these flow phenomena and their interaction on a lifting surface at Reynolds numbers typical of heavy-lift aircraft wings or full-size ship propellers (chord-based Reynolds numbers, Re-C similar to 10(7)- 10(8)) are largely unavilable. This paper presents results from an experimental effort to identify and measure the dominant features of the flow over a two-dimensional hydrofoil at nominal Rec values from near one million to more than 50 million. The experiments were conducted in the US Navy's William B. Morgan Large Cavitation Channel with a solid-bronze hydrofoil (2.1 m chord, 3.0 m span, 17 cm maximum thickness) at flow speeds from 0.25 to 18.3 m s(-1). The foil section, a modified NACA 16 with a pressure side that is nearly flat and a suction side that terminates in a blunt trailingedge bevel, approximates the cross-section of a generic naval propeller blade. Time-averaged flow-field measurements drawn from laser-Doppler velocimetry, particle-imaging velocimetry, and static pressure taps were made for two trailing-edge bevel angles (44degrees and 56degrees). These velocity and pressure measurements were concentrated in the trailing-edge and near-wake regions, but also include flow conditions upstream and far downstream of the foil, as well as static pressure distributions on the foil surface and test section walls. Observed Reynolds-number variations in the time-averaged flow over the foil are traced to changes in suction-side boundary-layer transition and separation. Observed Reynolds-number variations in the time-averaged near wake suggest significant changes occur in the dynamic flow in the range of Rec investigated.
引用
收藏
页码:365 / 404
页数:40
相关论文
共 50 条
  • [32] Characteristics of vortex shedding from a sinusoidally pitching hydrofoil at high Reynolds number
    Zheng, Xiaobo
    Probsting, Stefan
    Wang, Hongliang
    Li, Ye
    PHYSICAL REVIEW FLUIDS, 2021, 6 (08):
  • [33] Quantifying the discontinuity of haemodialysis dose with time-averaged concentration (TAC) and time-averaged deviation (TAD) - Reply
    Daugirdas, John T.
    Tattersall, James
    NEPHROLOGY DIALYSIS TRANSPLANTATION, 2010, 25 (03) : 1012 - 1012
  • [34] Proportional Feedback Control of Laminar Flow over a Hemisphere Using Time-Averaged Sensing Velocity at Re = 300
    Yun, Jinhyeok
    Lee, Jungil
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS B, 2023, 47 (03) : 175 - 180
  • [35] The time scale for the transition to turbulence in a high Reynolds number, accelerated flow
    Robey, HF
    Zhou, Y
    Buckingham, AC
    Keiter, P
    Remington, BA
    Drake, RP
    PHYSICS OF PLASMAS, 2003, 10 (03) : 614 - 622
  • [36] Analysis of hydrodynamic characteristics and loss mechanism of hydrofoil under high Reynolds number
    Guo, Tao
    Wang, Hai-Yang
    OCEAN ENGINEERING, 2023, 287
  • [37] IMPACT OF HIGH FREESTREAM TURBULENCE ON LPT ENDWALL FLOW: PART I - LOSS DEVELOPMENT AND TIME-AVERAGED FLOW FIELD
    Donovan, Molly H.
    Marks, Christopher R.
    Fletcher, Nathan
    Rumpfkeil, Markus P.
    PROCEEDINGS OF ASME TURBO EXPO 2024: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2024, VOL 12B, 2024,
  • [38] Time-averaged velocity and scalar fields of the flow over and around a group of cylinders: a model experiment for canopy flows
    Wangsawijaya, D. D.
    Nicolai, C.
    Ganapathisubramani, B.
    FLOW, 2022, 2
  • [39] Fluctuation theorem for time-averaged work
    Naze, Pierre
    JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT, 2025, 2025 (02):
  • [40] TIME-AVERAGED MEASUREMENTS OF PEROXYACETYL NITRATE
    GROSJEAN, D
    PARMAR, SS
    WILLIAMS, EL
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1991, 25 (11) : 1864 - 1867