Velocity field measurements in the wake of a propeller model

被引:6
作者
Mukund, R. [1 ]
Kumar, A. Chandan [1 ]
机构
[1] CSIR Natl Aerosp Labs, Expt Aerodynam Div, NWTC Belur Campus, Bengaluru 560037, India
关键词
FLOW; TURBULENCE;
D O I
10.1007/s00348-016-2237-2
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Turboprop configurations are being revisited for the modern-day regional transport aircrafts for their fuel efficiency. The use of laminar flow wings is an effort in this direction. One way to further improve their efficiency is by optimizing the flow over the wing in the propeller wake. Previous studies have focused on improving the gross aerodynamic characteristics of the wing. It is known that the propeller slipstream causes early transition of the boundary layer on the wing. However, an optimized design of the propeller and wing combination could delay this transition and decrease the skin friction drag. Such a wing design would require the detailed knowledge of the development of the slipstream in isolated conditions. There are very few studies in the literature addressing the requirements of transport aircraft having six-bladed propeller and cruising at a high propeller advance ratio. Low-speed wind tunnel experiments have been conducted on a powered propeller model in isolated conditions, measuring the velocity field in the vertical plane behind the propeller using two-component hot-wire anemometry. The data obtained clearly resolved the mean velocity, the turbulence, the ensemble phase averages and the structure and development of the tip vortex. The turbulence in the slipstream showed that transition could be close to the leading edge of the wing, making it a fine case for optimization. The development of the wake with distance shows some interesting flow features, and the data are valuable for flow computation and optimization.
引用
收藏
页数:15
相关论文
共 32 条
[1]   NATURAL TRANSITION OF BOUNDARY-LAYERS - THE EFFECTS OF TURBULENCE, PRESSURE-GRADIENT, AND FLOW HISTORY [J].
ABUGHANNAM, BJ ;
SHAW, R .
JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 1980, 22 (05) :213-228
[2]  
Catalano F. M., 2004, Acta Polytechnica, Czech Technical University in Prague, V44, P8
[3]   Aerodynamic interaction study of the propeller wing under different flow configurations [J].
Chiaramonte, JY ;
Favier, D ;
Maresca, C ;
Benneceur, S .
JOURNAL OF AIRCRAFT, 1996, 33 (01) :46-53
[4]  
Deters R.W., 2015, 20152265 AIAA
[5]  
Durand WF, 1926, 220 NACA
[6]  
Elsaadawy EA, 2004, 20046590 AIAA
[7]   NUMERICAL AND EXPERIMENTAL INVESTIGATION OF ISOLATED PROPELLER WAKES IN AXIAL FLIGHT [J].
FAVIER, D ;
ETTAOUIL, A ;
MARESCA, C .
JOURNAL OF AIRCRAFT, 1989, 26 (09) :837-846
[8]   Effect of the number of blades on propeller wake evolution [J].
Felli, Mario ;
Guj, Giulio ;
Camussi, Roberto .
EXPERIMENTS IN FLUIDS, 2008, 44 (03) :409-418
[9]   OBSERVATIONS AND IMPLICATIONS OF NATURAL LAMINAR-FLOW ON PRACTICAL AIRPLANE SURFACES [J].
HOLMES, BJ ;
OBARA, CJ .
JOURNAL OF AIRCRAFT, 1983, 20 (12) :993-1006
[10]  
HOLMES BJ, 1984, 2256 NASA TP