Effects of feeding pressures on the flowfield structures of three-dimensional film cooling

IF 1.3 4区 工程技术 Q3 MECHANICS Fluid Dynamics Research Pub Date : 2022-01-01 DOI:10.1088/1873-7005/ac8287
Xinhai Zhao, S. Yi, Q. Mi, H. Ding, Lin He
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Abstract

A Mach 2.6 annular supersonic nozzle was designed to protect a hypersonic cone. The annular nozzle is able produce tangential cooling film around the cone. Experiments were carried out in a hypersonic wind tunnel under different cooling film feeding pressures and different attack angles. Temperature-sensitive paint (TSP) was used to measure surface temperature of the cone body; schlieren method was applied to visualize the flow structures. TSP results showed that cooling film can obviously decrease surface heating load, but its efficiency was influenced by the angle of attack. Schlieren results showed that the shape of upper-lip shock wave is similar to an arc, and the reflected shock wave is more closer to a straight line; both the tilt rate of upper-lip shock wave and the reflected shock wave were increased exponentially with the rise of feeding pressure; a higher feeding pressure resulted in a larger curvature of upper-lip shock wave; compared with reflected shock wave, upper-lip shock wave and shearing layer were more easily affected by the feeding pressure. With higher feeding pressure, incidence point was moved to the further downstream location, and a fitting formula is given to express the relationship between the position of the shock wave incidence point and the feeding pressure.
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进料压力对三维气膜冷却流场结构的影响
设计了一个2.6马赫的环形超音速喷嘴来保护高超声速锥体。环形喷嘴能够在锥体周围产生切向冷却膜。在高超声速风洞中进行了不同冷却膜进料压力和不同攻角下的实验。采用温度敏感涂料(TSP)测量锥体表面温度;采用纹影法对流动结构进行可视化。TSP结果表明,冷却膜能明显降低表面热负荷,但其效率受迎角的影响较大。纹影结果表明,上唇激波的形状近似于圆弧,反射的激波更接近于直线;随着进料压力的增大,上唇激波倾斜率和反射激波倾斜率均呈指数增长;进料压力越大,上唇激波曲率越大;与反射激波相比,上唇激波和剪切层更容易受到进料压力的影响。随着进料压力的增大,入射点向下游移动,并给出了激波入射点位置与进料压力关系的拟合公式。
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来源期刊
Fluid Dynamics Research
Fluid Dynamics Research 物理-力学
CiteScore
2.90
自引率
6.70%
发文量
37
审稿时长
5 months
期刊介绍: Fluid Dynamics Research publishes original and creative works in all fields of fluid dynamics. The scope includes theoretical, numerical and experimental studies that contribute to the fundamental understanding and/or application of fluid phenomena.
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