FILM COOLING OVER A FLAT PLATE WITH COOLANT SUPPLY IN TO TRIANGULAR INDENTATION

А.А. Khalatov, N. Panchenko, О.О. Petliak
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Abstract

The modern high-performance gas turbine engines operate at the flow temperatures exceeding the melting temperature of materials, which require the blade cooling. However, the traditional scheme of film cooling is characterized by appearance of secondary vortex structures that destroy the coolant film. From the existing alternative schemes of film cooling, which allow protecting the turbine blades from influence of high temperatures, the scheme with triangular dimples has demonstrated good results in the stationary conditions. This cooling scheme was patented and tested in the Institute of Engineering Thermophysics, National Academy of Sciences of Ukraine. In order to determine the feasibility of such a scheme, it is necessary to consider the effect of the blade rotation influencing the film cooling efficiency. The results are given towards theoretical investigation of the film cooling efficiency of this scheme under rotation conditions. The study was performed using the ANSYS CFX package using SST-turbulence model. The blowing ratio was varied from 0.5 to 2.0. Numerical simulation performed for rotation parameters corresponding to the dominant influence of the Coriolis force – 10, 100 rpm, and centrifugal forces – 3000, 5000 and 7000 rpm. Оn the basis of computer simulation, it has been shown that rotation does not affect weakly the average efficiency of film cooling at Coriolis force, but causes a peak displacement of local adiabatic efficiency, at rotation parameter of 7000 rpm, when there is a distortion of the flow lines.
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薄膜冷却在平板上,冷却剂供应到三角形压痕
现代高性能燃气涡轮发动机工作在超过材料熔化温度的流动温度下,这就需要叶片冷却。然而,传统的气膜冷却方案的特点是出现二次涡结构,破坏冷却剂膜。从现有的可选的膜冷却方案中,可以保护涡轮叶片免受高温的影响,三角形凹窝方案在静止条件下显示出良好的效果。这种冷却方案获得了专利,并在乌克兰国家科学院工程热物理研究所进行了测试。为了确定该方案的可行性,需要考虑叶片旋转对气膜冷却效率的影响。对该方案在旋转条件下的气膜冷却效率进行了理论研究。研究采用ANSYS CFX软件包,采用海温湍流模型。吹气比为0.5 ~ 2.0。对科里奥利力(10、100 rpm)和离心力(3000、5000和7000 rpm)的主要影响对应的旋转参数进行了数值模拟。Оn在计算机模拟的基础上表明,旋转对科氏力作用下的膜冷平均效率影响不大,但在旋转参数为7000转/分时,当存在流线畸变时,会引起局部绝热效率的峰值位移。
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