首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Experimental Study on the Film-Cooling Characteristics of the Cylindrical Holes Embedded in Sine-Wave Shaped Trench
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Experimental Study on the Film-Cooling Characteristics of the Cylindrical Holes Embedded in Sine-Wave Shaped Trench

机译:正弦波形沟槽嵌入式圆柱形孔的薄膜冷却特性的实验研究

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An experimental investigation has been performed to study the film-cooling performance of the cylindrical holes embedded in the sine-wave-shaped-trench. The sine-wave-shaped-trench is obtained by changing the trailing edge of the transverse trench into sine-wave shape; the holes are located next to the peaks of the wave. The sine-wave-shaped-trench is expected to get a wider spread of the cooling jet in the spanwise direction. The film-cooling effectiveness, heat-transfer coefficient, and discharge coefficient of the sine-wave-shaped-trench hole configurations with different trench depths (0.75D, ID) and wave peaks (ID, 2D) are measured by the transient thermal liquid measurement technique. The blowing ratio covers a range from 0.5 to 2.0. The transverse trench hole is investigated as a basis of the comparison. Thermal and hydrodynamic fields are investigated numerically using Reynolds-averaged Navier-Stokes (RANS) simulations with Realizable k-e turbulence model and enhanced wall treatment. Results show that broadening the wave peak of the sine-wave-shaped-trench improves the spanwise uniformity of the injection. There is a pair of anticounter-rotating vortices formed downstream of the sine-wave-trailing-edge. Increasing the trench depth shows positive effects on the heat-transfer coefficients ratio of the sine-wave-shaped-trench. The discharge coefficients of the sine-wave-shaped-trenches are higher than that of the transverse trench which means the sine-wave shape trench has a lower flow resistance.
机译:已经进行了实验研究以研究嵌入在正弦波形沟槽中的圆柱形孔的薄膜冷却性能。通过将横向沟槽的后缘改变为正弦波形状来获得正弦波形沟槽;孔位于波的峰旁边。期望正弦波形沟槽在沿翼展方向上较宽地扩散冷却射流。通过瞬态热液体测量具有不同沟槽深度(0.75D,ID)和波峰(ID,2D)的正弦波形沟槽配置的薄膜冷却效果,传热系数和放电系数测量技术。吹出比率占0.5至2.0的范围。横沟孔作为比较的基础进行研究。使用可实现的K-E湍流模型和增强的墙壁处理数值使用Reynolds平均的Navier-Stokes(RANS)模拟来计算热量和流体动力学场。结果表明,扩大正弦波形沟槽的波峰改善了喷射的枝条均匀性。在正弦波后边缘下游形成一对逆时针旋转涡旋。增加沟槽深度显示了对正弦波形沟槽的传热系数比的积极影响。正弦波形沟槽的放电系数高于横向沟槽的放电系数,这意味着正弦波形沟槽具有较低的流动性。

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