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An Experimental Study of Mist/Air Film Cooling On a Flat Plate with Application to Gas Turbine Airfoils- Part 2: Two-Phase Flow Measurements and Droplet Dynamics

机译:汽轮机翼型薄板上雾/空气薄膜冷却的实验研究 - 第2部分:两相流测量和液滴动力学

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A Phase Doppler Particle Analyzer (PDPA) system is employed to measure the two-phase mist flow behavior including flow velocity field, droplet size distribution, droplet dynamics, and turbulence characteristics. Based on the droplet measurements made through PDPA, a projected profile describing how the air-mist coolant jet flow spreads and eventually blends into the hot main flow is proposed. This proposed profile is found to be well supported by the measurement results of the turbulent Reynolds stresses. The coolant film envelope is identified with shear layers characterized by higher magnitudes of turbulent Reynolds stresses. In addition, the separation between the mist droplet layer and the coolant air film is identified through the droplet measurements - large droplets penetrate through the air coolant film layer and travel further into the main flow. With the proposed air-mist film profile, the heat transfer results on the wall presented in Part 1 are re-examined and more in-depth physics is revealed. It is found that the location of optimum cooling effectiveness is coincided with the point where the air-mist coolant stream starts to bend back towards the surface. Thus, the data suggests that the "bending back" film pattern is critical in keeping the mist droplets close to the surface, which improves the cooling effectiveness for mist cooling.
机译:采用相位多普勒粒子分析仪(PDPA)系统来测量包括流速场,液滴尺寸分布,液滴动力学和湍流特性的两相雾流动行为。基于通过PDPA进行的液滴测量,提出了一种预测的轮廓,描述了气雾冷却剂射流流动如何扩散并且最终将其混合到热主流中。发现这一提出的简介是通过湍流雷诺应力的测量结果得到很好的支持。用剪切层鉴定冷却剂膜包络,其特征在于湍流雷诺应力的较高幅度。另外,通过液滴测量局部识别出雾液滴层和冷却剂空气膜之间的分离 - 通过空气冷却剂薄膜层穿过空气冷却剂膜层并进一步进入主流的液滴。利用所提出的空气薄膜轮廓,重新检查第1部分中呈现的壁上的传热结果,并揭示了更多的深入物理。发现最佳冷却效果的位置与空气雾冷却剂流开始朝向表面弯曲的点一致。因此,数据表明,“弯曲背”膜图案对于将薄雾液滴保持靠近表面的薄雾液滴来说至关重要,这提高了雾气冷却的冷却效果。

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