Design, Flow Field and Heat Transfer Characterization of the Conjugate Aero-Thermal Test Facility at NETL

S. Ramesh, E. Robey, S. Lawson, D. Straub, James B. Black
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Abstract

A new aerothermal test facility was constructed for the purpose of studying film cooling performance in an environment that accurately simulates conjugate heat transfer characteristics that exist in engine operation. This paper details the design of the facility and the plan for conducting steady-state film cooling experiments to improve the understanding of conjugate heat transfer scaling from laboratory to engine conditions. The test facility consists of two separate flow channels (hot gas/coolant) and each gas path has a flow conditioning section, a convergent nozzle and a test section/channel with viewports. Numerical simulations were conducted to predict flow field characteristics supporting the design of the flow loop facility. Preliminary experiments were conducted to characterize the flow field using velocity and temperature profile measurements. In addition, infrared (IR) thermography methods were developed to measure surface temperatures on the hot side of the test plate. The IR measurement methods including calibration of the IR camera is explained in detail. It was concluded that appropriate hot gas path flow conditioning could be achieved using a strainer-like tube, a perforated plate, and a honeycomb-mesh screen system upstream of the test section. Flow field measurements from preliminary experiments showed that the boundary layer profile follows the law of the wall.
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NETL气动热耦合试验台设计、流场及传热特性研究
为了准确模拟发动机运行中存在的共轭传热特性,研究气膜冷却性能,建立了一套新的气动热试验装置。本文详细介绍了设备的设计和进行稳态膜冷却实验的计划,以提高对从实验室到发动机条件的共轭传热尺度的理解。测试设备由两个独立的流动通道(热气体/冷却剂)组成,每个气体通道都有一个流动调节部分,一个收敛喷嘴和一个带有视口的测试部分/通道。通过数值模拟来预测流场特性,为流环设施的设计提供支持。初步实验利用速度和温度剖面测量来表征流场。此外,开发了红外热成像方法来测量测试板热侧的表面温度。详细介绍了红外测量方法,包括红外相机的标定。结果表明,在试验段上游采用类似过滤器的管、穿孔板和蜂窝网筛系统可以实现适当的热气路流动调节。初步实验的流场测量结果表明,边界层廓形遵循壁面规律。
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