The effects of hole length-to-diameter ratio and compound angle on flat plate film cooling effectiveness are investigated from an experimental and numerical view. Film cooling effectiveness measurements are performed for seven blowing ratios (M) ranging from 0.3 to 2, five-hole length-to-diameter ratios (L/D) from 0.5 to 5, and two compound angles (β: 0 deg and 45 deg) using pressure-sensitive paint (PSP) technique. Results indicate that discrete holes with L = 0.5 and 1 show highest film cooling effectiveness regardless of compound angle. Round hole generally shows an increasing trend as L increases from 2 to 5, while compound angle hole shows a complex trend concerning with blowing ratios (BRs) and length-to-diameter ratios. Compound angle enhances film cooling effectiveness with high blowing ratios and length-to-diameter ratios. In a parallel effort, large eddy simulation (LES) approach is employed to solve the flow field and visualize vortex structures of intube and mainstream regions. It is demonstrated that the counter-rotating vortex pair (CRVP) which is observed in the time-averaged flow field is originated in different vortex structures with varying blowing ratios and length-to-diameter ratios. Scalar field transportation features are also investigated to clarify how different vortex structures affect the temperature distribution and the film cooling effectiveness.
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December 2017
This article was originally published in
Journal of Heat Transfer
Research-Article
On the Flow Structures and Adiabatic Film Effectiveness for Simple and Compound Angle Hole With Varied Length-to-Diameter Ratio by Large Eddy Simulation and Pressure-Sensitive Paint Techniques
Weihong Li,
Weihong Li
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: Liwh13@mails.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: Liwh13@mails.tsinghua.edu.cn
Search for other works by this author on:
Wei Shi,
Wei Shi
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: shiwei15@mails.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: shiwei15@mails.tsinghua.edu.cn
Search for other works by this author on:
Xueying Li,
Xueying Li
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: lixueying@mail.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: lixueying@mail.tsinghua.edu.cn
Search for other works by this author on:
Jing Ren,
Jing Ren
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: renj@tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: renj@tsinghua.edu.cn
Search for other works by this author on:
Hongde Jiang
Hongde Jiang
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
Search for other works by this author on:
Weihong Li
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: Liwh13@mails.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: Liwh13@mails.tsinghua.edu.cn
Wei Shi
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: shiwei15@mails.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: shiwei15@mails.tsinghua.edu.cn
Xueying Li
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: lixueying@mail.tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: lixueying@mail.tsinghua.edu.cn
Jing Ren
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: renj@tsinghua.edu.cn
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
e-mail: renj@tsinghua.edu.cn
Hongde Jiang
Gas Turbine Institute,
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
Department of Thermal Engineering,
Tsinghua University,
Beijing 100084, China
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received October 12, 2016; final manuscript received May 24, 2017; published online August 9, 2017. Assoc. Editor: Danesh K. Tafti.
J. Heat Transfer. Dec 2017, 139(12): 122201 (13 pages)
Published Online: August 9, 2017
Article history
Received:
October 12, 2016
Revised:
May 24, 2017
Citation
Li, W., Shi, W., Li, X., Ren, J., and Jiang, H. (August 9, 2017). "On the Flow Structures and Adiabatic Film Effectiveness for Simple and Compound Angle Hole With Varied Length-to-Diameter Ratio by Large Eddy Simulation and Pressure-Sensitive Paint Techniques." ASME. J. Heat Transfer. December 2017; 139(12): 122201. https://doi.org/10.1115/1.4037085
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