Numerical Investigation of Pressure Loss in a Rectangular Channel with a Sharp 180-Degree Turn: Influence of Design Variables and Geometric Shapes

Author:

Kim Byunghui1ORCID,Kim Seokho2ORCID

Affiliation:

1. Regional Leading Research Center, Changwon National University, Changwon 51140, Republic of Korea

2. Department of Mechanical Engineering, Changwon National University, Changwon 51140, Republic of Korea

Abstract

Gas turbine blade cooling typically uses a cooling air passage with a sharp 180° turn in the midchord area of the airfoil. Its geometric shape and dimensions are strictly constrained within the airfoil to ensure both aerodynamic and cooling performance. These characteristics imply the importance of understanding the relationships between the geometric dimensions and the cooling channel performance. In this study, we validated a numerical method using the commercial software, Ansys Fluent 2021 R2, by predicting a total pressure loss coefficient with less than 6% deviation from the experimental results of Metzger et al. for four different Reynolds numbers. Through parameter studies, the divider tip-to-wall clearance was found to be the most significant parameter influencing the pressure loss. Parameter correlations and predictive models between the design variables and the pressure loss were derived by regression analysis using the R language; the regression model predicted the pressure loss to within 2.29% of the numerical method. As the geometries changed, the response surface and the adjoint solver improved the pressure loss by approximately 20.87% and 25.96%, respectively, at the representative Reynolds number of 24,230; this showed that the adjoint solver was a relatively simple and effective method with minimal geometric changes.

Funder

National Research Foundation of Korea

Basic Science Research Program

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference35 articles.

1. Han, J.C., Dutta, S., and Ekkad, S. (2013). Gas Turbine Heat Transfer and Cooling Technology, CRC Press. [2nd ed.].

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3. Heat transfer around sharp 180-deg turns in smooth rectangular channels;Metzger;J. Heat Transf.,1986

4. Fan, C.S., and Metzger, D.E. (June, January 31). Effects of Channel Aspect Ratio on Heat Transfer in Rectangular Passage Sharp 180-Deg Turns. Proceedings of the 32nd International Gas Turbine Conference and Exhibition, Anaheim, CA, USA.

5. Local heat (mass) transfer characteristics in rectangular ducts with a sharp 180-degree turn;Hirota;Energy Convers. Manag.,1997

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