Studies on Wake-Affected Heat Transfer Around the Circular Leading Edge of Blunt Body

Author:

Funazaki K.1

Affiliation:

1. Department of Mechanical Engineering, Iwate University, Morioka, Iwate, Japan

Abstract

Detailed measurements are performed about time-averaged heat transfer distributions around the leading edge of a blunt body, which is affected by incoming periodic wakes from the upstream moving bars. The blunt body is a test model of a front portion of a turbine blade in gas turbines and consists of a semicircular cylindrical leading edge and a flat plate afterbody. A wide range of the steady and unsteady flow conditions are adopted as for the Reynolds number based on the diameter of the leading edge and the bar-passing Strouhal number. The measured heat transfer distributions indicate that the wakes passing over the leading edge cause a significant increase in heat transfer before the separation and the higher Strouhal number results in higher heat transfer. From this experiment, a correlation for the heat transfer enhancement around the leading edge due to the periodic wakes is deduced as a function of the Stanton number and it is reviewed by comparison with the other experimental works.

Publisher

ASME International

Subject

Mechanical Engineering

Reference14 articles.

1. Benedict, R. P., 1969, Fundamental of Temperature, Pressure, and Flow Measurements, Wiley, New York.

2. Dullenkopf K. , and MayleR. E., 1994, “The Effects of Incident Turbulence and Moving Wakes on Laminar Heat Transfer in Gas Turbines,” ASME JOURNAL OF TURBOMACHINERY, Vol. 116, pp. 23–28.

3. Dullenkopf K. , SchulzA., and WittigS., 1991, “The Effect of Incident Wake Conditions on the Mean Heat Transfer of an Airfoil,” ASME JOURNAL OF TURBOMACHINERY, Vol. 113, pp. 412–418.

4. Frossling, N., 1958, “Evaporation Heat Transfer and Velocity Distribution in Two-Dimensional and Rotationally-Symmetric Laminar Boundary Layer,” NACA TM-1432.

5. Funazaki K. , 1989, “Measuring Technique of Heat Transfer on Turbine Airfoils Using Boundary Element Method,” IHI Technical Report, Vol. 28, pp. 327–332.

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