Experimental and Numerical Study of Chord-Wise Eight-Passage Serpentine Cooling Design for Eliminating the Coriolis Force Adverse Effect on Heat Transfer

Author:

Singh Prashant1,Sarja Ajay2,Ekkad Srinath V.3

Affiliation:

1. Department of Mechanical Engineering, Mississippi State University, 479-1 Hardy Road, 210 Carpenter, P.O. Box 9552, Mississippi State, MS 39762

2. Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC 27695

3. RJ Reynolds Professor Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC 27695

Abstract

Abstract Gas turbine blades are equipped with internal cooling channels which are connected by 180 deg bends. Due to combined effects of Coriolis force and centrifugal buoyancy force, the heat transfer increases on the trailing side (pressure side) and decreases on the leading side (suction side) for radially outward flow. The trend in heat transfer is opposite for radially inward flow. This configuration leads to nonuniform blade temperature which in unfavorable for blade lifespan. This paper presents a novel eight-passage serpentine design, where passages are arranged along the chord of the blade, to rectify the negative effects of Coriolis force on heat transfer and is an extension four- and six-passage smooth channel studies conducted by the authors earlier. Transient liquid crystal thermography (TLCT) is carried out for detailed measurement of heat transfer coefficients. Heat transfer experiments were performed for Reynolds numbers between 14,264 and 83,616 under stationary conditions. For experiments under rotation, non-dimensional Rotation number is set as 0.05. Heat transfer enhancement levels of nearly twice the Dittus–Boelter correlation (for developed flow in smooth tubes) are obtained under stationary conditions. Under rotation, it is seen that the heat transfer enhancement levels on the leading and trailing sides are similar to each other and also with the stationary condition. Some differences in heat transfer are observed on local level, when rotation cases are compared against the stationary cases. Numerically predicted flow field is presented to support the experimental findings.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

Reference23 articles.

1. Fundamental Gas Turbine Heat Transfer;Han;ASME J. Therm. Sci. Eng. Appl.,2013

2. Recent Developments in Turbine Blade Internal Cooling;Han;Ann. N. Y. Acad. Sci.,2001

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4. Heat Transfer Predictions for Rotating U-Shaped Coolant Channels With Skewed Ribs and With Smooth Walls,” Proceedings of the ASME 1997 International Gas Turbine and Aeroengine Congress and Exhibition. Volume 3: Heat Transfer; Electric Power; Industrial and Cogeneration;Bonhoff

5. Heat Transfer in Rotating Serpentine Passages With Trips Normal to the Flow,” Proceedings of the ASME 1991 International Gas Turbine and Aeroengine Congress and Exposition. Volume 4: Heat Transfer; Electric Power; Industrial and Cogeneration;Wagner

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