The Manufacturing and Experimental Validation of a Nickel Superalloy Double-Wall, Effusion Test Specimen

Author:

Murray Alexander V.1,Ireland Peter T.1,Green Nick R.2,Wickins Michael2,Hood Richard2,Telisinghe Janendra3

Affiliation:

1. Department of Engineering Science, University of Oxford , Oxford OX1 3PJ, UK

2. High Temperature Research Centre (HTRC) Unit, University of Birmingham , 2 Airfield Drive, Ansty Business Park, Coventry CV7 9BF, UK

3. Turbine Systems, Rolls-Royce PLC , Bristol BS34 7QE, UK

Abstract

Abstract With the hot stage of a modern aeroengine operating with combustor firing temperatures well beyond the melting point of the nickel superalloys from which the turbine blades are manufactured, developments to the methods of cooling of these components are required to advance performance. Double-wall, effusion systems exhibit a quasi-transpiration like cooling effect with recent work demonstrating their exceptional cooling performance. Such systems are characterized by two walls, one with impingement holes and the other with film cooling holes, that are mechanically and thermally connected via pedestals. However, manufacturing such geometries from single-crystal nickel superalloys remains a significant barrier to entry into service. This paper presents a method of manufacturing double-wall effusion specimens from a nickel superalloy commonly used in modern commercial high-pressure turbine components. The method maintains the mechanical integrity associated with nickel superalloys. Details of the method are presented alongside X-ray and GOM laser scan data of a flat-plate test article that demonstrates the success of the manufacturing process. Aerothermal testing of the specimen in a bespoke recirculating wind-tunnel facility was undertaken in which the overall cooling effectiveness of the system is obtained. The results reaffirm the excellent cooling performance of double-wall, effusion systems and further validate the manufacturing methodology as a method by which to realize enhanced cooling effectiveness in service.

Funder

Engineering and Physical Sciences Research Council

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

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3. An Analytical Method for Evaluating Factors Affecting Application of Transpiration Cooling to Gas Turbine Blades,1952

4. Advances in Effusive Cooling Techniques of Gas Turbines;Appl. Therm. Eng.,2007

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