The Measurement of Full-Surface Internal Heat Transfer Coefficients for Turbine Airfoils Using a Nondestructive Thermal Inertia Technique

Author:

Nirmalan Nirm V.1,Bunker Ronald S.1,Hedlund Carl R.1

Affiliation:

1. Global Research Center, General Electric Company, Niskayuna, NY 12309

Abstract

A new method has been developed and demonstrated for the non-destructive, quantitative assessment of internal heat transfer coefficient distributions of cooled metallic turbine airfoils. The technique employs the acquisition of full-surface external surface temperature data in response to a thermal transient induced by internal heating/cooling, in conjunction with knowledge of the part wall thickness and geometry, material properties, and internal fluid temperatures. An imaging Infrared camera system is used to record the complete time history of the external surface temperature response during a transient initiated by the introduction of a convecting fluid through the cooling circuit of the part. The transient data obtained is combined with the cooling fluid network model to provide the boundary conditions for a finite element model representing the complete part geometry. A simple 1-D lumped thermal capacitance model for each local wall position is used to provide a first estimate of the internal surface heat transfer coefficient distribution. A 3-D inverse transient conduction model of the part is then executed with updated internal heat transfer coefficients until convergence is reached with the experimentally measured external wall temperatures as a function of time. This new technique makes possible the accurate quantification of full-surface internal heat transfer coefficient distributions for prototype and production metallic airfoils in a totally nondestructive and non-intrusive manner. The technique is equally applicable to other material types and other cooled/heated components.

Publisher

ASME International

Subject

Mechanical Engineering

Reference7 articles.

1. Bantel, T. E, and Mack, D. C., 1987, “Cooling Hole Inspection,” US Patent No. 4,644,162, assigned to General Electric Co.

2. Bantel, T. E., 1992, “Apparatus and Method for Inspecting Cooling Holes,” US Patent No. 5,111,046, assigned to General Electric Co.

3. Daniels, A., 1996, “Nondestructive Pulsed Infrared Quantitative Evaluation of Metals,” Thermosense XVIII: An International Conference on Thermal Sensing and Imaging Diagnostic Applications, Society of Photo-Optical Instrumentation Engineers, SPIE Vol. 2766, pp. 185–201.

4. Beckeiz, E., Sperling, A., and Carl, V., 1998, “Thermography Inspection System for Gas Turbine Blades,” 7th ECNDT, Copenhagen, Denmark.

5. Stiglich, J. J., Bishop, C. C., Daleo, J. A., Boone, D. H., and Eelkema, T. E., 1998, “The Thermal Inertia Analysis Technique in Gas Turbine Component Reliability Assessment,” presented at the ASM Gas Turbine Materials Technology Conference, Rosemont IL.

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