Turbine Blade Surface Deterioration by Erosion

Author:

Hamed Awatef A.1,Tabakoff Widen1,Rivir Richard B.2,Das Kaushik1,Arora Puneet1

Affiliation:

1. Department of Aerospace Engineering and Engineering Mechanics, University of Cincinnati, Cincinnati, OH 45220

2. Aeropropulsion and Power Directorate, Air Force Research Laboratory, Wright Laboratories Building 18, Wright Patterson AFB, OH 45433

Abstract

This paper presents the results of a combined experimental and computational research program to investigate turbine vane and blade material surface deterioration caused by solid particle impacts. Tests are conducted in the erosion wind tunnel for coated and uncoated blade materials at various impact conditions. Surface roughness measurements obtained prior and subsequent to the erosion tests are used to characterize the change in roughness caused by erosion. Numerical simulations for the three-dimensional flow field and particle trajectories through a low-pressure gas turbine are employed to determine the particle impact conditions with stator vanes and rotor blades using experimentally based particle restitution models. Experimental results are presented for the measured blade material/coating erosion and surface roughness. The measurements indicate that both erosion and surface roughness increase with impact angle and particle size. Computational results are presented for the particle trajectories through the first stage of a low-pressure turbine of a high bypass turbofan engine. The trajectories indicate that the particles impact the vane pressure surface and the aft part of the suction surface. The impacts reduce the particle momentum through the stator but increase it through the rotor. Vane and blade surface erosion patterns are predicted based on the computed trajectories and the experimentally measured blade coating erosion characteristics.

Publisher

ASME International

Subject

Mechanical Engineering

Reference25 articles.

1. Experimental and Numerical Simulation of Ingested Particles in Gas Turbine Engines;Hamed

2. High-Temperature Erosion Resistance Coatings for Use in Turbomachinery;Tabakoff;Wear

3. Protection of Coated Superalloys From Erosion in Turbomachinery and Other Systems Exposed to Particulate Flows;Tabakoff;Wear

4. Tabakoff, W., Hamed, A., and Wenglarz, R., 1988, “Particulate Flows, Turbomachinery Erosion and Performance Deterioration,” Von Karman Lecture Series 1988–1989, May 24–27, Brussels, Belgium.

5. Balan, C., and Tabakoff, W., 1984, “Axial Flow Compressor Performance Deterioration,” AIAA 84-2108.

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