A Theory for Fine Particle Deposition in Two-Dimensional Boundary Layer Flows and Application to Gas Turbines

Author:

Mengu¨turk M.1,Sverdrup E. F.2

Affiliation:

1. Department of Mechanical Engineering, Bog˘azic¸i University, Istanbul, Turkey

2. Westinghouse Research & Development Center, Pittsburgh, PA

Abstract

A theory is presented to predict deposition rates of fine particles in two-dimensional compressible boundary layer flows. The mathematical model developed accounts for diffusion due to both molecular and turbulent fluctuations in the boundary layer flow. Particle inertia is taken into account in establishing the condition on particle flux near the surface. Gravitational settling and thermophoresis are not considered. The model assumes that the fraction of particles sticking upon arrival at the surface is known, and thus, treats it as a given parameter. The theory is compared with a number of pipe and cascade experiments, and a reasonable agreement is obtained. A detailed application of the model to a turbine is also presented. Various regimes of particle transport are identified, and the range of validity of the model is discussed. An order of magnitude estimate is obtained for the time the turbine stage can be operated without requiring cleaning.

Publisher

ASME International

Subject

General Medicine

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1. Estimation of the Particle Deposition on a Subsonic Axial Compressor Blade;Journal of Engineering for Gas Turbines and Power;2016-08-30

2. Effect of Blowing Ratio on Early Stage Deposition of Syngas Ash on a Film-Cooled Vane Leading Edge Using Large Eddy Simulations;Journal of Turbomachinery;2013-09-13

3. Transport and Deposition of Particles in Turbulent and Laminar Flow;Annual Review of Fluid Mechanics;2008-01-01

4. Effects of Deposition Models on Deposition and Performance Deterioration in Axial Compressor Cascade;Chinese Journal of Aeronautics;2005-02

5. Performance analysis of industrial gas turbines for engine condition monitoring;Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy;2001-01-01

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