Numerical Simulation of Tip Leakage Flows in Axial Flow Turbines, With Emphasis on Flow Physics: Part I—Effect of Tip Clearance Height

Author:

Tallman J.1,Lakshminarayana B.1

Affiliation:

1. Center for Gas Turbine and Power, Pennsylvania State University, 153-J Hammond Bldg., University Park, PA 16802

Abstract

A pressure-correction based, 3D Navier-Stokes CFD code was used to simulate the effects of turbine parameters on the tip leakage flow and vortex in a linear turbine cascade to understand the detailed flow physics. A baseline case simulation of a cascade was first conducted in order to validate the numerical procedure with experimental measurements. The effects of realistic tip clearance spacing, inlet conditions, and relative endwall motion were then sequentially simulated, while maintaining previously modified parameters. With each additional simulation, a detailed comparison of the leakage flow’s direction, pressure gradient, and mass flow, as well as the leakage vortex and its roll-up, size, losses, location, and interaction with other flow features, was conducted. Part I of this two-part paper focuses on the effect of reduced tip clearance height on the leakage flow and vortex. Reduced tip clearance results in less mass flow through the gap, a smaller leakage vortex, and less aerothermal losses in both the gap and the vortex. The shearing of the leakage jet and passage flow to which leakage vortex roll-up is usually attributed to is not observed in any of the simulations. Alternative explanations of the leakage vortex’s roll-up are presented. Additional secondary flows that are seen near the casing are also discussed.

Publisher

ASME International

Subject

Mechanical Engineering

Reference12 articles.

1. Bindon, J. P., 1991, private communication.

2. Bindon, J. P., and Morphis, G., 1992, “The Development of Axial Turbine Leakage Loss for Two Profiled Tip Geometries Using Linear Cascade Data,” ASME J. Turbomach., 114, No. 1, Jan., pp. 198–203.

3. Sjolander, S. A., 1997, “Secondary and Tip-Clearance Flows in Axial Turbines: Physics of Tip-Clearance Flows—I,” von Karman Institute for Fluid Dynamics, Lecture Series 1997–01.

4. Lakshminarayana, B., 1996, Fluid Dynamics and Heat Transfer of Turbomachinery, John Wiley & Sons, Inc.

5. Wantanabe, T., Nozaki, O., Kikuchi, K., and Tamura, A., 1991, “Numerical Simulation of the Flow Through Cascades With Tip Clearance,” ASME FED-120, “Numerical Simulations in Turbomachinery.”

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