Development of a Two-Dimensional Computational Fluid Dynamics Approach for Computing Three-Dimensional Honeycomb Labyrinth Leakage

Author:

Choi Dong-Chun1,Rhode David L.1

Affiliation:

1. Mechanical Engineering Department, Texas A&M University, College Station, TX 77843

Abstract

A new approach for employing a two-dimensional computational fluid dynamics (CFD) model to approximately compute a three-dimensional flow field such as that in a honeycomb labyrinth seal was developed. The advantage of this approach is that it greatly reduces the computer resource requirement needed to obtain a solution of the leakage for the three-dimensional flow through a honeycomb labyrinth. After the leakage through the stepped labyrinth seal was measured, it was used in numerically determining the value of one dimension (DTF1) of the simplified geometry two-dimensional approximate CFD model. Then the capability of the two-dimensional model approach was demonstrated by using it to compute the three-dimensional flow that had been measured at different operating conditions, and in some cases different distance to contact values. It was found that very close agreement with measurements was obtained in all cases, except for that of intermediate clearance and distance to contact for two sets of upstream and downstream pressure. The two-dimensional approach developed here offers interesting benefits relative to conventional algebraic-equation models, particularly for evaluating labyrinth geometries/operating conditions that are different from that of the data employed in developing the algebraic model.

Publisher

ASME International

Subject

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

Reference21 articles.

1. Martin, H. M. , 1908, “Labyrinth Packings,” J. Engineering, 85, pp. 33–36.

2. Egli, A. , 1935, “The Leakage of Steam Through Labyrinth Seals,” Trans. ASME, 57, pp. 115–122.

3. Kearton, W. J., and Keh, T. H., 1952, “Leakage of Air Through Labyrinth Glands of the Staggered Type,” Proc. Inst. Mech. Eng., 166, pp. 180–188.

4. Stocker, H. L., 1978, “Determining and Improving Labyrinth Seal Performance in Current and Advanced High Performance Gas Turbines,” AGARD CP-237 Conference Proceedings, pp. 13/1–13/22.

5. Schramm, V., Willenborg, K., Kim, S., and Wittig, S., 2002, “Influence of a Honeycomb-Facing on the Flow Through a Stepped Labyrinth Seal,” ASME J. Eng. Gas Turbines Power, 124, pp. 140–146.

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1. Improving the sealing performance of honeycomb seal by drilling double wall-holes;International Communications in Heat and Mass Transfer;2024-06

2. Optimization of the Straight-Through Labyrinth Seal With a Smooth Land;Journal of Engineering for Gas Turbines and Power;2018-08-30

3. Effect of Rub-Grooves on Leakage and Windage Heating in Straight-Through Labyrinth Seals;Journal of Tribology;2015-10-15

4. Numerical Investigations on Leakage Performance of the Rotating Labyrinth Honeycomb Seal;Journal of Engineering for Gas Turbines and Power;2010-03-16

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