Parametric Optimization of Unsteady End Wall Blowing on a Highly Loaded Low-Pressure Turbine

Author:

Benton Stuart I.1,Bernardini Chiara2,Bons Jeffrey P.3,Sondergaard Rolf4

Affiliation:

1. Graduate Fellow e-mail:

2. Visiting Researcher e-mail:

3. Professor e-mail:  Department of Mechanical and Aerospace Engineering, The Ohio State University, 2300 West Case Road, Columbus, OH 43235

4. Aerospace Engineer Aerospace Systems Directorate, Air Force Research Laboratory, 1950 Fifth Street, Wright Patterson AFB, OH 45433 e-mail:

Abstract

Efforts to reduce blade count and avoid boundary layer separation have led to low-pressure turbine airfoils with significant increases in loading as well as front-loaded pressure distributions. These features have been independently shown to increase losses within the secondary flow field at the end wall. Compound angle blowing from discrete jets on the blade suction surface near the end wall has been shown to be effective in reducing these increased losses and enabling the efficient use of highly loaded blade designs. In this study, experiments are performed on the front loaded L2F low-pressure turbine airfoil in a linear cascade. The required mass flow is reduced by decreasing the hole count from previous configurations and from the introduction of unsteady blowing. The effects of pulsing frequency and duty cycle are investigated using phase-locked stereo particle image velocimetry to demonstrate the large scale movement and hysteresis behavior of the passage vortex interacting with the pulsed jets. Total pressure loss contours at the cascade outlet demonstrate that the efficiency benefit is maintained with the use of unsteady forcing.

Publisher

ASME International

Subject

Mechanical Engineering

Reference20 articles.

1. Toward the Expansion of Low-Pressure-Turbine Airfoil Design Space,2013

2. The Influence of Load Distribution on Secondary Flow in Straight Turbine Cascades;ASME J. Turbomach.,1995

3. Comparative Investigation of Three Highly Loaded LP Turbine Airfoils: Part I—Measured Profile and Secondary Losses at Design Incidence,2007

4. An Empirical Prediction Method for Secondary Losses in Turbines—Part II: A New Secondary Loss Correlation;ASME J. Turbomach.,2006

5. Reduction of Secondary Flow Losses in Turbine Cascades by Leading Edge Modifications at the Endwall;ASME J. Turbomach.

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