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Experimental Investigation of Transition to Turbulence as Affected by Passing WakesExperimental results from a study of the effects of passing wakes upon laminar-to-turbulent transition in a low-pressure turbine passage are presented. The test section geometry is designed to simulate the effects of unsteady wakes resulting from rotor-stator interaction upon laminar-to-turbulent transition in turbine blade boundary layers and separated flow regions over suction surfaces. Single-wire, thermal anemometry techniques were used to measure time- resolved and phase-averaged, wall-normal profiles of velocity, turbulence intensity, and intermittency at multiple streamwise locations over the turbine airfoil suction surface. These data are compared to steady state, wake-free data collected in the same geometry to identify the effects of wakes upon laminar-to-turbulent transition. Results are presented for flows with a Reynolds number based on suction surface length and exit velocity of 50,000 and an approach flow turbulence intensity of 2.5 percent. From these data, the effects of passing wakes and associated increased turbulence levels and varying pressure gradients on transition and separation in the near-wall flow are presented. The results show that the wakes affect transition both by virtue of their difference in turbulence level from that of the free-stream but also by virtue of their velocity deficit relative to the freestream velocity, and the concomitant change in angle of attack and temporal pressure gradients. The results of this study seem to support the theory that bypass transition is a response of the near-wall viscous layer to pressure fluctuations imposed upon it from the free-stream flow. The data also show a significant lag between when the wake is present over the surface and when transition begins. The accompanying CD-ROM includes tabulated data, animations, higher resolution plots, and an electronic copy of this report.
Document ID
20120002830
Acquisition Source
Glenn Research Center
Document Type
Contractor Report (CR)
Authors
Kaszeta, Richard W.
(Minnesota Univ. Minneapolis, MN, United States)
Simon, Terrence W.
(Minnesota Univ. Minneapolis, MN, United States)
Date Acquired
August 25, 2013
Publication Date
December 1, 2002
Subject Category
Fluid Mechanics And Thermodynamics
Report/Patent Number
E-12858
NASA/CR-2002-212104/SUPPL
Funding Number(s)
PROJECT: RTOP 719-10-03
PROJECT: RTOP 708-28-07
CONTRACT_GRANT: NCC3-652
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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