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Measurements in a Transitional Boundary Layer Under Low-Pressure Turbine Airfoil ConditionsThis report presents the results of an experimental study of transition from laminar to turbulent flow in boundary layers or in shear layers over separation zones on a convex-curved surface which simulates the suction surface of a low-pressure turbine airfoil. Flows with various free-stream turbulence intensity (FSTI) values (0.5%, 2.5% and 10%), and various Reynolds numbers (50,000, 100,000 200,000 and 300,000) are investigated. Reynold numbers in the present study are based on suction surface length and passage exit mean velocity. Flow separation followed by transition within the separated flow region is observed for the lower-Re cases at each of the FSTI levels. At the highest Reynolds numbers and at elevated FSn, transition of the attached boundary layer begins before separation, and the separation zone is small. Transition proceeds in the shear layer over the separation bubble. For both the transitional boundary layer and the transitional shear layer, mean velocity, turbulence intensity and intermittency (the fraction of the time the flow is turbulent) distributions are presented. The present data are compared to published distribution models for bypass transition, intermittency distribution through transition, transition start position, and transition length. A model developed for transition of separated flows is shown to adequately predict the location of the beginning of transition, for these cases, and a model developed for transitional boundary layer flows seems to adequately predict the path of intermittency through transition when the transition start and end are known. These results are useful for the design of low-pressure turbine stages which are known to operate under conditions replicated by these tests.
Document ID
20000056092
Acquisition Source
Glenn Research Center
Document Type
Contractor Report (CR)
Authors
Simon, Terrence W.
(Minnesota Univ. Minneapolis, MN United States)
Qiu, Songgang
(Minnesota Univ. Minneapolis, MN United States)
Yuan, Kebiao
(Minnesota Univ. Minneapolis, MN United States)
Ashpis, David
Simon, Fred
Date Acquired
September 7, 2013
Publication Date
March 1, 2000
Subject Category
Aerodynamics
Report/Patent Number
NASA/CR-2000-209957
E-12215
NAS 1.26:209957
Report Number: NASA/CR-2000-209957
Report Number: E-12215
Report Number: NAS 1.26:209957
Funding Number(s)
PROJECT: RTOP 522-31-23
CONTRACT_GRANT: NAG3-1249
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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