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Heat transfer in rotating serpentine passages with trips normal to the flowExperiments were conducted to determine the effects of buoyancy and Coriolis forces on heat transfer in turbine blade internal coolant passages. The experiments were conducted with a large scale, multipass, heat transfer model with both radially inward and outward flow. Trip strips on the leading and trailing surfaces of the radial coolant passages were used to produce the rough walls. An analysis of the governing flow equations showed that four parameters influence the heat transfer in rotating passages: coolant-to-wall temperature ratio, Rossby number, Reynolds number, and radius-to-passage hydraulic diameter ratio. The first three of these four parameters were varied over ranges which are typical of advanced gas turbine engine operating conditions. Results were correlated and compared to previous results from stationary and rotating similar models with trip strips. The heat transfer coefficients on surfaces, where the heat increased with rotation and buoyancy, varied by as much as a factor of four. Maximum values of the heat transfer coefficients with high rotation were only slightly above the highest levels obtained with the smooth wall model. The heat transfer coefficients on surfaces, where the heat transfer decreased with rotation, varied by as much as a factor of three due to rotation and buoyancy. It was concluded that both Coriolis and buoyancy effects must be considered in turbine blade cooling designs with trip strips and that the effects of rotation were markedly different depending upon the flow direction.
Document ID
19920033039
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Wagner, J. H.
(United Technologies Research Center East Hartford, CT, United States)
Johnson, B. V.
(United Technologies Research Center East Hartford, CT, United States)
Graziani, R. A.
(Pratt and Whitney Group East Hartford, CT, United States)
Yeh, F. C.
(NASA Lewis Research Center Cleveland, OH, United States)
Date Acquired
August 15, 2013
Publication Date
June 1, 1991
Subject Category
Fluid Mechanics And Heat Transfer
Report/Patent Number
ASME PAPER 91-GT-265
Accession Number
92A15663
Funding Number(s)
CONTRACT_GRANT: NAS3-23691
Distribution Limits
Public
Copyright
Other

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