This paper reports on insights into the detailed thermodynamics of axial turbine nozzle guide vane (NGV) wakes as they interact with the rotor blades. The evidence presented is both computational and experimental. Unsteady Reynolds-averaged Navier–Stokes (RANS) simulations are used to compare the experimental observations with theoretical predictions. Output processing with both Eulerian and Lagrangian approaches is used to track the property variation of the fluid particles. The wake is found to be hot and loses heat to the surrounding fluid. The Lagrangian output processing shows that the entropy of the wake will fall due to heat loss as it passes through the rotor and this is corroborated experimentally. The experimental vehicle is a 1.5-stage shroudless turbine with modest Mach numbers of 0.5 and high response instrumentation. The entropy reduction of the wake is determined to be about four times the average entropy rise of the whole flow across the rotor. The results show that the work done by the wake fluid on the rotor is approximately 24% lower than that of the free-stream. The apparent experimental efficiency of the wake fluid is 114% but the overall efficiency of the turbine at midheight is around 95%. It is concluded that intrafluid heat transfer has a strong impact on the loss distribution even in a nominally adiabatic turbine with moderate row exit Mach numbers of 0.5.
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Research-Article
The Thermodynamics of Wake Blade Interaction in Axial Flow Turbines: Combined Experimental and Computational Study
Martin Rose,
Martin Rose
Institut für Luftfahrtantriebe Stuttgart
e-mail: rose@ila.uni-stuttgart.de
University Stuttgart
, Germany
e-mail: rose@ila.uni-stuttgart.de
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Michel Mansour
Michel Mansour
Laboratory for Energy Conversion,
ETH Zürich,
ETH Zürich,
Switzerland
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Martin Rose
Institut für Luftfahrtantriebe Stuttgart
e-mail: rose@ila.uni-stuttgart.de
University Stuttgart
, Germany
e-mail: rose@ila.uni-stuttgart.de
Michel Mansour
Laboratory for Energy Conversion,
ETH Zürich,
ETH Zürich,
Switzerland
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received June 23, 2012; final manuscript received June 29, 2012; published online March 25, 2013. Editor: David Wisler.
J. Turbomach. May 2013, 135(3): 031015 (10 pages)
Published Online: March 25, 2013
Article history
Received:
June 23, 2012
Revision Received:
June 29, 2012
Citation
Rose, M., Schüpbach, P., and Mansour, M. (March 25, 2013). "The Thermodynamics of Wake Blade Interaction in Axial Flow Turbines: Combined Experimental and Computational Study." ASME. J. Turbomach. May 2013; 135(3): 031015. https://doi.org/10.1115/1.4007480
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