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Condensation phenomena in a turbine blade passage

Published online by Cambridge University Press:  26 April 2006

S. A. Skillings
Affiliation:
CERL, Kelvin Avenue, Leatherhead, Surrey KT22 7SE, UK

Abstract

The mechanisms associated with the formation and growth of water droplets in the large low-pressure turbines used for electrical power generation are poorly understood and recent measurements have indicated that an unusually high loss is associated with the initial nucleation of these droplets. In order to gain an insight into the phenomena which arise in the turbine situation, some experiments were performed to investigate the behaviour of condensing steam flows in a blade passage. This study has revealed the fundamental significance of droplet nucleation in modifying the single-phase flow structure and results are presented which show the change in shock wave pattern when inlet superheat and outlet Mach number are varied. The trailing-edge shock wave structure appears considerably more robust towards variations of inlet superheat than purely one-dimensional considerations may suggest and the inadequacies of adopting a one-dimensional theory to analyse multi-dimensional condensing flows are demonstrated. Over a certain range of outlet Mach numbers an oscillating shock wave will establish in the throat region of the blade passage and this has been shown to interact strongly with droplet nucleation, resulting in a considerably increased mean droplet size. The possible implications of these results for turbine performance are also discussed.

Type
Research Article
Copyright
© 1989 Cambridge University Press

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References

Araki, T., Okamoto, Y. & Ohtomo, F., 1980 Self-excited flow oscillation in the low pressure steam turbine cascade. Proc. 2nd Intl Symp. on Aeroelasticity in Turbomachines, Lausanne (ed. P. Suter). Zurich: Juris-Verlag.
Bakhtar, F. & Heaton, A. V., 1981 A theoretical comparative study of wetness problems in a model and full scale turbine. Aerothermodynamics in Steam Turbines, Winter Annual Meeting, ASME, Washington DC.Google Scholar
Bakhtar, F. & Tochai, M. T. Mohammadi 1980 An investigation of two-dimensional flows of nucleating and wet steam by the time-marching method. Intl J. Heat Fluid Flow 2, 519.Google Scholar
Bakhtar, F. & Young, J. B., 1976 A comparison between theoretical calculations and experimental measurements of droplet sizes in nucleating steam flows. Prace Inst. Maszyn Prezeplywowych 70–72, 259.Google Scholar
Bakhtar, F., Young, J. B. & Ghoniem, Z., 1976 A study of nucleating and wet steam flows in turbines. Heat Fluid Flow 6, 119133.Google Scholar
Barschdorff, D.: 1970 Droplet formation, influence of shock waves and instationary flow patterns by condensation phenomena at supersonic speeds. Brd. Intl Conf. of Rain Erosion and Associated Phenomena, Farnborough.Google Scholar
Deich, M. E.: 1984 Wet steam turbines: some problems in economy and reliability. Power Engng 22, 5369.Google Scholar
Deich, M. E., Kurshakov, A. V., Tishchenko, A. A., Leonov, V. M. & Emets, O. Z., 1987 Condensation instability in supersonic turbine cascades. Thermal Engng 34, 600604.Google Scholar
Deich, M. E., Laukhin, Yu. A. & Saltanov, G. A., 1975 Investigation of unsteady wave structure in turbine nozzle blade cascades. Thermal Engng 22, 3032.Google Scholar
Dibelius, G. H., Mertens, K., Pitt, R. U. & Strauf, E., 1987 Investigation of wet steam flow in turbines. Inst. Mech. Engrs, Intl Conf. on Turbomachinery, Cambridge, Paper C271/87.Google Scholar
Frenkl, J.: 1955 Kinetic Theory of Liquids. Dover.
Gostelow, J. P.: 1984 Cascade Aerodynamics. Pergamon.
Gyarmathy, G.: 1962 Basis for a theory for wet steam turbines. Bull. 6. Inst. for Thermal Turbomachines, Federal Technical University, Zurich.
Ikeda, T. & Suzuki, A., 1973 Some findings on the flow behaviour of last-stage turbine buckets by linear cascade tests in steam. Inst. Mech. Engrs Conf. on Wet Steam 4, Warwick, Paper C26/73.Google Scholar
Jackson, R. & Walters, P. T., 1979 Design considerations for the CERL wet steam tip section cascade and first test results. Proc. 5th Symp. on Measuring Techniques for Transonic and Supersonic Flow in Cascades and Turbomachines, Leatherhead. CEGB Rep. RD/L/N 166/79.Google Scholar
Jaikrishnan, K. R.: 1979 Transonic steam turbine cascade measurements. Proc. 5th Symp. on Measuring Techniques for Transonic and Supersonic Flow in Cascades and Turbomachines, Leatherhead. CEGB Rep. RD/L/N 166/79.Google Scholar
Moheban, M. & Young, J. B., 1984 A time-marching method for the calculation of blade-to-blade non-equilibrium wet-steam flows in turbine cascades. Inst. Mech. Engrs Conf. on Computational Methods for Turbomachinery, Birmingham, Paper C76/84.Google Scholar
Moore, M. J.: 1976 Gas dynamics of wet steam and energy losses in wet-steam turbines. In Two-Phase Steam Flow in Turbines and Separators (ed. M. J. Moore & C. H. Sieverding), chap. 2. Hemisphere.
Moore, M. J., Walters, P. T., Crane, R. I. & Davidson, B. J., 1973 Predicting the fog drop size in wet-steam turbines. Inst. Mech. Engrs Conf. on Wet Steam 4, Warwick, Paper C37/73.Google Scholar
Povarov, O. A., Rabenko, V. S. & Semenov, V. N., 1984 Influence of impurities in steam on formation of liquid phase in turbines. Thermal Engng 31, 318321.Google Scholar
Simanovskii, G. P.: 1982 A numerical investigation into nonhomogeneous mixed flows with nonequilibrium phase transformations in nozzles and cascades of turbine blades. Dissertation for the Degree of Candidate of Technical Sciences, (In Russian), MEI, Moscow.
Skillings, S. A.: 1987 An analysis of the condensation phenomena occurring in wet steam turbines. PhD thesis, CNAA, CERL.
Skillings, S. A. & Jackson, R., 1987 A robust time-marching solver for one-dimensional nucleating steam flows. Intl J. of Heat Fluid Flow 8, 139144.Google Scholar
Skillings, S. A., Walters, P. T. & Jackson, R., 1989 A theoretical analysis of flow through the nucleating stage in a low pressure steam turbine. Trans. ASME A: J. Engng for Gas Turbines & Power.Google Scholar
Skillings, S. A., Walters, P. T. & Moore, M. J., 1987 A study of supercritical heat addition as a potential loss mechanism in condensing steam turbines. Inst. Mech. Engrs, Intl Conf. on Turbomachinery, Cambridge, Paper C259/87.Google Scholar
Snoeck, J.: 1987 Calculation of wet steam stages. In Aerothermodynamics of LP Turbines and Condensers (ed. M. J. Moore & C. H. Sieverding), chap. 4. Hemisphere.
Martinengo, A. Trucco, Benvenuto, G. & Campor'a, U. 1985 Observation of condensation shock in a high deviation blade cascade by means of the schlieren technique. Proc. 8th Symp. on Measuring Techniques for Transonic and Supersonic Flow in Cascades and Turbomachines, Genoa, Italy. Università Degli Studi di Geneva, Dipartimento di Ingegnenia Energetica.
Walters, P. T.: 1973 Optical measurement of water droplets in wet steam flows. Inst. Mech. Engrs Conf., Wet Steam 4, Warwick, Paper C32/73.Google Scholar
Walters, P. T.: 1985 Wetness and efficiency measurements in LP turbines with an optical probe as an aid to improving performance. ASME 85-JPGC-GT-9.Google Scholar
Whirlow, D. K., McCloskey, T. J., Davids, J., Chen, S., Kadambi, J. R. & Farn, C. L. S. 1984 Flow instability in low pressure turbine blade passages. ASME 84-JPGC-GT-15.Google Scholar
Young, J. B.: 1982 The spontaneous condensation of steam in supersonic nozzles. Phys.-Chem. Hydrodyn. 3, 5782.Google Scholar