Localized corrosion phenomena, including pitting corrosion, stress corrosion cracking, and corrosion fatigue, are the principal causes of corrosion-induced damage in electric power-generating facilities and typically result in more than 50 percent of the unscheduled outages. In this paper, we describe a deterministic method for predicting localized corrosion damage in low-pressure steam turbine disks downstream of the Wilson line, where a condensed, thin electrolyte layer exists on the steel disk surfaces. Our calculations show that the initiation and propagation of stress corrosion cracking (SCC) is not very sensitive to the oxygen content of the steam, but is sensitive to the conductivity of the condensed liquid layer and the stresses (residual and operational) that the disk experiences in service.
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November 1997
Research Papers
Prediction of Failures of Low-Pressure Steam Turbine Disks
C. Liu,
C. Liu
Center for Advanced Materials, The Pennsylvania State University, 517 Deike Building, University Park, PA 16802
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D. D. Macdonald
D. D. Macdonald
Center for Advanced Materials, The Pennsylvania State University, 517 Deike Building, University Park, PA 16802
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C. Liu
Center for Advanced Materials, The Pennsylvania State University, 517 Deike Building, University Park, PA 16802
D. D. Macdonald
Center for Advanced Materials, The Pennsylvania State University, 517 Deike Building, University Park, PA 16802
J. Pressure Vessel Technol. Nov 1997, 119(4): 393-400 (8 pages)
Published Online: November 1, 1997
Article history
Received:
October 4, 1996
Revised:
January 22, 1997
Online:
February 11, 2008
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Liu, C., and Macdonald, D. D. (November 1, 1997). "Prediction of Failures of Low-Pressure Steam Turbine Disks." ASME. J. Pressure Vessel Technol. November 1997; 119(4): 393–400. https://doi.org/10.1115/1.2842321
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