Advances in materials technology for fossil power plants : by D Gandy; J Shingledecker; Ramaswamy Viswanathan; Electric

By D Gandy; J Shingledecker; Ramaswamy Viswanathan; Electric Power Research Institute.; et al

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Extra resources for Advances in materials technology for fossil power plants : proceedings from the sixth International Conference, August 31-September 3, 2010, Santa Fe, New Mexico, USA

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Morioka, S. Hata, K. Ikeda and H. Nakashima, “Analysis of Creep Degradation Behavior in Lath Martensite based on Crystallographic Orientation Changes”, Report of the 123rd Committee on Heat Resisting Metals and Alloys, Japan Society for Promotion of Science, 50 (2009), 37-43. 15. Y. Shirai, “Positron Annihilation Method: Thermal and Non-Thermal Defects in Refractory Intermetallics”, High Temperature Materials and Processes, 12 (1998), 57-67. 16. Y. Shirai, “Development of New Positron Lifetime Spectroscopy for In-Situ Evaluation of Refractory Materials under High Temperature Creep”, Preprint of First Symposium for Project on Fundamental Studies on Technology for Enhanced Strength and Functions, (2009), 67-68.

Masuyama, T. Tokunaga, N. Shimohata, T. Yamamoto and M. Hirano, “Comprehensive Approach to Creep Life Assessment of Martensitic Heat Resistant Steels”, Proc. ECCC Creep Conference, (2009), 31-42. 20. F. Masuyama, “Hardness Model for Creep Life Assessment of High Strength Martensitic Steels”, Materials Science and Engineering A, 510-511 (2009), 154-157. 29 Advances in Materials Technology for Fossil Power Plants Proceedings from the Sixth International Conference August 31–September 3, 2010, Santa Fe, New Mexico, USA 05319G Copyright © 2011 Electric Power Research Institute Distributed by ASM International®.

Note that this borondoped steel is still undergoing testing (at over 14,000h). Fig. 10 provides a comparison at 700°C between the steels with and without boron on the one hand, and TP347H and Inconel 740 on the other, in terms of the stress - time to rupture curve. From this it can be seen that the developed steel is likely to achieve 100,000h creep strength of 100MPa at the target temperature of 700°C. Fig. 9 Creep rate - time curves for developed 18Cr-30Ni-3Nb austenitic steel with and without boron.

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