ICF13B

13th International Conference on Fracture June 16–21, 2013, Beijing, China -9- 6. Atsushi Sato, Johan Moverare,, Magnus Hasselqvist,,Roger Reed, On The Oxidation Resistance of Nickel-Based Superalloys. Advanced Materials Research, 2011. 278: p. 174-179. 7. Sten Johansson, Johan Moverare,, Daniel Leidermark,, Kjell Simonsson,, Jan Kanesund, Investigation of localized damage in single crystals subjected to thermalmechanical fatigue (TMF). Procedia Engineering, Fatigue 2010, 2010. 2(1): p. Pages 657-666 8. David Gustafsson, J., Moverare, Sten Johansson, Magnus Hörnqvist, Kjell Simonsson, Sören Sjöström, Babak Sharifimajd, Fatigue crack growth behaviour of Inconel 718 with high temperature hold times. Procedia Engineering, Volume 2, Issue 1, April 2010, Pages 1095-1104, 2010. 2(1): p. Pages 1095-1104. 9. Andre Pineau, S.D.A., High temperature fatigue of nickel-base superalloys – A review with special emphasis on deformation modes and oxidation. Engineering Failure Analysis (2009) 16: p. 2668-2697. 10. D.G. Leo Prakash, M.J.W., D. Maclachlan, A.M. Korsunsky Crack growth micro-mechanisms in the IN718 alloy under the combined influence of fatigue, creep and oxidation. International Journal of Fatigue 2009. 31: p. 1966-1977. 11. Andre Pineau, Stephen D. Antolovich, High temperature fatigue of nickel-base superalloys – A review with special emphasis on deformation modes and oxidation. Engineering Failure Analysis 2009. 16: p. 2668-2697. 12. Woodford, D., A.,, Gas phase embrittlement and time dependent cracking of nickel based superalloys. Energy Materials, 2006. 1(1): p. 59-79. 13. A. Karabela, L.G.Z., J. Tong, N.J. Simms, J.R. Nicholls, M.C. Hardy, Effects of cyclic stress and temperature on oxidation damage of a nickel-based superalloy. Materials Science and Engineering A 2011. 528: p. 6194-6202. 14. Wanhill, R.J.H., Significance of dwell cracking for IN718 turbine discs International Journal of Fatigue ) 2002. 24 p. 545-555. 15. L.Viskari, S. Johansson and K. Stiller, Oxygen influenced intergranular crack propagation: analyzing microstructure and chemistry in the crack tip region, in Materials at high temperatures. 2011: UK. p. 336-341. 16. Viskari, L., Oxygen Induced High Temperature Crack Growth in NI-base Superalloys, in Department of Applied Physics. 2011, Chalmers University of Technology: Gothenburg, Sweden. 17. Moverare, J.J., S. Johansson, and R.C. Reed, Deformation and damage mechanisms during thermal-mechanical fatigue of a single-crystal superalloy. Acta Materialia, 2009. 57(7): p. 2266-2276. 18. Moverare, J.J. and S. Johansson, Damage mechanisms of a high-Cr single crystal superalloy during thermomechanical fatigue. Materials Science and Engineering a-Structural Materials Properties Microstructure and Processing, 2009. 527(3): p. 553-558. 19. David Gustafsson, Kjell Simonsson,, Sören Sjöström,, Sten Johansson, Influence of high temperature hold times on the fatigue crack propagation in Inconel 718 International Journal of Fatigue, 2011. 20. Viskari, L., Johansson, Sten, Stiller, Krystina, Oxygen influenced intergranular crack propagation : analysing microstructure and chemistry in the crack tip region. Materials at High Temperature. 28 (2011)(4): p. 336-341. 21. Gustafsson, D., Constitutive and fatigue crack propagation behaviour of Inconell 718, in Department of management and engineering. 2011, Linköping University: Linköping, Sweden.

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