ICF13A

13th International Conference on Fracture June 16–21, 2013, Beijing, China -10- Acknowledgements The part of this work has been carried out within the framework of the EC-sponsored ISTC project 3973 performed in collaboration with the Integrated Project PERFORM 60. References [1] R. Ludwik, Elemente der technologischen Mechanik, Berlin, 1909. [2] A. Yoffe, M. Kirpicheva, M. Levitskay, Deformation and strength of crystals. Zhurnal Rus. Phys.Chim. Obz, 56 (1924) 489-504. (in Russian) [3] N. Davidenkov, Dynamic Testing of Materials, ONTI, Moscow, 1936 (in Russian) [4] J.F. Knott, Fundamentals of Fracture Mechanics, Butterworths, London, 1973. [5] F.M. Beremin, A local criterion for cleavage fracture of a nuclear pressure vessel steel. Met.Trans, 14A (1983) 2277-2287. [6] B.Z. Margolin, V.A.Shvetsova, Brittle fracture criterion: physical and mechanical approach. Problemy Prochnosti, (1992) N2 3-16. (in Russian) [7] B.Z.Margolin, V.A. Shvetsova, Local criterion for cleavage fracture: structural and mechanical approach. J. de Physique IV, 6 (1996) C6-225-C6-234. [8] B.Z. Margolin,V.A. Shvetsova, G.P. Karzov, Brittle fracture of nuclear pressure vessel steels. Part I. Local criterion for cleavage fracture. Int. J. Pres. Ves. Piping, 72 (1997) 73-87. [9] B.Z. Margolin, A.G. Gulenko, V.A. Shvetsova, Improved probabilistic model for fracture toughness prediction for nuclear pressure vessel steels. Int. J. Pres. Ves. Piping, 75 (1998) 843-855. [10] B.Z. Margolin, V.A. Shvetsova, A.G. Gulenko, V.I. Kostylev, Application of a new cleavage fracture criterion for fracture toughness prediction for RPV steels. Fatigue Fract. Engng. Mater. Struct, 29(9) (2006) 697-713. [11] J.H. Chen, C. Yan, J. Sun, Further study on the mechanism of cleavage fracture at low temperatures. Acta Metall. Mater, 42 (1994) 251-261. [12] S. Bordet, A. Karstensen, D. Knowles, C. Wiesner, A new statistical local criterion for cleavage fracture in steel. Eng. Fracture Mech, 72 (2005) 453-474. [13] B.Z. Margolin V.A. Shvetsova, A.G. Gulenko, V.I. Kostylev, Prometey local approach to brittle fracture: development and application. Eng. Fracture Mech, 75 (2008) 3483-3498. [14] B. Margolin, V. Shvetsova, A. Gulenko, Radiation embrittlement modeling in multi-scale approach to brittle fracture of RPV steels. Int.J. Fracture, 179 (2012) 87-108. [15] S. Bordet, B. Tanguy, J. Besson et al, Cleavage fracture of RPV steel following warm pre-stressing: micromechanical analysis and interpretation through a new model. Fatigue Fract. Eng. Mater. Struct, 29(9) (2006) 799-816. [16] B.A Gurovich, E.A Kuleshova, Y.A. Nikolaev, Y.I. Shtrombakh, Assessment of relative contributions from different mechanisms to radiation embrittlement of reactor pressure vessel steels. J. Nucl. Mater., 246 (1997) 91-120. [17] V. Nikolaev, V. Rybin, Mechanisms controlling the composition influence on radiation hardening and embrittlement of iron-base alloys. in: Effect of radiation on materials: ASTM STP 1270, 1996, 3-24. [18] N.N. Alekseenko, A.D.Amaev, I.V. Gorynin, V.A. Nikolaev, Radiation damage of nuclear power plant pressure vessel steels. La Grange Park, Illinois USA, 1997. [19] S.R. Ortner, The ductile-to-brittle transition in steels controlled by particle cracking. Fatigue Fract. Eng. Mater. Struct, 29(9) (2006) 752-769. [20] EUROMECH-MECAMAT’96: Local Approach to Fracture. (Edited by A. Pineau and G. Rosselier) J. de Physique IV, 1996, vol.6, C6. [21] B. Tanguy, C. Bouchet, S. Bugat, J. Besson, Local approach to fracture based prediction of the ΔT56J and ΔTIc,100 shifts due to irradiation for an A508 pressure vessel steel. Engng. Fract. Mech, 73 (2006) 191-206. [22] B. Margolin, A. Gulenko, V. Nikolaev, L. Ryadkov, A new engineering method for prediction of the fracture toughness temperature dependence for RPV steels. Int. J. Pres. Ves. & Piping, 80 (2003) 817-829. [23] B. Margolin, B.Gurovich, V. Fomenko et al, Fracture toughness prediction for highly irradiated RPV materials: from test results to RPV integrity assessment. J. Nuclear Materials, 432 (2013) 313-322. [24] K.Wallin. The scatter in KIC results. Eng. Fract. Mech, 19 (1984) 1085-1093.

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