PSI - Issue 17

M. Carrera et al. / Procedia Structural Integrity 17 (2019) 872–877 M. Carrera, P. Lopez-Crespo, P.J. Withers / StructuralIntegrity Procedia 00 (2019) 000 – 000

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Lopez-Crespo, P. et al. (2015) ‘Meas uring overload effects during fatigue crack growth in bainitic steel by synchrotron X- ray diffraction’, International Journal of Fatigue , 71, pp. 11 – 16. Lopez-Crespo, P. et al. (2018) ‘A study of the evolution of crack tip plasticity along a crack front’, Theoretical and Applied Fracture Mechanics , 98, pp. 59 – 66. Lopez- Crespo, P., Peralta, J. V. and Withers, P. J. (2018) ‘Synchrotron X -ray diffraction based method for stress intensity factor evaluation in the bulk of materials’, Theoretical and Applied Fracture Mechanics , 98, pp. 72 – 77. Lopez- Crespo, P., Peralta, J. V. and Withers, P. J. (2019) ‘In situ through thickness analysis of crack tip mechanics with synchrot ron X-ray diffraction.’, International Journal of Fatigue, to appear . Mokhtarishirazabad, M. et al. (2017) ‘Optical and analytical investigation of overloads in biaxial fatigue cracks’, International Journal of Fatigue , 100, pp. 583 – 590. Mokhtarishirazabad, M., Lopez- Crespo, P. and Zanganeh, M. (2018) ‘Stress intensity factor monitoring under cycli c loading by digital image correlation’, Fatigue and Fracture of Engineering Materials and Structures , 41, pp. 2162 – 2171. Ould Chikh, B., Imad, A. and Benguediab, M. (2008) ‘Influence of the cyclic plastic zone size on the propagation of the fatig ue crack in case of 12NC6 steel’, Computational Materials Science , 43, pp. 1010 – 1017. Park, H. B., Kim, K. M. and Lee, B. W. (1996) ‘Plastic zone size in fatigue cracking’, International Journal of Pressure Vessels and Piping , 68, pp. 279 – 285. Paul, S. K. and Tarafder, S. (2013) ‘Cyclic plastic deformation response at fatigue crack tips’, International Journal of Pressure Vessels and Piping , 101, pp. 81 – 90. Robertson, I. M. (1994) ‘Measurement of the effects of stress ratio and changes of stress ratio on fatigue crack growth rate in a quenched and tempered steel’, International Journal of Fatigue , 16, pp. 216 – 220. Salvati, E. et al. (2017) ‘Separating plasticity -induced closure and residual stress contributions to fatigue crack retardation following an overload’, Journal of the Mechanics and Physics of Solids , 98, pp. 222 – 235. Simpson, C. A. et al. (2019) ‘Quantifying fatigue overload retardation mechanisms by energy dispersive X - ray diffraction’, Journal of the Mechanics and Physics of Solids , 124, pp. 392 – 410. Steuwer, A. et al. (2006) ‘In situ analysis of cracks in structural materials using synchrotron X - ray tomography and diffraction’, Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms , 246, pp. 217 – 225. Steuwer, A. et al. (2010) ‘The evolution of crack - tip stresses during a fatigue overload event’, Acta Materialia , 58, pp. 4039 – 4052. Sutton, M. A., Orteu, J.-J. and Schreier, H. W. (2009) Image Correlation for Shape, Motion and Deformation Measurements: Basic concepts, theory and applications . Tekin, A. and Martin, J. W. (1989) ‘High -resolution measurement of crack-tip plastic zone size s by selected area channelling patterns’, Metallography , 22, pp. 1 – 14. Uguz, A. and Martin, J. W. (1996) ‘Plastic Zone Size Measurement Techniques for Metallic Materials’, Materials Characterization , 37, pp. 105 – 118. Vasco-Olmo, J. M., Díaz, F. A. and Patt erson, E. A. (2016) ‘Experimental evaluation of shielding effect on growing fatigue cracks under overloads using ESPI’, International Journal of Fatigue , 83, pp. 117 – 126. Withers, P. J. (2013) ‘Synchrotron X - ray Diffraction’, in Practical Residual Stress Measurement Methods , pp. 163 – 194.

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