PSI - Issue 28

B.W. Williams et al. / Procedia Structural Integrity 28 (2020) 1024–1038 Author name / Structural Integrity Procedia 00 (2019) 000–000

1038

15

Dahl, B.A., Ren, X.B., Akselsen, O.M., Nyhus, B., and Zhang, Z.L., 2018. Effect of low temperature tensile properties on crack driving force for Arctic application. Theoretical and Applied Fracture Mechanics 93, 88-96. Hantouche, E.G., Al Khatib, K.K., and Morovat, M.A., 2018. Modeling creep of steel under transient temperature conditions of fire. Fire Safety Journal 100, 67-75. Gesing, M.A., Simha, C.H.M., Xu, S., and Tyson, W.R., 2016. Technical Note: Geometric and material property dependencies of the plastic rotation factor in the drop-weight-tear-test. Engineering Fracture Mechanics 153, 399-406. Hojo, K., Ogawa, N., Hirota, T., Yoshimoto, K., Nagoshi, Y., and Kawabata, S., 2016. Application of coupled damage and Beremin model to ductile-brittle transition temperature region considering constraint effect. 21 st European Conference on Fracture, ECF21, June 2016, Catania, Italy and Procedia Structural Integrity 2, 1643-1651. Lei, Y., O’Dowd, N.P., Busso, E.P., and Webster, G.A., 1998. Weibull stress solutions for 2-D cracks in elastic and elastic-plastic materials. International Journal of Fracture 89, 245-268. Moattari, M., Sattari-Far, I., Pereschino, I. and Bonora, N., 2016. Prediction of fracture toughness in ductile-to-brittle transition region using combined CDM and Beremin models. Materials Science & Engineering A 657, 161-172. Nam, W., Hopperstad, O.S., and Amdahl, J., 2018. Modelling of the ductile-brittle fracture transition in steel structures with large shell elements: a numerical study. Marine Structures 62, 40-59. Paredes, M., Wierzbicki, T., and Zelenak, P., 2016. Prediction of crack initiation and propagation in X70 pipeline steels. Engineering Fracture Mechanics 168, 92-111. Paredes, M., Sarzosa, D.F.B., Savioli, R., Wierzbicki, T., and Jeong, D.Y., 2018. Ductile Tearing Analysis of TC128B Tank Car Steel under Mode I Loading Condition. Theoretical and Applied Fracture Mechanics 96, 658-675. Pineau, A., 2008. Modeling ductile to brittle fracture transition in steels – micromechanical and physical challenges. International Journal of Fracture 150, 129-156. Pineau, A., Benzerga, A.A., and Pardeon, T., 2016. Overview article: Failure of metals I: Brittle and ductile fracture. Acta Materialia 107, 424-483. Renevey, S., Carassou, S., Marini, B., Eripet, C. and Pineau, A., 1996. Ductile-brittle transition of ferritic steels modelled by the local approach to fracture. Journal de Physique IV Colloque C6, 343-352. Simha, C.H.M., Xu, S., and Tyson, W.R., 2014. Non-local phenomenological damage-mechanics-based modeling of the Drop-Weight Tear Test. Engineering Fracture Mechanics 118, 66-82. Tu, S., Ren, X., He, J., and Zhang, Z., 2018. Numerical study on the effect of the Lüders plateau on the ductile crack growth resistance of SENT specimens. International Journal of Fracture 214, 185-200. Xu, S. and Tyson, W.R., 2015. Effects of strain rate on strength and of orientation on toughness of modern high-strength pipe. Journal of Pipeline Engineering 14, 212-224. Xue, L. and Wierzbicki, T., 2009. Numerical simulation of fracture mode transition in ductile plates. International Journal of Solids and Structures 46, 1423-1435.

Made with FlippingBook Ebook Creator