PSI - Issue 77

P. Santos et al. / Procedia Structural Integrity 77 (2026) 339–347 P. Santos et al. / Structural Integrity Procedia 00 (2025) 000 – 000

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References

ASTM E1820-21. Standard Test Method for Measurement of Fracture Toughness. ASTM E1737-96. Standard Test Method for J-integral Characterization of Fracture Toughness. ASTM E399-97. Standard Test Method for Plane-Strain Fracture Toughness of Metallic Materials Bilby, B.A., Cottrell, A.H., Swinden, K.H., 1963. The spread of plastic yield from a Notch, Proc. Roy. Soc. A272, 304-314. BS 8571:2018. Method of test for determination of fracture toughness in metallic materials using single edge notched tension (SENT) specimens. Chell, G.G., 1976. Bilby, Cottrell, Swinden, model solutions for centre and edge cracked plates subject to arbitrary mode I loading, International Journal of Fracture 12, 135-147. Cravero, S., Ruggieri, C., 2007. Estimation procedure of J- resistance curves for SE(T) fracture specimens using unloading compliance, Engineering Fracture Mechanics 74, 2735 – 2757. De Abreu, M., Iordachescu, M., Valiente, A., 2019. Influence of transversal loading on tensile and fatigue behaviour of high-strength lean dúplex stainless steel wires. Eng. Fail. Anal. 102, 417 – 424. Iordachescu, M., Valiente, A., Pérez-Guerrero, M., Elices, M., 2018. Environment-assisted failure of structural tendons for construction and building applications. Constr. Build. Mat. 159, 499 – 507. Iordachescu, M., Pérez-Guerrero, M., Valiente, A., Elices, M., 2018. Environmental effects on large diameter high-strength rods for structural applications. Eng. Fail. Anal. 83, 230 – 238. Iordachescu, M., Valiente, A., De Abreu, M., Santos, P., 2022. Critical and subcritical cracking of high-strength wires obtained by cold-drawing of pearlitic and duplex stainless steels, Theoretical and Applied Fracture Mechanics 117, 103205. Jemblie, L., Olden, V., Akselsen, O.M., 2017. A review of cohesive zone modeling as an approach for numerically assessing hydrogen embrittlement of steel structures, Phil. Trans. R. Soc. A 375, 20160411. Morris, J.W., Kinney, C., Pytlewski, K., Adachi, Y., 2013. Microstructure and cleavage in lath martensitic steels, Sci. Technol. Adv. Mater. 14. Morris, J.W., 2011. On the Ductile-Brittle Transition in Lath Martensitic Steel, ISIJ International, 51/10, 1569 – 1575. Rice, J.R., 1972. Some remarks on elastic crack-tip fields, Int. J. Solids Structures, 8, 751-758. Santos, P., Iordachescu, M., Valiente, A., Scutelnicu, E., 2024. Fatigue, Fracture, and Damage Tolerance of Ultrahigh-Strength Martensitic Tendon-Rods for Structural Engineering, Applied Sciences 14, 11543. Tada, H., Paris, P.C., Irwin, G.R., 2000. The Stress Analysis of Cracks Handbook, ASME Press, Nueva York. Teixeira, J., Pérez, J.E., Castrodeza, E.M., 2018. Normalization method for J-R curve determination using SENT specimens, Engineering Fracture Mechanics 199, 658-671. Valiente, A., Guerrero, M.P., Iordachescu, M., 2016. New testing method for assessing the cracking sensibility of stressed tendon rods in aggressive environments. Eng. Fail. Anal. 68, 244 – 253.

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