PSI - Issue 52

Tomáš Vražina et al. / Procedia Structural Integrity 52 (2024) 43 – 51 Tomáš Vražina et. al./ Structural Integrity Procedia 00 ( 2022) 000 – 000

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Šulák, I., T. Babinský, A. Chlupová, A. Milovanović, L . Náhlík. 2022. “Effect of Building Direction and Heat Treatment on Mechanical Properties of Inconel 939 Prepared by Additive Manufacturing.” Journal of Mechanical Science and Technology , November. https://doi.org/10.1007/s12206-022-2101-7. Laird, C., and G. C. Smith. 1962. “Crack Propagation in High Stress Fatigue.” The Philosophical Magazine: A Journal of Theoretical Experimental and Applied Physics 7 (77): 847–57. Paris, P., and F. Erdogan. 1963. “A Critical Analysis of Crack Propagation Laws.” Journal of Basic Engineering 85 (4): 528–33. Shyam, A., and E. Lara - Curzio. 2010. “A Model for the Formation of Fatigue Striations and Its Relationship with Small Fatigue Crack Growth i n an Aluminum Alloy.” International Journal of Fatigue 32 (11): 1843–52. Shanyavskiy, A. A. 2013. “Fatigue Crack Propagation in Turbine Disks of EI698 Superalloy.” Frattura Ed Integrità Strutturale 7 (24): 13–25. Nedbal, I., J. Siegl, J. Kunz, and H. Lauschmann. 2008. “Fractographic Reconstitution of Fatigue Crack History – Part I.” Fatigue & Fracture of Engineering Materials and Structures 31 (2): 164–76. Murakami, Y., and S. Aoki. 1987. Stress Intensity Factors Handbook . Stress Intensity Factors Handbook. Pergamon. Hosseini, E., and V. A. Popovich. 2019. “A Review of Mechanical Properties of Additively Manufactured Inconel 718.” Additive Manufacturing 30 (December): 100877. Pham, M. S., C. Solenthaler, K. G. F. Janssens, and S. R. Holdsworth. 2011. “Dislocation Structure Evolution and Its Effects on Cyclic Deformation Response of AISI 316L Stainless Steel.” Materials Science and Engineering: A 528 (7–8): 3261–69. Heczko, M., J. Polák, and T. Kruml. 2017. “Microstructure and Dislocation Arrangements in Sanicro 25 Steel Fatigued at Ambient and Elevat ed Temperatures.” Materials Science and Engineering: A 680 (January): 168–81. Polák, J. 2020. “Production, Annihilation and Migrati on of Point Defects in Cyclic Straining.” Materialia 14 (December): 100938. Šulák, I., K. Obrtlík, T. Babinský, and S. Guth. 2022. “The Low Cycle Fatigue Behaviour of MAR - M247 Superalloy under Different Strain Rates and Cycle Shapes at 750 °C.” International Journal of Fatigue 164 (November): 107133. Pei, C., D. Shi, H . Yuan, and H. Li. 2019. “Assessment of Mechanical Properties and Fatigue Performance of a Selective Laser Melted Nickel -Base Superalloy Inconel 718.” Materials Science and Engineering: A 759 (June): 278–87. Pugno, N., M. Ciavarella, P. Cornetti, and A. Carpinteri. 2006. “A Generalized Paris’ Law for Fatigue Crack Growth.” Journal of the Mechanics and Physics of Solids 54 (7): 1333–49. Hutař, P., J. Poduška, M. Šmíd, Ivo Kuběna, A. Chlupová, L. Náhlík, J. Polák, and T. Kruml. 2017. “Short Fatigue Crack Behaviour under Low Cycle Fatigue Regime.” International Journal of Fatigue 103 (October): 207 –15. Kruml, T., P. Hutař, L. Náhlík, S. Seitl, and J. Polák. 2011. “Fatigue Cracks in Eurofer 97 Steel: Part II. Comparison of Small and Long Fatigue Crack Growth.” Journal of Nuclear Materials 412 (1): 7–12.

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