PSI - Issue 18

Danilo A. Renzo et al. / Procedia Structural Integrity 18 (2019) 914–920 Author name / Structural Integrity Procedia 00 (2019) 000–000

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Inagaki, I., Takechi, T., Shirai, Y., Ariyasu, N., 2014. Application and features of titanium for the aerospace industry. Nippon Steel & Sumitomo Metal Technical Report, pp. 22-27. Katinas, C., Liu, S., Shin, Y.C., 2018. Self-sufficientmodeling of single track deposition of Ti-6Al-4V with the prediction of capture efficiency. Journal of Manufacturing Science and Engineering 141 (1) (011001-011001-10). Li, P., Warner, D., Fatemi, A., Phan, N., 2016. Critical assessment of the fatigue performance of additively manufactured Ti-6Al-4V and perspective for future research. International Journal of Fatigue 85:130-43. Liu, S., Shin, Y.C., 2018. Simulation and experimental studies on microstructure evolution of resolidified dendritic TiCx in laser direct deposited Ti-TiC composite. Materials & Design 159 212-223 Liu, S., Shin, Y.C., 2019. Additive manufacturing of Ti6Al4V alloy: A review. Materials and Design 164 107552. Lütjering, G., Williams, J.C., 2007. Titanium, second ed. Springer, New York. Singh, P., Pungotra, H., Kalsi, N.S., 2017. On the characteristics of titanium alloys for the aircraft applications. Materials Today Proceedings 4 (8) 8971-8982. Strantza, M., Vafadari, R., De Baere, D., Vrancken, B., Van Paepegem, W., Vandendael, I., Terryn, H., Guillaume, P., Van Hemelrijck, D., 2016. Fatigue of Ti6Al4V structural health monitoring systems produced by selective laser melting. Materials (Basel) 9 (2). Uhlmann, E., Kersting, R., Klein, T.B., Cruz, M.F., Borille, A.V., 2015. Additive manufacturing of titanium alloy for aircraft components. Procedia CIRP 35 55-60. Wycisk, E., Solbach, A., Siddique, S., Herzog, D., Walther, F., Emmelmann, C., 2014. Effects of defects in laser additive manufactured Ti 6Al-4V on fatigue properties. Physics Procedia 56:371-8.

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