PSI - Issue 17

Ludvík Kunz et al. / Procedia Structural Integrity 17 (2019) 222–229

229

Ludvík Kunz et al./ Structural Integrity Procedia 00 (2019) 000 – 000

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Acknowledgements

The authors acknowledge the VEGA grant agency for the support by the grant No. 1/0463/19, the company BEAM-IT srl, Fornovo Taro, Italy for providing the specimens and the project FV30219 of the Ministry of Industry and Trade of the Czech Republic.

References

Becker, T. H., Beck, M., Scheffer, C. 2015. Microstructure and mechanical properties of direct metal laser sintered Ti-6Al-4V. South African Journal of Industrial Engineering 26(1), 1 – 10. Beretta, S., Romano, S. 2017. A comparison a fatigue strength sensitivity to defects for materials manufactured be AM or traditional processes. International Journal of Fatigue 94, 178 – 191. Brüggemann, J.-P., Risse, L., Kulmer, G., Schramm, B., Richard, H. A. 2018. Fracture mechanical investigations on selective laser melted Ti 6Al-4V. Procedia Structural integrity 13, 317 – 321. Cain, V., Thijs, L., Van Humbeeck, J., Van Hooreweder, B., Knutsen, R. 2015. Crack propagation and fracture toughness of Ti6Al4V alloy produced by selective laser melting. Additive Manufacturing 5, 68 – 76. Edwards, P., Ramulu, M., 2014. Fatigue performance evaluation of selective laser melted Ti-6Al-4V. Materials Science & Engineering A 598, 327 – 337. Knowles, C. R., Becker, T. H., Tait, R. B. 2012. Residual stress measurements and structural integrity implications for selective laser melted Ti 6Al-4V. South African Journal of Industrial Engineering 23(3), 119 – 129. Leuders, S., Thöne, M., Reimer, A., Niendorf, T., Tröster, T., Richard, H. A., Maier, H. J. 2013. On the mechanical behaviour of titanium alloy manufactured by selective laser melting: fatigue resistance and crack growth performance. International Journal of Fatigue 48, 300 – 307. Liu S., Shin, Y. C., 2019. Additive manufacturing of Ti6Al4V alloy: A review. Materials and Design 164, 107552. Riemer, A., Richard, H. A., Brüggemann, J.-P., Wesendahl, J.-N. 2015. Fatigue crack growth in additive manufactured products. Frattura ed Integrità Strutturale 34, 437 – 446. Standard Test Method for Measurement of Fatigue Crack Growth Rates ASTM E647. Vilaro, T., Coli, C., Bartout, J. D. 2011. As-fabricated and heat-treated microstructures of the Ti-6Al-4V alloy processed by selective laser melting. Metallurgical and Materials Transactions 42A, 3190 – 3199. Wycisk E., Solbach, A., Siddique, S., Herzog, D., Walther, F., Emmelmann, C. (2014). Effect of defects in laser additive manufactures Ti-6Al 4V on fatigue properties. Physics Procedia 56, 371 – 378.

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