Open Access
Issue
EPJ Web Conf.
Volume 250, 2021
DYMAT 2021 - 13th International Conference on the Mechanical and Physical Behaviour of Materials under Dynamic Loading
Article Number 02013
Number of page(s) 10
Section Modelling & Numerical Simulation
DOI https://doi.org/10.1051/epjconf/202125002013
Published online 09 September 2021
  • Royce, R. (2015). The jet engine. John Wiley & Sons. [Google Scholar]
  • Lee, W. S., & Lin, C. F. (1998). Plastic deformation and fracture behaviour of Ti–6Al– 4V alloy loaded with high strain rate under various temperatures. Materials Science and Engineering: A, 241(1-2), 48-59. [Google Scholar]
  • Lee, D. G., Lee, S., Lee, C. S., & Hur, S. (2003). Effects of microstructural factors on quasi-static and dynamic deformation behaviors of Ti-6Al-4V alloys with widmanstätten structures. Metallurgical and Materials Transactions A, 34(11), 2541-2548. [Google Scholar]
  • Gangireddy, S., & Mates, S. P. (2017). High temperature dynamic response of a Ti-6Al4V alloy: a modified constitutive model for gradual phase transformation. Journal of Dynamic Behavior of Materials, 3(4), 557-574. [Google Scholar]
  • Lin, Y. C., Wu, Q., Pang, G. D., Jiang, X. Y., & He, D. G. (2020). Hot tensile deformation mechanism and dynamic softening behavior of Ti–6Al–4V alloy with thick lamellar microstructures. Advanced Engineering Materials, 22(3), 1901193. [Google Scholar]
  • Hueto, F., Hokka, M., Sancho, R., Rämö, J., Östman, K., Gálvez, F., & Kuokkala, V. T. (2017). High temperature dynamic tension behavior of titanium tested with two different methods. Procedia engineering, 197, 130-139. [Google Scholar]
  • Hokka, M., Östman, K., Rämö, J., & Kuokkala, V.-T. (2014). High Temperature Tension HSB Device Based on Direct Electrical Heating. En Dynamic Behavior of Materials, Volume 1 (págs. 227-233). [Google Scholar]
  • Viscasillas, M.J. (2019). Comportamiento en tenacidad de fractura y propagación de grietas en función del tratamiento térmico en aleaciones de titanio de aplicación aeroespacial. Tesis (Doctoral), E.T.S.I.A.E(UPM). [Google Scholar]
  • Lütjering, G., & Williams, J. C. (2007). Titanium. Springer Science & Business Media. [Google Scholar]
  • Johnson, G. R. (1983). A constitutive model and data for materials subjected to large strains, high strain rates, and high temperatures. Proc. 7th Inf. Sympo. Ballistics, 541547. [Google Scholar]
  • Shrot, A., & Bäker, M. (2012). Determination of Johnson–Cook parameters from machining simulations. Computational Materials Science, 52(1), 298-304. [Google Scholar]
  • CES EduPack 2020. Version 20.1.1, Granta Design Limited. [Google Scholar]