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MATERIALS SCIENCE
Название Accounting for twinning when modelling plastic deformation of α-zirconium
DOI 10.17580/tsm.2020.03.13
Автор Isaenkova M. G., Perlovich Yu. A., Krymskaya O. A., Zhuk D. I.
Информация об авторе

National Research Nuclear University MEPhI, Moscow, Russia:

M. G. Isaenkova, Doctor of Physical and Mathematical Sciences, Professor
Yu. A. Perlovich, Doctor of Physical and Mathematical Sciences, Professor
O. A. Krymskaya, Junior Researcher
D. I. Zhuk, Engineer, e-mail: dimazhuk@gmail.com

Реферат

In this work, the process of deformation of zirconium, which is widely used in nuclear power plants, was investigated using crystal plasticity modeling. This approach allows analyzing of the reorientation of grains and studying the process of material structure changing: splitting of grains due to the development of twinning and the formation of high-angle boundaries. DAMASK code was used for the numerical solution of problems. It is based on a mathematical method for solving systems of partial differential equations using fast Fourier transformation. The program has been developed for processing simulation data and reorientation of crystallite twins in which stresses exceed a certain critical level corresponding to this material. For verification of the created method, the data of rolling zirconium single crystal plates was used. These plates were cut using the spark method from a cylindrical single crystal of pure Zr obtained by solid-phase recrystallization. The qualitative correspondence of the modeled pole figures to the experimental ones was found. The efficiency of the created model of plastic deformation in the case of simultaneous activation of slip and twinning systems is demonstrated. The dependences of the distribution of contributions to the deformation of various slip and twinning systems on the degree of deformation during rolling are constructed. According to the simulation data, the share of twinning in texture reorientation is 87%. Moreover, 66% is the share of twinning systems of the type. At further stages, the influence of twins on the texture is rather small, in total for all systems ~ 5%.

Ключевые слова Crystal plasticity modeling, Zirconium, CPFEM, DAMASK, monocrystal, rolling, yield loci, microstructure
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