[1]
Yu. Tymanov, Plasma and high-receipt and processing of materials in the nuclear fuel cycle: present and future, Fizmatlit, Moscow, 2003 (in Russian).
Google Scholar
[2]
G. Andreev, A. Djachenko, Fluoride technology in the production of nuclear fuel, TPU Publishing, Tomsk, 2013 (in Russian).
Google Scholar
[3]
N. Galkin, Chemistry and technology of uranium fluorides, Gosatomizdat, Moscow, 1961 (in Russian).
Google Scholar
[4]
I. Zherin, G. Amelina, Chemistry of thorium, uranium, plutonium, TPU Publishing, Tomsk, 2010 (in Russian).
Google Scholar
[5]
G. Kaliackaya, A. Strashko, Chemistry and analytical chemistry of uranium and thorium, TPU Publishing, Tomsk, 2011 (in Russian).
Google Scholar
[6]
A. Maslov, G. Kaliackaya, G. Amelina, A. Vodiankin, N. Egorov, Technology of uranium, TPU Publising, Tomsk, 2007 (in Russian).
Google Scholar
[7]
N. Tyraev, I. Zherin, Chemistry and technology of uranium, Cniiatominform, Moscow, 2006 (in Russian).
Google Scholar
[8]
I. Zherin, Halogen fluorides technology of nuclear fuel. Synthesis and Application, Bulletin of Tomsk Polytechnic University. 306 (2003) 18-23.
Google Scholar
[9]
I. Zherin, Halogen fluorides technology of nuclear fuel. Thermodynamics of phase equilibria in systems containing UF6, BrF3, IF5 and HF, Bulletin of Tomsk Polytechnic University. 306 (2003) 8-11.
Google Scholar
[10]
N. Kyrin, P. Lapin, A. Balandin, Physico-chemical properties of systems based on halogen fluorides, Bulletin of Tomsk Polytechnic University. 305 (2002) 157-167.
Google Scholar
[11]
G. Andreev, A. Djachenko, Introduction to Chemical technology nuclear fuel, TPU Publishing, Tomsk (2008) (in Russian).
Google Scholar
[12]
V. Ezhov, Commercial rectification facility for deep purification of sublimate uranium hexafluoride, Atomic energy. 105 (2007) 890-894.
DOI: 10.1007/s10512-007-0141-9
Google Scholar
[13]
S. Bajdali, V. Diadik, A. Yurkov, A mathematical model of the production of uranium hexafluoride, Bulletin of Tomsk Polytechnic University. 315 (2009) 84-90.
Google Scholar