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EXPERIMENTAL SUPPORT OF MAGNETRON NICKEL OXIDE CATHODE FABRICATION PROCESS

https://doi.org/10.17073/1609-3577-2015-4-285-290

Abstract

This work is an experimental justification of the choice of temperature and time modes designed for the heat treatment of real magnetrons, the end result of which is the initial decomposition of barium carbonate to barium oxide. We have experimentally determined the temperatures of polymorphic transitions in barium carbonate and the temperature of barium carbonate dissociation in different atmospheres, i.e. air, argon, carbon dioxide and in vacuum, for physical modeling of processes occurring in pumped magnetrons. We have determined the phase composition of the test barium carbonate specimen at room temperature by X−ray phase analysis (XPA) on a diffractometer before and after heating and experimentally investigated the effect of temperature and time of isothermal exposure on the phase composition on a high temperature diffractometer. We have studies the chemical and physicochemical processes occurring in the samples during heating using a derivatograph. We have calculated the enthalpy of the polymorphic transitions and the activation energy of dissociation. We have presented quantitative data characterizing the kinetics of phase transitions for various heat treatment modes and demonstrated the temperature existence ranges of different phases. We have established that reducing the heating rate and increasing the time of heating interruptions slow down the process of BaCO3 to BaO transition. We have established that sintering of the powder occurs during heating of barium carbonate. 

About the Authors

I. Yu. Kuchina
National University of Science and Technology «MISIS»
Russian Federation

Irina Yu. Kuchina — Junior Researcher, Engineer 

4 Leninsky Prospekt, Moscow 119049



N. I. Polushin
National University of Science and Technology «MISIS»
Russian Federation

Nikolay I. Polushin — Cand. Sci. (Eng.), Associate Professor 

4 Leninsky Prospekt, Moscow 119049



E. S. Zakharova
National University of Science and Technology «MISIS»
Russian Federation

 Elena S. Zakharova — Engineer 

4 Leninsky Prospekt, Moscow 119049



I. P. Li
JSC «Pluton»
Russian Federation

Illarion P. Li — Cand. Sci. (Eng.), Scientific Supervisor of the Enterprise 

11 N. Syromiatnicheskaya Str., Moscow 105120



V. S. Petrov
JSC «Pluton»
Russian Federation

Vladimir S. Petrov — Cand. Sci. (Eng.), Associate Professor, Engineer−Technologist 

11 N. Syromiatnicheskaya Str., Moscow 105120



V. I. Kapustin
JSC «Pluton»; Moscow Technological University (MIREA)
Russian Federation

Vladimir I. Kapustin — Dr. Sci. (Phys.−Math.), Professor, Chief Specialist 

78 Vernadsky Ave., Moscow 119454



N. E. Ledentsova
JSC «Pluton»; National Research University Higher School of Economics
Russian Federation
Natalya E. Ledentsova2,4 — Leading Engineer-Technologist  Postgraduate Student


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Review

For citations:


Kuchina I.Yu., Polushin N.I., Zakharova E.S., Li I.P., Petrov V.S., Kapustin V.I., Ledentsova N.E. EXPERIMENTAL SUPPORT OF MAGNETRON NICKEL OXIDE CATHODE FABRICATION PROCESS. Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering. 2015;18(4):285-290. (In Russ.) https://doi.org/10.17073/1609-3577-2015-4-285-290

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ISSN 1609-3577 (Print)
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