Relationship between magnetic properties and microstructure of ferrites during sintering in radiation and radiation-thermal conditions; Eurasian Physical Technical Journal; Vol. 18, No. 1

Бібліографічні деталі
Parent link:Eurasian Physical Technical Journal
Vol. 18, No. 1.— 2021.— [P. 3-8]
Співавтор: Национальный исследовательский Томский политехнический университет Инженерная школа неразрушающего контроля и безопасности Отделение контроля и диагностики
Інші автори: Malyshev A. V. Andrei Vladimirovich, Lysenko E. N. Elena Nikolaevna, Sheveleva E. A. Elena Aleksandrovna, Surzhikova O. A. Olga Anatoljevna, Aryngazin A. K. Askar Kanapjevich
Резюме:Title screen
The studies of correlation between magnetic properties and microstructure were conducted on samples of lithium-substituted ferrite, sintered in radiation and radiation-thermal conditions. Radiation-thermal sintering was performed for compacts irradiated with a pulsed electron beam with energy of (1.5-2.0) MeV, beam current per pulse of (0.5-0.9) A, irradiation pulse duration of 500 μs, pulse repetition rate of (5-50) Hz, and compact heating rate of 1000 °C/min. Sintering in thermal furnaces (T-sintering) was carried out in a preheated chamber electric furnace. The paper shows that magnetic induction does not depend on the ferrite grain size. In this case, the coercive force is inversely proportional to the grain size and depends on the intragranular porosity of ferrite samples. In contrast to thermal sintering, radiation-thermal sintering does not cause capturing of intergranular voids by growing grains and enhances coagulation of intragranular pores.
Мова:Англійська
Опубліковано: 2021
Предмети:
Онлайн доступ:http://earchive.tpu.ru/handle/11683/69096
https://doi.org/10.31489/2021No1/3-8
Формат: Електронний ресурс Частина з книги
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=665958
Опис
Резюме:Title screen
The studies of correlation between magnetic properties and microstructure were conducted on samples of lithium-substituted ferrite, sintered in radiation and radiation-thermal conditions. Radiation-thermal sintering was performed for compacts irradiated with a pulsed electron beam with energy of (1.5-2.0) MeV, beam current per pulse of (0.5-0.9) A, irradiation pulse duration of 500 μs, pulse repetition rate of (5-50) Hz, and compact heating rate of 1000 °C/min. Sintering in thermal furnaces (T-sintering) was carried out in a preheated chamber electric furnace. The paper shows that magnetic induction does not depend on the ferrite grain size. In this case, the coercive force is inversely proportional to the grain size and depends on the intragranular porosity of ferrite samples. In contrast to thermal sintering, radiation-thermal sintering does not cause capturing of intergranular voids by growing grains and enhances coagulation of intragranular pores.
DOI:10.31489/2021No1/3-8