DocumentCode :
9701
Title :
Soft Ferrite Used as Thermal-Magnetic Conversion Intermedium in the Flux Pumping Technology
Author :
Yujia Zhai ; Hsu, C.H. ; Spaven, F. ; Zhang, M. ; Wang, W. ; Coombs, T.A.
Author_Institution :
Electr. Eng. Dept., Cambridge Univ., Cambridge, UK
Volume :
23
Issue :
3
fYear :
2013
fDate :
Jun-13
Firstpage :
7800104
Lastpage :
7800104
Abstract :
Recent progress in material science has proved that high-temperature superconductors, such as bulk melt-processed yttrium barium copper oxide (YBCO) single domains, have a great potential to trap significant magnetic fields. In this paper, we will describe a novel method of YBCO magnetization that only requires the applied field to be at the level of a permanent magnet. Instead of applying a pulsed high magnetic field on the YBCO, a thermally actuated material (TAM), such as Mg0.15Cu0.15 Zn0.7Ti0.04Fe1.96O4, has been used as an intermedium to create a travelling magnetic field by changing the local temperature so that the local permeability is changed to build up the magnetization of the YBCO gradually after multiple pumping cycles. It is well known that the relative permeability of ferrite is a function of temperature and its electromagnetic properties can be greatly changed by adding dopants such as Mg or Ti; therefore, it is considered to be the most promising TAM for future flux pumping technology. Ferrite samples were fabricated by means of the conventional ceramic method with different dopants. Zinc and iron oxides were used as raw materials. The samples were sintered at 1100 °C, 1200 °C , and 1300 °C . The relative permeability of the samples was measured at temperatures ranging from 77 to 300 K. This work investigates the variation of the magnetic properties of ferrites with different heat treatments and doping elements and gives a smart insight into finding better ferrites suitable for flux pumping technology.
Keywords :
barium compounds; ceramics; copper compounds; ferrites; heat treatment; high-temperature superconductors; magnesium compounds; magnetic permeability; magnetisation; yttrium compounds; zinc compounds; Mg0.15Cu0.15Zn0.7Ti0.04Fe1.96O4; YBCO; YBCO magnetization method; applied field; bulk melt-processed yttrium barium copper oxide single domains; ceramic method; dopants; doping elements; electromagnetic properties; ferrite magnetic property variation; ferrite relative permeability; flux pumping technology; heat treatments; high-temperature superconductors; local permeability; local temperature; material science; multiple pumping cycles; permanent magnet level; pulsed high magnetic field; soft ferrite; temperature 1100 degC; temperature 1200 degC; temperature 1300 degC; temperature 77 K to 300 K; thermal-magnetic conversion intermedium; thermally actuated material; travelling magnetic field; Ferrites; Permeability; Superconducting magnets; Temperature measurement; Yttrium barium copper oxide; Ferrites; flux pumping; high temperature superconductors; relative permeability;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2013.2237737
Filename :
6410387
Link To Document :
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