Title :
Development of Mo Containing Fe-Cr-Co Permanent Magnets by Modified Single Step Thermomagnetic Treatment
Author :
Akbar, Shazia ; Awan, M.S. ; Aleem, Muhammad Aleem ; Sarwar, Muhammad Nazim
Author_Institution :
Inst. of Ind. Control Syst., Rawalpindi, Pakistan
Abstract :
This paper is focused on a new approach, which was aimed to ease up the development of Fe-Cr-Co-Mo permanent magnets. Tri-arc melting technique under inert atmosphere of argon was used for the development of Fe-Cr-Co-Mo alloy. Solution treatment was done at a temperature of 1250 °C for 5 h followed by water quenching and then samples were subjected to thermomagnetic treatment (TMT) at 630 °C at predetermined cooling rates. The influence of TMT and cooling rates on the final magnetic properties of the alloy were investigated. Microstructural, X-ray diffraction, and magnetic characterization were carried out. It was observed that cooling rates and TMT temperature both affect the magnetic properties of material. Spinodal structure was observed at 50 k magnification of scanning electron microscope: rod like α1 phase (FeCo-rich) is embedded in the matrix of α2-phase (Cr-rich). The average length of the α1 rod like particles is 150 ± 30 nm and the diameter is 30 ± 10 nm. Resultant magnetic properties are as 900 Oe (Hc), 10.4 kG (Br), and 4.3 MGOe (BHmax) with a two-step aging process and 810 Oe (Hc), 10.6 kG (Br), and 3.6 MGOe (BHmax) with continuous cooling up to 540 °C. The current method provides a quick and low cost manufacturing route for the Fe-Cr-Co-Mo permanent magnets with magnetic properties comparable with that of AlNiCo with the added advantage of having high ductility.
Keywords :
X-ray diffraction; ageing; chromium alloys; cobalt alloys; coercive force; crystal microstructure; ductility; iron alloys; magnetisation; melt processing; molybdenum alloys; permanent magnets; quenching (thermal); remanence; scanning electron microscopy; thermomagnetic treatment; Fe-Cr-Co-Mo; SEM; X-ray diffraction; argon inert atmosphere; coercivity; cooling rates; ductility; modified single step thermomagnetic treatment; permanent magnets; remanence; rod like phase; saturation magnetization; solution treatment; spinodal structure; temperature 1250 C; temperature 630 C; time 5 hr; tri-arc melting; two-step aging process; water quenching; Cooling; Magnetic properties; Materials; Metals; Permanent magnets; Temperature; X-ray scattering; Permanent magnets; spinodal structure; thermomagnetic treatment (TMT);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2309433