Title :
Modeling of Terfenol-D Biased Minor Hysteresis Loops
Author :
Meng, Aihua ; Zhu, Jiaming ; Kong, Min ; He, Hanlin
Author_Institution :
Coll. of Mech. Eng., Hangzhou Dianzi Univ., Hangzhou, China
Abstract :
When modeling the biased minor loops of the giant magnetostrictive material (GMM) with the classic Jiles-Atherton method, it is hard to describe the characters. When analyzing the shape changing rule of the hysteresis minor loops of Terfenol-D, whose magnetizations are not saturated, the shapes of loops are mainly affected by pinning factor k and by curve shape parameter a. The parameter k increases with the amplitude of the minor loop driving magnetic field and decreases with the bias magnetic field, while parameter a decreases with the bias magnetic field of the minor loop. A sigmoid curve function was adopted as the revision function of k and a. The revised minor loop model not only can well demonstrate the hysteresis character of biased minor loops and symmetric minor loops of Terfenol-D, but also does not need any foregoing information of minor loop magnetizations. The maximum error between the simulation results and experiments is reduced from 11.77% to 3.5%.
Keywords :
giant magnetoresistance; magnetic hysteresis; organic compounds; Jiles-Atherton method; curve shape parameter; giant magnetostrictive material; magnetization; pinning factor; shape changing rule; sigmoid curve function; terfenol-D biased minor hysteresis loops; Magnetic domains; Magnetic fields; Magnetic hysteresis; Magnetic susceptibility; Magnetostriction; Saturation magnetization; Strain; Biased minor loop; giant magnetostrictive material; hysteresis; unsaturated;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2207735