Title :
Characterization of soft magnetic material METGLAS 2605S-3A for power applications and transformers
Author :
Wieserman, W.R. ; Kusic, G.L.
Author_Institution :
Pittsburgh Univ., Johnstown, PA, USA
fDate :
10/1/1995 12:00:00 AM
Abstract :
This experimental study separates the hysteresis, eddy current, and electromechanical motion losses of a soft magnetic material for electric power energy conversion applications. Mechanical responses of the magnetic material to sine and square wave voltage excitation are compared. Commercially available, METGLAS 260553-A tape cores were evaluated up to 300°C for sine wave and square wave voltage excitation frequencies 1-100 kHz. Data presented illustrates the effects of maximum flux density, frequency, waveshape, and temperature on the specific core loss and size and shape of the B-H loops. Relative losses play a major role in material selection for electronic and electric power applications including power converters, transformers, controllers, and filter elements. Dynamic measurements of the magnetostrictive response of these specific toroidal test cores were made using a sensitive, capacitive probe and a unique application of frequency modulation. The dynamic behavior of the toroidal test cores and the related unusual B-H loop characteristics were compared to results obtained by an electromechanical model
Keywords :
eddy current losses; magnetic flux; magnetic hysteresis; magnetic tapes; metallic glasses; power transformer testing; power transformers; soft magnetic materials; transformer cores; transformer magnetic circuits; 1 to 100 kHz; 300 C; B-H loops; METGLAS 2605S-3A; applications; dynamic behavior; eddy current losses; electric power energy conversion; electromechanical model; electromechanical motion losses; excitation; frequency modulation; hysteresis losses; magnetic tape cores; magnetostrictive response; material characterization; power transformers; soft magnetic material; toroidal test cores; Amorphous magnetic materials; Eddy currents; Frequency; Magnetic cores; Magnetic hysteresis; Magnetic materials; Magnetic separation; Soft magnetic materials; Testing; Transformer cores;
Journal_Title :
Power Delivery, IEEE Transactions on