Title :
Nanolaminated Permalloy Core for High-Flux, High-Frequency Ultracompact Power Conversion
Author :
Jooncheol Kim ; Minsoo Kim ; Galle, Preston ; Herrault, Florian ; Shafer, Richard ; Park, Jae Young ; Allen, Mark G.
Author_Institution :
Dept. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Abstract :
Metallic magnetic materials have desirable magnetic properties, including high permeability, and high saturation flux density, when compared with their ferrite counterparts. However, eddy-current losses preclude their use in many switching converter applications, due to the challenge of simultaneously achieving sufficiently thin laminations such that eddy currents are suppressed (e.g., 500 nm-1 μm for megahertz frequencies), while simultaneously achieving overall core thicknesses such that substantial power can be handled. A CMOS-compatible fabrication process based on robot-assisted sequential electrodeposition followed by selective chemical etching has been developed for the realization of a core of substantial overall thickness (tens to hundreds of micrometers) comprised of multiple, stacked permalloy (Ni80Fe20) nanolaminations. Tests of toroidal inductors with nanolaminated cores showed negligible eddy-current loss relative to total core loss even at a peak flux density of 0.5 T in the megahertz frequency range. To illustrate the use of these cores, a buck power converter topology is implemented with switching frequencies of 1-2 MHz. Power conversion efficiency greater than 85% with peak operating flux density of 0.3-0.5 T in the core and converter output power level exceeding 5 W was achieved.
Keywords :
Permalloy; eddy current losses; electrodeposition; etching; laminations; magnetic cores; magnetic materials; permeability; switching convertors; CMOS-compatible fabrication process; NiFe; buck power converter topology; core loss; eddy current losses; frequency 1 MHz to 2 MHz; high-frequency ultracompact power conversion; metallic magnetic materials; nanolaminated permalloy core; operating flux density; power conversion efficiency; robot-assisted sequential electrodeposition; saturation flux density; selective chemical etching; switching converter; toroidal inductors; Copper; Eddy currents; Inductors; Lamination; Loss measurement; Magnetic cores; Materials; Eddy-current loss suppression; high-flux and high-frequency (HFHF) operation; laminated magnetic alloy;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2013.2238639