Title :
Inductor design for low loss with dual foil windings and quasi-distributed gap
Author :
Sullivan, C.R. ; Bouayad, Hamza ; Yue Song
Author_Institution :
Thayer Sch. of Eng., Dartmouth Coll., Hanover, NH, USA
Abstract :
In order to maximize efficiency for waveforms that contain low frequency and high frequency components, an inductor design using quasi-distributed gaps with thin and thick foil windings connected in parallel is presented. Compared to a single foil winding, this allows having more flexibility in design, improving packing factor, and pushing the upper frequency limit higher for a wide range of power electronics applications. For this configuration and for high-frequency foil inductors in general, a difficulty is developing low-resistance winding terminations and avoiding eddy-current losses in those terminations. A dual-winding structure which allows both terminations to be located in a low-field region to avoid eddy-current losses is introduced. An inductor prototype has been built and tested, and measurement results confirm the benefits. Simulation results show that improved detailed positioning of individual air-gaps in the centerpost could further reduce high-frequency resistance.
Keywords :
eddy current losses; inductors; power conversion; windings; dual foil windings; dual-winding structure; eddy-current losses; high frequency components; high-frequency foil inductors; high-frequency resistance; inductor design; low frequency components; low-resistance winding terminations; packing factor; power conversion circuits; power electronic applications; quasidistributed gap; single foil winding; thick foil windings; Electrical resistance measurement; Hafnium; Inductance; Inductors; Prototypes; Resistance; Windings;
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2013 IEEE
Conference_Location :
Denver, CO
DOI :
10.1109/ECCE.2013.6647188