Design and Optimization of Printed Circuit Board Inductors for Wireless Power Transfer System
- 1 Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, USA
- 2 Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, USA
- 3 Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, USA
Abstract
Wireless power transfer via inductive link is becoming a popular choice as an alternate powering scheme for biomedical sensor electronics. Spiral printed circuit board (PCB) inductors are gaining attractions for wireless power transfer ap plications due to their various advantages over conventional inductors such as low-cost, batch fabrication, durability, manufacturability on flexible substrates, etc. In this work, design of a multi-spiral stacked solenoidal inductor for bio medical application in 13.56 MHz band is presented. Proposed stacking method enhances the inductance density of the inductor for a given area. This paper reports an optimization technique for design and implementation of the PCB in ductors. The proposed scheme shows higher inductance and better figure-of-merit values compared to PCB inductors reported in literature, which are desirable for wireless power transfer system.
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