4.7 Article

On the Design of Magnetic Resonant Coupling for Wireless Power Transfer in Multicoil Networks

Journal

IEEE WIRELESS COMMUNICATIONS LETTERS
Volume 11, Issue 2, Pages 406-410

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/LWC.2021.3130663

Keywords

Receivers; Transmitters; Couplings; Power system reliability; Magnetic resonance; Inductance; Power generation; Magnetic resonant coupling; wireless power transfer; spatial randomness; game theory

Funding

  1. European Regional Development Fund
  2. Republic of Cyprus through the Research and Innovation Foundation [INFRASTRUCTURES/1216/0017, POSTDOC/0916/0256]
  3. European Research Council (ERC) through the European Union [819819]

Ask authors/readers for more resources

This research investigates the performance of a single cell MRC-WPT network with multiple receivers and proposes methods to optimize the harvested power through pre-adjusted loads and a non-cooperative game.
Wireless power transfer (WPT) is a promising technology for powering up distributed devices in machine type networks. Over the last decade magnetic resonant coupling (MRC) received significant interest from the research community, since it is suitable for realizing mid-range WPT. In this letter, we investigate the performance of a single cell MRC-WPT network with multiple receivers, each equipped with an electromagnetic coil and a load. We first consider pre-adjusted loads for the receivers and by taking into account spatial randomness, we derive the harvesting outage probability of a receiver; for both the strong and loosely coupling regions. Then, we develop a non-cooperative game for a fixed receiver topology, in order to acquire the optimal load which maximizes each receiver's harvested power. Throughout our work, we obtain insights for key design parameters and present numerical results which validate our analysis.

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