4.8 Article

Low-Frequency Wireless Power Transfer Via Rotating Permanent Magnets

期刊

IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS
卷 69, 期 10, 页码 10656-10665

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TIE.2022.3158010

关键词

Magnetic fields; Magnetic flux; Rotors; Magnetic resonance; Sensors; Magnetic sensors; Wireless power transfer; Electromechanical wireless power transfer (EWPT); low frequency; rotating magnetic field; tilt angles

资金

  1. Shaanxi Natural Science Basic Research Program [2021JQ-041]
  2. State Key Laboratory of Electrical insulation and Power Equipment [EIEP21306]

向作者/读者索取更多资源

This article introduces a new electromechanical wireless power transfer method that enables wireless charging at different tilt angles through a low-frequency rotating magnetic field and a permanent magnet rotor. The feasibility and stability of the proposed system are demonstrated through theoretical analyses and experimental results, making it suitable for free-positioned and free-oriented sensors or low-power devices in enclosed or semienclosed areas.
The surging applications of low-power sensors and portable electronic devices require a safe, convenient and low-cost charging method which draws interests of the wireless power transfer research field. Conventional WPT techniques using resonant coupling structures are limited by complexity, safety concerns and hardware costs. Electromechanical wireless power transfer (EWPT) techniques provide a low-cost, easy-to-control and safe wireless charging method via moving magnets; but transmission failures may occur due to the position and orientation misalignments of loads from optimum conditions. This article proposes an EWPT system that is able to charge loads at different tilt angles via a low-frequency rotating magnetic field and a permanent magnet rotor. The magnetic field has a uniform distribution in a space volume over 125 000 mm(3). A custom permanent magnet rotor embedded with six identical cylindrical magnets and an induction coil is employed to capture transmitted power. Theoretical analyses and experimental results are presented to prove the feasibility and output capability of the proposed system. The peak output power achieves 130 mW under a magnetic field strength around 1 mT and the system output maintains stable for loads at different tilt angles. Such EWPT method can be applied as a stable power supply for free-positioned and free-oriented sensors or other low-power devices in an enclosed or semienclosed area.

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