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Theoretical and experimental study of a wireless power supply system for moving low power devices in ferromagnetic and conductive medium

机译:铁磁性导电介质低功耗装置的无线电力供应系统的理论与实验研究

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This paper focuses on the design of a wireless power supply system for low power devices (e.g. sensors) located in harsh electromagnetic environment with ferromagnetic and conductive materials. Such particular environment could be found in linear and rotating actuators. The studied power transfer system is based on the resonant magnetic coupling between a fixed transmitter coil and a moving receiver coil. The technique was utilized successfully for rotary machines. The aim of this paper is to extend the technique to linear actuators. A modeling approach based on 2D Axisymmetric Finite Element model and an electrical lumped model based on the two-port network theory is introduced. The study shows the limitation of the technique to transfer the required power in the presence of ferromagnetic and conductive materials. Parametric and circuit analysis were conducted in order to design a resonant magnetic coupler that ensures good power transfer capability and efficiency. A design methodology is proposed based on this study. Measurements on the prototype show efficiency up to 75% at a linear distance of 20 mm.
机译:本文侧重于位于具有铁磁和导电材料的恶劣电磁环境中的低功耗设备(例如传感器)的无线电源系统的设计。这种特殊的环境可以在线性和旋转执行器中找到。所研究的电力传输系统基于固定发射器线圈和移动接收器线圈之间的谐振磁耦合。该技术成功用于旋转机器。本文的目的是将该技术扩展到线性执行器。介绍了一种基于2D轴对称有限元模型的建模方法和基于双端口网络理论的电集模型。该研究显示了在存在铁磁性和导电材料存在下传递所需功率的技术的限制。进行参数和电路分析以设计谐振磁耦合器,以确保良好的功率传输能力和效率。基于这项研究提出了一种设计方法。原型上的测量显示在20mm的线性距离下高达75%的效率。

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