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A physical model for low-frequency electromagnetic induction in the near field based on direct interaction between transmitter and receiver electrons

机译:基于发射器和接收器电子之间直接相互作用的近场低频电磁感应物理模型

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摘要

A physical model of electromagnetic induction is developed which relates directly the forces between electrons in the transmitter and receiver windings of concentric coaxial finite coils in the near-field region. By applying the principle of superposition, the contributions from accelerating electrons in successive current loops are summed, allowing the peak-induced voltage in the receiver to be accurately predicted. Results show good agreement between theory and experiment for various receivers of different radii up to five times that of the transmitter. The limitations of the linear theory of electromagnetic induction are discussed in terms of the non-uniform current distribution caused by the skin effect. In particular, the explanation in terms of electromagnetic energy and Poynting’s theorem is contrasted with a more direct explanation based on variable filament induction across the conductor cross section. As the direct physical model developed herein deals only with forces between discrete current elements, it can be readily adapted to suit different coil geometries and is widely applicable in various fields of research such as near-field communications, antenna design, wireless power transfer, sensor applications and beyond.
机译:建立了电磁感应的物理模型,该模型直接关联了近场区域中同心同轴有限线圈的发射器和接收器电子中的电子之间的力。通过应用叠加原理,可以将连续电流回路中加速电子的贡献相加,从而可以准确预测接收器中的峰值感应电压。结果表明,对于不同半径的各种接收器,理论和实验之间的一致性很好,最高可达发射器的五倍。根据趋肤效应引起的电流分布不均匀,讨论了电磁感应线性理论的局限性。尤其是,将电磁能和Poynting定理的解释与基于导体横截面的可变细丝感应的更直接的解释进行对比。由于本文开发的直接物理模型仅处理离散电流元件之间的力,因此可以轻松适应各种线圈几何形状,并广泛应用于各种研究领域,例如近场通信,天线设计,无线电力传输,传感器应用程序及其他。

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