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Gyrator-Based Analysis of Resonant Circuits in Inductive Power Transfer Systems

机译:感应功率传输系统中基于陀螺仪的谐振电路分析

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In this paper, first, it is found that not only the magnetically coupled inductors but also all inductive power transfer systems (IPTSs) inherently have the nature of a gyrator. Widely known characteristics of IPTSs such as impedance inversion and source-type conversion are proved to be the nature of the gyrator. A graphical approach that utilizes the gyrator is proposed for the modeling of IPTSs in general. The proposed graphical technique enables manipulations on the circuit diagram instead of on the circuit equations, which are difficult to handle when the system order is higher than 4. Hence, the equivalent model can be obtained almost by inspection conveniently, giving fruitful physical insights that are limitedly achieved with the equation manipulations. Steady-state analyses at any frequency are possible, and equivalent series resistances can also be included in the proposed model. Five selected electrical characteristics, i.e., source-to-load gain, load-independent output voltage/current characteristics, power factor at the source, sign of the source phase angle, and allowances of open/short loads are evaluated for three widely used IPTS topologies. Also, this technique is extended to the mistuned case for verifying the general use of the approach. An experimental prototype of the voltage-source-type inductor-capacitor-inductor secondary-parallel (V-LCL-P) topology was built to demonstrate the proposed approach for both perfectly tuned and mistuned situations at 85 W and 100 kHz.
机译:首先,在本文中,我们发现不仅磁耦合电感器而且所有电感式功率传输系统(IPTS)固有地都具有回转器的特性。 IPTS的众所周知的特性(例如阻抗反转和源类型转换)被证明是回转器的本质。一般而言,提出了一种利用回转器的图形方法来对IPTS进行建模。所提出的图形技术可以对电路图进行操作,而无需对电路方程进行操作,当系统阶数高于4时,很难进行处理。因此,几乎可以通过检查方便地获得等效模型,从而获得有益的物理见解。只能通过方程式操作来实现。可以在任何频率下进行稳态分析,并且等效串联电阻也可以包含在建议的模型中。针对三个广泛使用的IPTS,评估了五个选定的电气特性,即源至负载增益,与负载无关的输出电压/电流特性,源处的功率因数,源相角的符号以及开/短路负载余量拓扑。而且,该技术被扩展到迷惑的情况,以验证该方法的一般使用。建立了电压源型电感器-电容器-电感器次级并联(V-LCL-P)拓扑的实验原型,以演示针对85 W和100 kHz时的完美调谐和微调情况提出的方法。

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