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Numerical Simulation of Azimuthal Uniformity of Injection Currents in Single-Point-Feed Induction Voltage Adders

机译:单点进给感应电压加法器中注入电流方位均匀性的数值模拟

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In order to investigate the injection current uniformity around the induction cell bores, two fully electromagnetic (EM) models are respectively established for a single-stage induction cell and an induction voltage adder (IVA) with three cells stacked in series, without considering electron emission. By means of these two models, some factors affecting the injection current uniformity are simulated and analyzed, such as the impedances of adders and loads, cell locations, and feed timing of parallel driving pulses. Simulation results indicate that higher impedances of adder and loads are slightly beneficial to improve injection current uniformity. As the impedances of adder and loads increase from 5 Omega to 30 Omega, the asymmetric coefficient of feed currents decreases from 10.3% to 6.6%. The current non-uniformity within the first cell is a little worse than that in other downstream cells. Simulation results also show that the feed timing would greatly affect current waveforms, and consequently cause some distortion in pulse fronts of cell output voltages. For a given driving pulse with duration time of 70-80 ns, the feed timing with a time deviation of less than 20 ns is acceptable for the three-cell IVAs, just causing the rise time of output voltages to increase about 5 ns at most and making the peak voltage decrease by 3.5%.
机译:为了研究感应电池孔周围的注入电流均匀性,分别为单级感应电池和三个电池串联堆叠的感应电压加法器(IVA)建立了两个全电磁(EM)模型,而无需考虑电子发射。通过这两个模型,对影响注入电流均匀性的一些因素进行了仿真和分析,例如加法器和负载的阻抗,单元位置以及并行驱动脉冲的馈电时序。仿真结果表明,加法器和负载的较高阻抗对改善注入电流均匀性略有好处。随着加法器和负载的阻抗从5Ω增加到30Ω,馈电电流的不对称系数从10.3%降低到6.6%。第一个单元中的当前不均匀性比其他下游单元中的不均匀性要差一些。仿真结果还表明,馈电时序将极大地影响电流波形,从而导致电池输出电压的脉冲前沿出现一些失真。对于持续时间为70-80 ns的给定驱动脉冲,三单元IVA可接受的时间偏差小于20 ns的馈电时序,仅会使输出电压的上升时间最多增加约5 ns。使峰值电压降低3.5%。

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