用于驱动高阻抗负载的小型MFCG

J. Hernandez, A. Neuber, J. Dickens, M. Kristiansen
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引用次数: 0

摘要

末端启动小体积磁通压缩发生器(MFCG)的能量密度(按重量或体积计算)比具有相似放电时间特性的电容储能至少高一个数量级。由于主要能量以HE的形式内置于MFCG中,如果必要的主要能量源和充电电源包括在重量/体积平衡中,电容器将失去更多的接地。然而,单螺旋结构的简单MFCGs只能在低电感负载中产生高输出能量,从而在仅几个10kv的电压水平下产生几个100ka的电流。许多脉冲功率器件需要更小的电流,但相当高的电压水平。在公开文献中已经报道了两种实现更高输出电压水平的方法,这两种方法都是利用两级MFCGs。第一种采用更传统的变压器耦合;第二种依赖于动态变压器或磁通捕获方案。虽然传统的变压器耦合在理论上具有更好的效率,但我们选择了后一种方法来设计发电机,主要是因为它需要较少的组件。我们的发电机总长度为250毫米,螺旋内径为51毫米,用不同尺寸的特氟龙绝缘绞合线缠绕,从AWG 12到AWG 22。我们目前已经实现了/spl sim/ 8的能量增益,并将基于实验电流/电压波形讨论发电机的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Small sized MFCG for driving a high impedance load
End-initiated small volume magnetic flux compression generators (MFCG) have at least one order of magnitude higher energy density (by weight or volume) than capacitive energy storage with similar discharge time characteristics. Since the prime energy is built into the MFCG in form of HE, the capacitor looses even more ground if the necessary prime energy source and the charging supply are included in the weight/volume balance. However, simple MFCGs with a single helix produce high output energy only into low inductance loads, thus producing several 100 kA of current at a voltage level of only a few 10 kV. Many pulsed power devices require less current but a considerably higher voltage level. Two approaches for achieving a higher output voltage level, both utilizing two staged MFCGs, have been reported in the open literature. The first employs a more traditional transformer coupling; the second relies on a dynamic transformer or flux-trapping scheme. Although the traditional transformer coupling has theoretically the better efficiency, we chose the latter approach for our generator design, mostly since it requires a smaller number of components. Our generator has a total length of 250 mm, a helix inner diameter of 51 mm, and is wound with Teflon insulated stranded wire of different sizes in the range from AWG 12 to AWG 22. We have presently achieved an energy gain of /spl sim/ 8 and will discuss the generator performance based on experimental current/voltage waveforms.
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