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The Influence of an External Permanent Magnetic Field on the Dynamics of Plasma Channels in a Radial Pseudospark Switch

机译:外部永久磁场对径向伪火花开关中等离子通道动力学的影响

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摘要

High-current gas discharges can reach current densities of 10{sup}8 A/cm{sup}2 in order of magnitude and, therefore, damage the electrodes of nearly all types of low-pressure gas discharge switches. In pseudospark switches with radial geometry, the total current is divided by the number of radial channels and so the current per channel is strongly reduced. However, because of electromagnetic forces the plasma channels attract themselves and pinch together already in the first maximum of the switching current. Therefore, the main advantage of the radial pseudospark switch, the division of the total current, is lost. In this paper, a basic idea of how this movement of the plasma channels can be suppressed, will be introduced. Strong permanent magnets of different types (polarization B{sub}x of type A: 0.48 T; type B: 1.31 T; and type C: 1.88 T) are attached to the pseudospark switch near the bores of the hollow cathode. The most effective way to apply the magnets was to put them face to face with the bores of the hollow cathode with the center line of the bores and the cylindric magnets coinciding. In this case, the magnetic field looks like a magnetic bottle viewed along the charge carriers path. The magnetic fields capture the plasma channels for a short time and so the pinch effect is delayed until the first maximum of current is over. The investigated pseudospark switch was a radial switch with three channels. The charging voltage was 10 kV and the discharge capacity was 2.2 μ F, resulting in a total discharge current of 40 kA, respectively, 13.3 kA per channel. In the switch under consideration, the pinching is fulfilled after 800 ns when no magnets are applied. The smallest possible distance between the front of the magnet and the end of the discharge channel was 2 mm. The strength of the magnetic field in this distance with magnets of type A, B, and C was 390,1065, and 1525 mT, respectively, and the pinching was delayed for 400, 2000, and 1600 ns, accordingly.
机译:大电流气体放电按量级可以达到10 {sup} 8 A / cm {sup} 2的电流密度,因此会损坏几乎所有类型的低压气体放电开关的电极。在具有径向几何形状的伪火花开关中,总电流除以径向通道的数量,因此每个通道的电流会大大降低。但是,由于电磁力,等离子通道在开关电流的第一个最大值中已经吸引自己并相互挤压在一起。因此,失去了径向伪火花开关的主要优点,即总电流的分配。在本文中,将介绍如何抑制等离子通道运动的基本思想。在空心阴极的孔附近,将不同类型的强永磁体(A型极化B {sub} x:A型:0.48 T; B型:1.31 T; C型:1.88 T)固定到伪火花开关上。施加磁铁的最有效方法是使它们与空心阴极的孔面对面,且孔的中心线与圆柱状磁铁重合。在这种情况下,磁场看起来像沿电荷载流子路径观察到的磁性瓶。磁场会在短时间内捕获等离子体通道,因此收缩效应会延迟到电流的第一个最大值结束。研究的伪火花开关是具有三个通道的径向开关。充电电压为10 kV,放电容量为2.2μF,总放电电流分别为40 kA,每通道13.3 kA。在所考虑的开关中,如果没有施加磁铁,则在800 ns后完成收缩。磁铁的前部与放电通道末端之间的最小距离为2 mm。使用A,B和C型磁体在此距离内的磁场强度分别为390、1065和1525 mT,因此收缩时间分别延迟了400、2000和1600 ns。

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