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Temporally shaped current pulses on a two-cavity linear transformer driver system

机译:两腔线性变压器驱动器系统上的临时整形电流脉冲

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An important application for low impedance pulsed power drivers is creating high pressures for shock compression of solids. These experiments are useful for studying material properties under kilobar to megabar pressures. The Z driver at Sandia National Laboratories has been used for such studies on a variety of materials, including heavy water, diamond, and tantalum, to name a few. In such experiments, it is important to prevent shock formation in the material samples. Shocks can form as the sound speed increases with loading; at some depth in the sample a pressure significantly higher than the surface pressure can result. The optimum pressure pulse shape to prevent such shocks depends on the test material and the sample thickness, and is generally not a simple sinusoidal-shaped current as a function of time. A system that can create a variety of pulse shapes would be desirable for testing various materials and sample thicknesses. A large number of relatively fast pulses, combined, could create the widest variety of pulse shapes. Linear transformer driver systems, whose cavities consist of many parallel capacitor-switch circuits, could have considerable agility in pulse shape. We will show results from initial experiments in pulse shaping on a system with two inductively isolated cavities in series. Each cavity contains forty pairs of high voltage capacitors and forty gas-insulated spark gap switches. The capacitors are arranged in a bipolar configuration; the spark gap switches must withstand twice the capacitor voltage. A pulse applied to the switch trigger electrodes initiate closure of each switch. We have arranged triggering in groups of ten switches in each cavity, for a total of eight separate trigger points in the system. The fundamental rise time of each capacitor circuit is roughly 70 nanoseconds; this defines the fastest possible output pulse transition time. The pulse rise time can be made longer, and given features on the rise, by delaying triggers to- some of the switches. We will show initial experimental results from tests of the two-cavity system.
机译:低阻抗脉冲功率驱动器的重要应用是为固体的冲击压缩创造高压。这些实验对于研究千巴至兆巴压力下的材料性能很有用。桑迪亚国家实验室的Z驱动器已用于各种材料的此类研究,包括重水,钻石和钽,仅举几例。在这样的实验中,重要的是要防止在材料样品中形成冲击。声速随负载增加而形成冲击。在样品的某个深度处,可能会产生明显高于表面压力的压力。防止此类冲击的最佳压力脉冲形状取决于测试材料和样品厚度,通常不是随时间变化的简单正弦形电流。对于测试各种材料和样品厚度,需要一种能够产生多种脉冲形状的系统。大量相对较快的脉冲相结合,可以产生最广泛的脉冲形状。腔体由许多并联的电容器开关电路组成的线性变压器驱动器系统在脉冲形状方面可能具有相当大的敏捷性。我们将显示在两个串联的电感隔离腔的系统上进行脉冲整形的初步实验结果。每个腔包含四十对高压电容器和四十个气体绝缘的火花隙开关。电容器以双极配置排列;火花隙开关必须承受两倍于电容器的电压。施加到开关触发电极的脉冲启动每个开关的闭合。我们在每个腔中以十个开关为一组安排了触发,在系统中总共有八个单独的触发点。每个电容器电路的基本上升时间约为70纳秒。这定义了最快的输出脉冲转换时间。通过延迟某些开关的触发,可以使脉冲上升时间更长,并赋予上升特性。我们将展示两腔系统测试的初步实验结果。

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