SOREQ核管理委员会5mw感应存储设施的现状

A. Pokryvailo, I. Ziv, E. Shrivo
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引用次数: 4

摘要

介绍了一种用于电热化学枪点火的实验室重复感应存储电源(IPS)。八年前,它的设计目的是在一次射击中向ET负载提供500千焦的能量。本文给出了该设施的最新状况。IPS是基于电池的。最初,电池的峰值功率为5兆瓦,能够为圆柱形线圈充电至700千焦。观察并记录了多年来电池的退化情况。分析了带屏和不带屏的布鲁克斯型线圈的边缘场。得出结论:合理重量的屏蔽不能将杂散场降低到应单独屏蔽的电子器件的敏感水平以下。一项主要的设备改进是在开关领域。研制了一种功率为50ka, 7kv的紧凑型混合式重复开断开关(HOS)。该HOS可用于长时间充电的感应存储系统,该系统在许多应用中看起来很有前途,例如不间断电源,驱动ET负载,直流电路保护等。详细介绍了居屋的设计和测试。讨论了设计限制和权衡。商用真空断路器作为第一阶段。它提供了在电感充电期间的大电流承载能力。在需要的时刻,它被打开,并且电流被转移到由串联连接的两个栅极整流晶闸管(gct)组成的第二级;它们在几微秒内断开电流。为真空断路器恢复提供1 -2毫秒的暂停。开发了一种新的方法,可以提高全控制半导体器件的关断能力的数量级。它包括在精确定时栅极关断的辅助下向第二级注入逆电流。这种技术的主要优点是在第二阶段减少了半导体器件的数量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Status of 5 MW inductive storage facility at SOREQ NRC
A laboratory repetitive inductive storage power supply (IPS) for the ignition of an electrothermal chemical (ETC) gun is described. Eight years ago, it was designed for delivering to an ET load the energy of 500 kJ in a shot. This paper gives an updated status of this facility. The IPS is battery-based. Originally, the battery had a peak power of 5 MW and was able to charge a cylindrical coil to 700 kJ. The batteries degradation during the years was observed and documented. Fringe fields of Brooks-type coils with and without screens were analyzed. A conclusion is drawn that a screen of reasonable weight cannot reduce the stray field below a susceptibility level of electronic devices that should be shielded individually. A major facility improvement was in the field of switching. A compact hybrid repetitive opening switch (HOS) rated 50 kA, 7 kV was developed. This HOS can be used in long-charge inductive storage systems that look promising for many applications, such as uninterruptible power supplies, driving ET loads, protection of DC circuits, etc. The HOS design and testing is given in detail. The design limitations and trade-offs are discussed. A commercial vacuum circuit breaker serves as the first stage. It provides the high-current carrying capability during the inductor charge. At a desired moment, it is opened, and the current is transferred to the second stage comprising two gate commutated thyristors (GCTs) connected in series; they break the current during several microseconds. A pause of l-2 ms is provided for the vacuum breaker recovery. A novel approach allowing the enhancement of an order of magnitude of the turn-off capability of fully-controlled semiconductor devices was developed. It comprises the inverse current injection into the second stage assisted by a precisely timed gate turn-off. The main benefit of this technique is the reduction of the quantity of the semiconductor devices in the second stage.
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