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Improved Turn-on Characteristics of Fast High Current Thyristors

机译:快速大电流晶闸管的改善的导通特性

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摘要

The beam dumping system of CERN's Large Hadron Collider (LHC) is equipped with fast solid state closing switches, designed for a hold-off voltage of 30 kV and a quasi half sine wave current of 20 kA, with 3 ms rise time, a maximum di/dt of 12 kA/ms and 2 ms fall time. The design repetition rate is 20 s. The switch is composed of ten Fast High Current Thyristors (FHCT’s), which are modified symmetric 4.5 kV GTO thyristors of WESTCODE. Recent studies aiming at improving the turn-on delay, switching speed and at decreasing the switch losses, have led to test an asymmetric not fully optimised GTO thyristor of WESTCODE and an optimised device of GEC PLESSEY Semiconductor (GPS), GB. The GPS FHCT, which gave the best results, is a non irradiated device of 64 mm diameter with a hold-off voltage of 4.5 kV like the symmetric FHCT. Tests results of the GPS FHCT show a reduction in turn-on delay of 40 % and in switching losses of almost 50 % with respect to the symmetric FHCT of WESTCODE. The GPS device can sustain an important reverse current during a short period. This eliminates the need for an anti-parallel diode stack in the final switch. Extrapolation of the test results onto the final switch result in a turn-on delay of 600 ns and 6 J total conduction losses from turn-on to 20 kA peak current. Further tests on the GPS FHCT at 4.4 kV, 60 kA peak current and a repetition rate of 10 s resulted in a di/dt of 50 kA/ms with a turn-on delay of 700 ns. These encouraging results, obtained with a slightly modified standard device and based on several hundred thousand discharges, open a wide field of fast high current, high voltage applications where presently thyratrons and ignitrons are used.
机译:CERN的大型强子对撞机(LHC)的光束倾卸系统配有快速固态闭合开关,设计用于30 kV的保持电压和20 kA的准半正弦波电流,上升时间为3 ms,最大di / dt为12 kA / ms,下降时间为2 ms。设计重复速率为20 s。该开关由十个快速大电流晶闸管(FHCT)组成,它们是WESTCODE的对称4.5 kV GTO对称晶闸管。旨在改善导通延迟,开关速度和降低开关损耗的最新研究已导致测试了WESTCODE的非对称,未完全优化的GTO晶闸管和德国的GEC PLESSEY半导体(GPS)的优化器件。 GPS FHCT效果最佳,它是一种直径为64 mm的非辐照设备,其保持电压为4.5 kV,类似于对称FHCT。 GPS FHCT的测试结果表明,相对于WESTCODE的对称FHCT,接通延迟减少了40%,开关损耗减少了近50%。 GPS设备可以在短时间内承受重要的反向电流。这样就无需在最终开关中使用反并联二极管堆栈。将测试结果外推到最终开关上会导致600 ns的导通延迟和从导通到20 kA峰值电流的6 J总传导损耗。在4.4 kV,60 kA峰值电流和10 s的重复频率下对GPS FHCT进行进一步测试,得出di / dt为50 kA / ms,导通延迟为700 ns。这些令人鼓舞的结果,是通过对标准器件进行了稍加修改并基于数十万次放电而获得的,打开了目前使用闸流管和乙腈的快速高电流,高电压应用的广阔领域。

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