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Long pulse test of the KSTAR ICRF antenna with water-cooling

机译:带水冷的KSTAR ICRF天线的长脉冲测试

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The KSTAR ICRF (ion cyclotron range of frequency) antenna is being developed and tested for a high-power and long pulse operation. In the previous test campaign, the standoff capability was increased to 31.2 kV_p (kV peak) from 24.3 kV_p for a 300s pulse duration by applying water-cooling to the ICRF antenna, but it was limited by an overheating of the vacuum feedthrough (VF) and the transmission line of the unmatched section which did not have any cooling channel. Prior to the RF test campaign in 2005, water-cooling system for the VF and the transmission line of the unmatched section was developed to remove the dissipated RF heat load. For a cooling of the central conductors of the VF and transmission line, the joining part of the two transmission lines was carefully designed and fabricated to ensure no water leakage and to have a tight electrical contact. During the RF testing, a cooling water was fed by a coaxial tube inside the central conductors and it flowed out through the space between the center conductor and the coaxial tube. Outer conductors near the current maximum were also water-cooled by using Al cooling blocks which had a cooling channel inside them. The high voltage tests with long pulse durations were performed at a frequency of 30 MHz. A bottom half of the current strap-1 was connected to the RF source and the other three straps were shorted at the input ports. The achieved standoff voltage was 41.3 kV_p for a 300 s operation, which was much higher than that of the previous campaign. The maximum standoff voltage for a 20 s pulse was 46.0 kV_p. A voltage of 41.3kV_p is equivalent to a heating power of 7.4 MW in the case of a plasma loading of 6 Ω/m. To simulate a steady state operation, much longer pulse tests were also performed. As a result, we achieved standoff voltages of 35.0 kV_p for 600 s and 27.9 kV_p for 1000 s.
机译:正在开发KSTAR ICRF(频率的离子回旋加速器范围)天线,并进行了大功率和长脉冲操作的测试。在先前的测试活动中,通过对ICRF天线进行水冷,在300s的脉冲持续时间内,隔离能力从24.3 kV_p增加到31.2 kV_p(kV峰值),但由于真空馈通(VF)过热而受到限制以及没有冷却通道的不匹配部分的传输线。在2005年进行RF测试之前,开发了用于VF和不匹配部分传输线的水冷系统,以消除耗散的RF热负荷。为了冷却VF和传输线的中心导体,精心设计和制造了两条传输线的连接部分,以确保不漏水并保持紧密的电接触。在射频测试期间,冷却水由中心导体内部的同轴管供入,并通过中心导体和同轴管之间的空间流出。也通过使用内部具有冷却通道的Al冷却块对接近当前最大值的外部导体进行水冷。在30 MHz的频率下执行了长脉冲持续时间的高压测试。当前带子1的下半部分连接到RF源,其他三个带子在输入端口处短路。在300 s的操作中,达到的隔离电压为41.3 kV_p,远高于先前的活动。 20 s脉冲的最大隔离电压为46.0 kV_p。在等离子负载为6Ω/ m的情况下,41.3kV_p的电压等效于7.4 MW的加热功率。为了模拟稳态操作,还执行了更长的脉冲测试。结果,我们达到了600 s的35.0 kV_p和1000 s的27.9 kV_p的隔离电压。

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