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Validation of 500-kW/1000-s operation of 5-GHz klystron for KSTAR LHCD system

机译:验证用于KSTAR LHCD系统的5 GHz速调管的500 kW / 1000 s运行

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In this study, a klystron for the KSTAR lower hybrid current drive (LHCD) system was developed as a prototype for a 5 GHz, 500 kW CW operation that is aimed to meet the requirement of the ITER LHCD system as well. Before the 2012 KSTAR campaign, the prototype klystron was validated only for 350 kW CW operation. The weakest part of the klystron for 500 kW CW operation was the RF output window failure due to a thermal stress caused by the temperature gradient. The klystron was equipped with two RF windows, each of which should transmit 250 kW power. Prior to the full performance test of the klystron, the performance of the test RF windows that were identical to those mounted on the klystron was tested with half of the klystron's full power. The temperature increase in the test RF windows was monitored using an IR camera. The temperature difference, Delta T-ce, between the center and edge of the test window at 250-kW 1000-s transmitting power was predicted to be 23 degrees C, which is smaller than the safe Delta T-ce, which is 50 degrees C according to the manufacturer. Based on the result of the test window measurement, 500-kW 1000-s operation of the klystron was conducted successfully. The klystron output power characteristics depending on the phase of load reflection VSWR 1.4:1 were investigated. The klystron generated stable power on a load VSWR of 1.4:1 at various phases. The output power at the worst phase was 380 kW. Details of the IR-imaging setup are discussed and the results obtained are presented.
机译:在这项研究中,针对KSTAR较低混合电流驱动(LHCD)系统的速调管被开发为5 GHz,500 kW CW运行的原型,旨在也满足ITER LHCD系统的要求。在2012年KSTAR战役之前,速调管原型仅经过350 kW连续波运行验证。速调管在500 kW CW运行中最弱的部分是由于温度梯度导致的热应力导致RF输出窗口故障。速调管配有两个RF窗口,每个RF窗口应传输250 kW功率。在进行速调管的全面性能测试之前,先用速调管的全部功率的一半测试与安装在速调管上的射频窗相同的测试RF窗口的性能。使用IR摄像机监控测试RF窗口中的温度升高。在250-kW 1000-s发射功率下,测试窗口的中心和边缘之间的温度差Delta T-ce预计为23摄氏度,这比安全Delta T-ce的50度要小。 C根据制造商。根据测试窗口测量的结果,速调管成功进行了500-kW 1000s的操作。研究了速调管输出功率特性,该特性取决于负载反射VSWR 1.4:1的相位。速调管在不同阶段的负载VSWR为1.4:1时产生稳定的功率。最坏阶段的输出功率为380 kW。讨论了红外成像设置的细节,并介绍了获得的结果。

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