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Recent progress in the 110GHz ECRF system on JT-60U tokamak

机译:JT-60U托卡马克110GHz ECRF系统的最新进展

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The 1100GHz ECRF system on the JT-60U was started its operation with a 1 MW gyrotron in 1999. Two additional units were completed in 2000. The forth unit was available to generate the total power of 4 MW in 2001. The 1 MW gyrotron is featured by a collector potential depression structure and a diamond output window. The system has four evacuated waveguide lines in 50-60 m length with nine miter bends, each of which has a diamond window near the antenna. One of the recent progresses in this system is to up-grade the gyrotron, whose previous performance was limited less than 1 MW x 2 sec by a parasitic oscillation in it. Three of four gyrotrons were improved for suppression of the parasitic oscillation by installing a RF absorber in the beam tunnel. The second progress is to reduce the fluctuation in the acceleration voltage for the high power gyrotron operation. The main DC voltage power supply for the gyrotron is not regulated in the system. Before this progress, a large fluctuation in the DC voltage disturbed the stable gyrotron oscillation when four gyrotrons were simultaneously in operation. The third progress is to improve the transmission efficiency from 60-75% to 70-80% by re-adjusting the alignment of the waveguide lines. By these progresses, a generated power on the best unit has reached up to ~ 1.2 MW x 4.1 s (~1 MW x 5 s) corresponding to ~1MW (~0.8 MW) for the injected power into plasmas. The total injected power has been ~3 MWx2sec (~2.8MW x 3.6 s) using four units. A local profile control has been performed using two steerable antennas at this power level during a plasma discharge. The test of the feedback control of the steerable antenna linked with the perturbation of electron temperature has been successfully done for stabilization the MHD instability such as NTM.
机译:JT-60U上的1100GHz ECRF系统于1999年以1 MW的回旋管开始运行。2000年又完成了另外两个单元的安装。第四个单元可在2001年产生4 MW的总功率。具有收集器电位降低结构和钻石输出窗口的特征。该系统有四个长度为50-60 m的真空波导线,带有9个斜接弯头,每个弯头在天线附近都有一个菱形窗口。该系统的最新进展之一是对回旋加速器进行了升级,回旋加速器的先前性能由于其内部的寄生振荡而受到限制,不足1 MW x 2 sec。通过在射束隧道中安装RF吸收器,改进了四个回旋管中的三个,以抑制寄生振荡。第二个进展是减少大功率回旋管运行的加速电压波动。回旋器的主要直流电压电源在系统中未调节。在此之前,当同时运行四个回旋管时,直流电压的大波动会扰乱回旋管的稳定振荡。第三项进展是通过重新调整波导线的排列,将传输效率从60-75%提高到70-80%。通过这些进展,最佳单元上的发电功率已达到〜1.2 MW x 4.1 s(〜1 MW x 5 s),相当于向等离子体注入功率的〜1 MW(〜0.8 MW)。使用四个单元,总注入功率为〜3 MWx2sec(〜2.8MW x 3.6 s)。在等离子放电期间,使用两个可控天线以该功率水平执行了局部轮廓控制。为了稳定诸如NTM之类的MHD不稳定性,已经成功完成了与电子温度微扰有关的可转向天线的反馈控制测试。

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