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RF Generator Interlock by Plasma Grid Bias Current - an Alternate to H_α Interlock

机译:RF发电机互锁等等离子体网格偏置电流 - 与H_α联锁的交替

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ROBIN is inductively coupled plasma (ICP) based negative hydrogen ion source, operated with a 100kW, 1MHz Tetrode based RF generator (RFG). Inductive plasma ignition by the RFG in ROBIN is associated with electron seeding by a hot filament and a gas puff. RFG is triggered by the control system to deliver power just at the peak pressure of the gas puff. Once plasma is ignited due to proper impedance matching, a bright light, dominated by H_α (~656nm wavelength) radiation is available inside RF driver which is used as a feedback signal to the RFG to continue its operation. If impedance matching is not correct, plasma is not produced due to lack of power coupling and bright light is not available. During such condition, reflected RF power may damage the RFG. Therefore, to protect the RFG, it needs to be switched off automatically within 200ms by the control system in such cases. This plasma light based RFG interlock is adopted from BATMAN ion source. However, in case of vacuum immersed RF ion source in reactor grade NBI system, such plasma light based interlock may not be feasible due to lack of adequate optical fiber interfaces. In reactor grade NBI system, neutron and gamma radiations have impact on materials which may lead to frequent maintenance and machine down time. The present demonstration of RFG interlock by Bias Current (BC) in ROBIN testbed gives an alternate option in this regard. In ROBIN, a bias plate (BP) is placed in the plasma chamber near the plasma grid (PG). BP is electrically connected to the plasma chamber wall of the ion source and PG is isolated from the wall. A high current ~85 A direct current (DC) power supply of voltage in the range of 0 - 33V is connected between the PG and the BP in such a way that PG can be biased positively with respect to the BP or plasma chamber. This arrangement is actually made to absorb electrons and correspondingly reduce co-extracted electron current during beam extraction. However, in case of normal plasma operation, BC rises due to the presence of plasma electrons, almost in the same timescale as plasma light detection system and so, BC signal can also be used as RFG interlock. The BC signal transmission is through optical isolation to reduce noise interference with the signal. The response of the current monitoring signal available from the PG power supply of ROBIN is quite slow (in the order of few tens of milliseconds). Therefore, a fast response current detection electronic circuit having the ability to generate a PG current detection pulse with adjustable threshold set point has been developed and integrated with ROBIN, and the above concept has been demonstrated in ROBIN recently. The present paper will discuss this experimental activity and its results.
机译:ROBIN感应耦合等离子体(ICP)基于负氢离子源,具有100kW的,1MHz的四极管基于RF发生器(RFG)操作。通过在罗宾RFG感应等离子体点火用热灯丝和气体喷与电子播种相关联。 RFG通过控制系统触发,只是在喷气的峰值压力传递动力。一旦等离子体被点燃,由于适当的阻抗匹配,明亮的光,由主导H_α(〜656nm的波长)的辐射是被用作反馈信号,以将RFG继续其操作可用的内部RF驱动器。如果阻抗匹配是不正确的,等离子体不会产生由于缺乏功率耦合和明亮的光的不可用。在这样的情况下,反射的RF功率可能会损坏RFG。因此,为了保护RFG,它需要被自动的200ms内由控制系统在这样的情况下关闭。该等离子体光基于RFG联锁从蝙蝠侠离子源通过。然而,在反应器级NBI系统,真空浸渍RF离子源的情况下,这种基于等离子体光联锁可能不是由于缺乏足够的光纤接口可行的。在反应器级NBI系统,中子和γ射线对材料,这可能导致频繁的维护和停机时间的影响。由偏置电流(BC)中的Robin试验台RFG互锁的本示范给出了这方面的替代选项。在罗宾,一个偏压板(BP)被放置在等离子体格栅(PG)附近的等离子体腔室中。 BP电连接到所述离子源的等离子体室壁和PG从壁隔离。在范围0电压的高电流〜85的直流(DC)电源 - 33V在这样一种方式,PG能够积极相对于所述BP或等离子体室被偏压连接在PG和BP之间。这种安排实际上是由吸收电子并相应地减少束提取期间共萃取的电子电流。然而,在正常血浆操作的情况下,BC上升由于等离子体电子的存在,几乎在同一时间刻度作为等离子体光检测系统等,BC信号也可以被用作RFG联锁。在BC信号的传输是通过光学隔离,以减少与信号中的噪声干扰。可从ROBIN的PG电源的电流监控信号的响应是相当慢(在几十毫秒的量级)。因此,具有以产生具有可调整的阈值设置点的PG电流检测脉冲的能力的快速响应电流检测电子电路已被开发,并与集成ROBIN,以及上述概念已在ROBIN最近已证明。本论文将讨论这个实验活动及其结果。

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