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Effects of control voltage saturation and sensor noise on the resistive wall mode feedback in ITER

机译:控制电压饱和度和传感器噪声对ITER中电阻壁模式反馈的影响

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Active control of the n = 1 (n is the toroidal mode number) resistive wall mode (RWM) is numerically studied for an ITER 9 MA plasma designed for the advanced scenario. The large L/R response time of the active coils in ITER results in a significant reduction of the open-loop RWM growth rate, when the active coils act as passive conductors. For a typical RWM, the linear flux-to-voltage control scheme, with proportional controller only, yields complex closed loop eigenvalue (in the absence of plasma flow and drift kinetic effects), before the mode is fully stabilized by feedback. Without sensor signal noise, the RWM feedback system can tolerate a low level of control voltage saturation, typically in the order of 1 V in ITER. The presence of high-frequency sensor signal noise, however, can significantly increase the tolerable level of control power saturation. For a plasma close to the ITER target, and with the feedback gain well beyond the critical value for the linear closed loop stability, the tolerable voltage saturation level is predicted to be about 4V at the sensor signal noise level (standard deviation) of 0.25 G, and about 40V at noise level of I G. A proportional-derivative controller is beneficial for ideal linear control systems as well in systems with voltage limitation. In the presence of both voltage limitation and sensor noise, the derivative action may make it more difficult to be stabilize the RWM in ITER.
机译:针对为高级方案设计的ITER 9 MA等离子体,对n = 1(n是环形模数)的主动控制电阻壁模式(RWM)进行了数值研究。当有源线圈充当无源导体时,ITER中有源线圈的大L / R响应时间会导致开环RWM增长率的显着降低。对于典型的RWM,在仅通过反馈使模式完全稳定之前,仅具有比例控制器的线性磁通-电压控制方案会产生复杂的闭环特征值(在没有等离子体流动和漂移动力学影响的情况下)。在没有传感器信号噪声的情况下,RWM反馈系统可以承受较低的控制电压饱和度,通常在ITER中约为1V。但是,高频传感器信号噪声的存在会显着提高控制功率饱和的可容忍水平。对于接近ITER目标的等离子体,并且其反馈增益远超过线性闭环稳定性的临界值,在0.25 G的传感器信号噪声水平(标准偏差)下,可预测的容许电压饱和水平约为4V。 ,在I G噪声水平下约为40V。比例微分控制器对于理想的线性控制系统以及具有电压限制的系统都是有益的。在电压限制和传感器噪声同时存在的情况下,微分作用可能会使稳定ITER中的RWM变得更加困难。

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