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FPGA-Based Heavy-Ion Beam Trajectory Estimation and Control for Superconducting RF Cavity Resonator Applications

机译:基于FPGA的超导RF腔谐振器应用的重离离子束轨迹估计和控制

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The manipulation of heavy ion beams by applying fluctuating external electric and magnetic fields is discussed here. The critical beam parameters that are identified with beam trajectory are identified and their properties are discussed. Most of the beam measurements are based on the electromagnetic fields induced by the beam. The analog signals obtained from the sensors are amplified and shaped before they were converted into numerical values, which are then further treated in order to extract meaningful machine parameter measurements. The primary goal is to calculate the ion beam position and degree of spatial coherence. Beam position monitors (BPM) are used for this purpose. The pickup (PU) points were defined to collect the horizontal and vertical difference signals, that in turn were used to calculate the position and trajectory. A system of quadrupoles, modified quadrupoles and octupoles was replacably used for confining and focusing the beam. The BPM readings were modeled based on the readings from simulated ion motion in MATLAB. These results were further processed with noise and digitized and fed into an FPGA implementation of the Kalman filter for estimation of the ion trajectory.
机译:这里讨论了通过施加波动的外部电场和磁场来操纵重离子束。用光束轨迹识别的临界光束参数被识别,并讨论其性质。大多数光束测量基于由光束引起的电磁场。在转换成数值之前,从传感器获得的模拟信号被放大并形状,然后进一步处理,以便提取有意义的机器参数测量。主要目标是计算离子束位置和空间相干程度。光束位置监视器(BPM)用于此目的。定义拾取器(PU)点以收集水平和垂直差信号,又用于计算位置和轨迹。 Quadrupoles,修改的四轮摩尔和Octupoles的系统可替换用于限制和聚焦光束。基于Matlab中的模拟离子运动的读数来建模BPM读数。通过噪声进一步处理这些结果并向卡尔曼滤波器的FPGA实现进行了数字化,以估计离子轨迹。

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