Maalberg Andrei, Kuntzsch Michael, Petlenkov Eduard
Helmholtz-Zentrum Dresden-Rossendorf, 01328 Dresden, Germany.
Department of Computer Systems, Tallinn University of Technology, 19086 Tallinn, Estonia.
Sensors (Basel). 2022 Aug 19;22(16):6236. doi: 10.3390/s22166236.
Control applications targeting fast industrial processes rely on real-time feasible implementations. One of such applications is the stabilization of an electron bunch arrival time in the context of a linear accelerator. In the past, only the electric field accelerating the electron bunches was actively controlled in order to implicitly stabilize the accelerated electron beam. Nowadays, beam properties are specifically measured at a target position and then stabilized by a dedicated feedback loop acting on the accelerating structures. This dedicated loop is usually referred to as a beam-based feedback (BBF). Following this, the control system of the electron linear accelerator for beams with high brilliance and low emittance (ELBE) is planned to be upgraded by the BBF, and the problem of implementing a designed control algorithm becomes highly relevant. In this work, we propose a real-time feasible implementation of a high-order H2 regulator based on a field-programmable gate array (FPGA). By presenting simulation and synthesis results made in hardware description language (HDL) VHDL, we show that the proposed digital solution is fast enough to cover the bunch repetition rates frequently used at ELBE, such as 100 kHz. Finally, we verify the implementation by using a dedicated FPGA testbench.
针对快速工业过程的控制应用依赖于实时可行的实现方式。其中一种应用是在线性加速器的背景下稳定电子束团的到达时间。过去,为了隐式地稳定加速后的电子束,仅对加速电子束团的电场进行主动控制。如今,在目标位置专门测量束流特性,然后通过作用于加速结构的专用反馈回路进行稳定。这个专用回路通常被称为基于束流的反馈(BBF)。在此之后,计划通过BBF对高亮度和低发射度电子束(ELBE)的电子直线加速器的控制系统进行升级,而实现设计好的控制算法的问题变得高度相关。在这项工作中,我们提出了一种基于现场可编程门阵列(FPGA)的高阶H2调节器的实时可行实现方式。通过展示用硬件描述语言(HDL)VHDL进行的仿真和综合结果,我们表明所提出的数字解决方案足够快,能够涵盖ELBE经常使用的束团重复率,例如100kHz。最后,我们使用专用的FPGA测试平台验证了该实现方式。