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FPGA-based interlock system for the chopper of the Linear IFMIF prototype accelerator injector

机译:用于线性IFMIF原型加速器喷油器斩波器的基于FPGA的互锁系统

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The Linear IFMIF (International Fusion Materials Irradiation Facility) Prototype Accelerator (LIPAc) injector consists of a 140 mA proton/deuteron source, its associated low energy beam transport line (LEBT) as well as ancillaries such as water cooling skid, vacuum groups, High Voltage Power Supplies (HVPS), etc. A specific element, the beam "Chopper", was included in the LEBT to generate short ((similar to)100 mu s) and sharp-edged beam pulses ((similar to)10 mu s) and allow the use of interceptive diagnostics in the high energy part of the LIPAc during commissioning phases of the Radio Frequency Quadrupole RFQ (5 MeV) and the Superconducting Radio Frequency SRF Linac (9 MeV). The chopper was designed to operate in pulsed mode with very sharp rise and fall times, meaning the chopper will be used to "cut" the long rise time of the source as well as the fall time of the beam pulse.The chopper thermal screen has not been designed to withstand very high beam power (i.e., beam length and duty cycle need to be monitored); in addition, the chopper HVPS needs to be monitored in real time to detect a possible trip and extract the beam before downstream devices are damaged. For these applications, standard PLC based interlocks are too slow; therefore, faster solutions are envisaged.The proposed solution for the required interlock system is based on COTS technology with XILINX FPGAs using RIO (Reconfigurable Input/Output) technology from National Instruments (CompactRIO platform). The paper discusses the implementation of the interlock system, the response times of the proposed architecture and the fitness of the technology. Additionally, the system can be integrated into the IFMIF control system using EPICS as a standalone solution.
机译:线性IFMIF(国际聚变材料辐照设施)原型加速器(LIPAc)注射器由140 mA质子/氘核离子源,与其相关的低能束流传输线(LEBT)以及诸如水冷撬,真空组,高真空等辅助设备组成。电压电源(HVPS)等。LEBT中包含一个特定的元素,即“斩波器”光束,以生成短((类似于)100 s s)和尖锐的光束脉冲((类似于)10 s s。 ),并允许在射频四极杆RFQ(5 MeV)和超导射频SRF直线加速器(9 MeV)的调试阶段中,在LIPAc的高能部分使用拦截式诊断。斩波器设计为以脉冲模式工作,具有非常陡峭的上升和下降时间,这意味着该斩波器将用于“切断”光源的长上升时间以及光束脉冲的下降时间。没有设计成能够承受很高的光束功率(即,需要监控光束长度和占空比);此外,斩波器HVPS需要实时监控,以检测可能的跳闸并在下游设备损坏之前提取光束。对于这些应用,基于标准PLC的互锁速度太慢。针对所需联锁系统的建议解决方案是基于COTS技术和XILINX FPGA,它们使用了National Instruments(CompactRIO平台)的RIO(可重配置输入/输出)技术。本文讨论了联锁系统的实现,所提出的体系结构的响应时间以及技术的适用性。此外,该系统可以使用EPICS作为独立解决方案集成到IFMIF控制系统中。

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