High-power test of a C-band linear accelerating structure with an RFSoC-based LLRF system

无线电频率 物理 射频功率放大器 直线粒子加速器 射频探头 功率(物理) 粒子加速器 电子工程 电气工程 计算机科学 CMOS芯片 电信 光电子学 放大器 梁(结构) 光学 工程类 量子力学
作者
Chao Liu,Larry Ruckman,Ryan Herbst,D. D. Palmer,V. Borzenets,Ankur Dhar,Amirari Diego,R. Agustsson,R. Stephen Berry,Emilio A. Nanni
出处
期刊:Review of Scientific Instruments [American Institute of Physics]
卷期号:96 (4) 被引量:2
标识
DOI:10.1063/5.0258520
摘要

Normal conducting linear particle accelerators consist of multiple rf stations with accelerating structure cavities. Low-level rf (LLRF) systems are employed to set the phase and amplitude of the field in the accelerating structure and to compensate for the pulse-to-pulse fluctuation of the rf field in the accelerating structures with a feedback loop. The LLRF systems are typically implemented with analog rf mixers, heterodyne-based architectures, and discrete data converters. There are multiple rf signals from each of the rf stations, so the number of rf channels required increases rapidly with multiple rf stations. With a large number of rf channels, the footprint, component cost, and system complexity of the LLRF hardware will increase significantly. To meet the design goals of being compact and affordable for future accelerators, we have designed the next-generation LLRF (NG-LLRF) with a higher integration level based on RFSoC technology. The NG-LLRF system samples rf signals directly and performs rf mixing digitally. The NG-LLRF has been characterized in loopback mode to evaluate the performance of the system and has also been tested with a standing-wave accelerating structure, a prototype for the Cool Copper Collider (C3) with a peak rf power level up to 16.45 MW. The loopback test demonstrated amplitude fluctuation below 0.15% and phase fluctuation below 0.15°, which are considerably better than the requirements of C3. The rf signals from the different stages of the accelerating structure at different power levels are measured by the NG-LLRF, which will be critical references for the control algorithm designs. The NG-LLRF also offers flexibility in waveform modulation, so we have used rf pulses with various modulation schemes, which could be useful for controlling some of the rf stations in accelerators. In this paper, the high-power test results at different stages of the test setup will be summarized, analyzed, and discussed.

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