首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Low-level radio-frequency system upgrade for the IMP Heavy Ion Reach Facility in Lanzhou (HIRFL)
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Low-level radio-frequency system upgrade for the IMP Heavy Ion Reach Facility in Lanzhou (HIRFL)

机译:兰州IMP重离子可达设施(HIRFL)的低级射频系统升级

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The upgrade of the Heavy Ion Research Facility in Lanzhou (HIRFL) began in 2000 to enhance the performance in nuclear physics, atomic physics, irradiative materials, and biology, cancer therapy using heavy ions and hadron physics. The upgraded program of HIRFL aimed to provide all ions from protons to uranium for higher beam intensity. As one of subprojects upgrade program in HIRFL, the low-level radio frequency (LLRF) system is also completely redesigned to better stabilize the beam acceleration parameters during the machine operation.The purpose of this article is to describe the design and implementation of the new fully digital LLRF system for six sets of radio frequency (RF) systems at the HIRFL. All components, including the quadrature demodulation, phase and amplitude detectors, phase shifter, and proportional integral (PI) loop filter, were designed in detail and realized in field programmable gate array (FPGA). A special synchronous RF source was designed to provide a phase reference for the different RF systems. A new tuning system was designed to ensure that the RF system remains in a good working state. An economical compensation method for the temperature drift in the pick-up cables was designed to improve the control accuracy of the system. The new LLRF systems have passed a 24 h high power test on the HIRFL cavities. The phase stabilization control accuracy was vertical bar Delta phi vertical bar = 0.2 degrees, and the amplitude fluctuation was vertical bar Delta A vertical bar = 2 * 10(-3). Compared with the original analog system, the control precision and stability have been improved by an order of magnitude. The extraction beam energy of SFC was measured, and its stability is better than 4.3 * 10(-3), after this LLRF system is applied successfully.
机译:兰州重离子研究设施(HIRFL)的升级始于2000年,目的是提高核物理,原子物理学,辐射材料和生物学,使用重离子的癌症治疗和强子物理学的性能。 HIRFL的升级程序旨在提供从质子到铀的所有离子,以提高束强度。作为HIRFL中子项目的升级程序之一,低级射频(LLRF)系统也已进行了完全重新设计,以更好地稳定机器运行期间的光束加速度参数。本文旨在描述新产品的设计和实现。全数字LLRF系统,用于HIRFL的六套射频(RF)系统。详细设计了所有组件,包括正交解调,相位和幅度检测器,移相器以及比例积分(PI)环路滤波器,并在现场可编程门阵列(FPGA)中实现。设计了特殊的同步RF源,以为不同的RF系统提供相位参考。设计了一种新的调谐系统,以确保RF系统保持良好的工作状态。设计了一种经济的补偿电缆中温度漂移的补偿方法,以提高系统的控制精度。新的LLRF系统已通过HIRFL腔体的24小时大功率测试。相位稳定控制精度为垂直条Delta phi垂直条<= 0.2度,幅度波动为垂直条Delta A垂直条<= 2 * 10(-3)。与原始模拟系统相比,控制精度和稳定性提高了一个数量级。在成功应用该LLRF系统后,测定了SFC的提取束能量,其稳定性优于4.3 * 10(-3)。

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