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Design and performance of the LLRF control system for CSNS linac 被引量:1

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摘要 Objective The China Spallation Neutron Source(CSNS)linac is designed with beam energy of 80 MeV and a peak current of 15 mA in the first phase.It consists of RFQ,two bunchers of medium-energy beam transmission line,four DTL tanks and one debuncher of linac-to-ring beam transmission line.Correspondingly,eight online RF power sources are used to power these accelerators.In order to stabilize the amplitude,phase and resonant frequency of the RF accelerating field,and minimize beam loss,we have established digital low-level RF(LLRF)control system.Methods The LLRF system includes RF reference line,analog module(AM),clock distribution module,digital control module(DCM),high-power protection module,timing and RF interlock module and so on.The DCM is mainly responsible for the stability of the RF field amplitude and phase,and RF interlock module can quickly cut off the RF drive in case of arc in the RF transmission system,VSWR over threshold or cavity vacuum fault and so on.Result During beam commissioning,all of eight online units of LLRF control system were operating stably and reliably.The amplitude and phase variations of the linac fields have been achieved about±0.4%and±0.15°with 10-mA beam loading,much better than the design requirements of±1%in amplitude and±1°in phase.Conclusion With the help of this system,we achieved stable operation under different beam loads.Also,many important progresses have been achieved in the LLRF control system for amore convenient operation and a higher stability performance.This article describes the design and implementation of the LLRF for CSNS linac.
出处 《Radiation Detection Technology and Methods》 CSCD 2020年第2期196-202,共7页 辐射探测技术与方法(英文)
基金 The authors would like to sincerely thank the CSNS linac RF team for their hard work and dedication.This work was supported by the China Spallation Neutron Source project.
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  • 1Fu Sinian, Fang Shouxian, Guan Xialing, et al. Construction on a high current RFQ for ADS study[C]//Proceedings of LINAC 2006. 2006: 165-167.
  • 2Zhang Zhonghua, Qiao Jimin, Li Jian, et al. The RF system for a high current RFQ at IHEP[C]//Proceedings of LINAC 2004. 2004:712- 714.
  • 3Michizono S, Anami S, Yamaguchi S, et al. Digital feedback system for J PARC Linac RF source[C]//Proceedings of LINAC 2004. 2004: 1-3.
  • 4Doolittle L. Operational performance of the SNS LLRF interim system[C]//Proceedings of the PAC 2003. 2003:1464-1466.
  • 5Champion M, Crofford M, Ma Hengjie, et al. The spallation neutron source accelerator low level RF control system[C]//Proceedings of PAC 2003. 2003:3377 -3379.
  • 6Ma Hengjie, Champion M, Crofford M T, et al. SNS low level RF control system:design and performance[C]//Proceeding of PAC 2005. 2005:3479 -3481.
  • 7Ma Hengjie. SNS LINAC RF control: reference system and phase measurement[R]. Oak Ridge:SNS,2002.
  • 8Czarski T, Pozniak K, Romaniuk R, et al. TESLA cavity modeling and digital implementation with FPGA technology solution for control system development[R]. Hamburg: DESY, 2003.
  • 9Schilcher T. Vector sum control of pulsed accelerator fields in Lorentz force detuned superconducting cavity[D]. Hamburg:DESY, 1998.
  • 10张玉亮,徐广磊,朱鹏,雷革.基于C#的EPICS应用程序开发及其应用研究[J].核电子学与探测技术,2013,33(10):1234-1236. 被引量:4

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