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MTCA.4-based LLRF control system for the C-ADS proton Linac injector I 被引量:1
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作者 R.Liu X.P.Ma +9 位作者 N.Gan H.Y.Lin Q.Y.Wang Z.H.Mi S.Z.Wang X.F.Huang Yan Wu G.W.Wang Y.L.Chi Weimin Pan 《Radiation Detection Technology and Methods》 2017年第1期13-20,共8页
Objective:The Chinese ADS proton Linac injector I composed of an electron cyclotron resonance ion source,a lowenergy beam transport line,a radio frequency quadrupole(RFQ)accelerator,a medium-energy beam transport(MEBT... Objective:The Chinese ADS proton Linac injector I composed of an electron cyclotron resonance ion source,a lowenergy beam transport line,a radio frequency quadrupole(RFQ)accelerator,a medium-energy beam transport(MEBT)line,a superconducting section and beam dump with design goal to achieve CW proton beam with beam current 10 mA and energy gain around 10 MeV.In order to maintain the stability of the RF system,to compensate for the beam load effect and to provide the GUI required for the operation of the RF power system,we have established a LLRF control system.Methods:This LLRF system for ADS proton Linac injector I in IHEP consists of RF reference system and LLRF controllers for oneRFQcavity,twoMEBTbunching cavities and 14 superconductive spoke cavities.We have adopted a new development mTCA.4-based hardware platform,and it has some characteristics such as faster bandwidth,standardized design,easy operation and maintenance and good expansibility.Results:The LLRF system has been improved and optimized and has now been put into operation.It takes into account the pulse and CW beam flow mode,feedforward and feedback control functions.Conclusion:With the help of this system,we achieved stable operationwith narrowpulses,long pulses,andCWmodes under different beam loads.This article describes the implementation of this system and presents some initial the CW beam acceleration results with the help of this system at the end of 2016. 展开更多
关键词 RF system RFQ Spoke cavity LLRF mtca.4 CW proton beam
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合肥先进光源定时系统设计 被引量:5
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作者 翟港佳 孙晓康 +3 位作者 宣科 陈留国 李川 刘功发 《核技术》 CAS CSCD 北大核心 2022年第12期9-17,共9页
合肥先进光源(Hefei Advanced Light Facility,HALF)是基于衍射极限储存环的第四代同步辐射光源。定时系统采用事件定时技术方案,主要向HALF装置的注入器、储存环和光束线等提供触发信号,协调注入和束流测量工作,实现对储存环任意束团... 合肥先进光源(Hefei Advanced Light Facility,HALF)是基于衍射极限储存环的第四代同步辐射光源。定时系统采用事件定时技术方案,主要向HALF装置的注入器、储存环和光束线等提供触发信号,协调注入和束流测量工作,实现对储存环任意束团的填充。装置中设备的触发信号抖动要求小于30 ps,同时要降低由光纤长度变化引起的信号漂移。针对以上设计要求,基于芬兰Micro-Research Finland Oy(MRF)公司的MTCA.4总线硬件完成了定时系统的设计,并在此基础上完成了软件控制程序的开发以及原型系统的性能测试。测试结果表明,触发信号的抖动小于24 ps,经延迟补偿后的信号漂移控制在3 ps左右,达到了HALF定时系统的设计要求。 展开更多
关键词 HALF 定时系统 任意束团填充 mtca.4
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