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基于SSOGI-RLSMC联合算法的加速器电源纹波抑制
引用本文:杨新华,王永强,李继强,崔渊,高大庆,郑越.基于SSOGI-RLSMC联合算法的加速器电源纹波抑制[J].原子核物理评论,2021,38(1):45-51.
作者姓名:杨新华  王永强  李继强  崔渊  高大庆  郑越
作者单位:1.兰州理工大学电气工程与信息工程学院,兰州 730050
基金项目:国家自然科学基金资助项目(11405239);大型电气传动系统与装备技术国家重点实验室开放基金资助项目(SKLL-DJ052016011)
摘    要:重离子加速器电源系统对励磁电源输出电流的稳定度和纹波精度要求高。磁铁负载的存在产生的纹波,会对加速器通过磁场精确控制粒子运动轨迹带来影响。针对以上问题,提出一种基于SSOGI-RLSMC新型联合算法,以减小磁铁负载影响下励磁电源输出的电流纹波,提高电流稳定度。新型联合算法通过并联型二阶广义积分器(SSOGI)作为纹波检测器对纹波分量进行快速准确的提取,获得精度较高的指令电流;将指令电流和直流有源电力滤波器的补偿电流相减得到误差信号,利用趋近律滑模控制(RLSMC)算法对误差信号进行动态跟踪和补偿,以提高直流有源滤波器对励磁电源输出电流的纹波抑制能力,进而达到对粒子运动轨迹精确控制的目的。最后通过Matlab/Simulink仿真证明,所提的新型联合算法在以直流有源电力滤波器为主补偿手段的励磁电源中有效提高了励磁电源输出电流的精度和稳定度,改善了直流有源滤波器对纹波电流的抑制能力。

关 键 词:纹波检测    并联型二阶广义积分器    趋近律滑模控制    直流有源电力滤波    纹波抑制
收稿时间:2020-06-22

Accelerator Power Ripple Suppression Based on SSOGI-RLSMC Combined Algorithm
Xinhua YANG,Yongqiang WANG,Jiqiang LI,Yuan CUI,Daqing GAO,Yue ZHENG.Accelerator Power Ripple Suppression Based on SSOGI-RLSMC Combined Algorithm[J].Nuclear Physics Review,2021,38(1):45-51.
Authors:Xinhua YANG  Yongqiang WANG  Jiqiang LI  Yuan CUI  Daqing GAO  Yue ZHENG
Institution:1.Lanzhou University of Technology College of Electrical Engineering and Information Engineering, Lanzhou 730050, China2.Chinese Academy of Sciences, Institute of Modern Physics, Lanzhou 730000, China
Abstract:The power supply system of heavy ion accelerator requires high stability and ripple precision of excitation power supply. Because of the existence of magnet load, the ripple has an impact on the precise control of particle trajectory by magnetic field. To solve the above problems, a new combined algorithm based on SSOGI-RLSMC is proposed to reduce the output current ripple of excitation power supply under the influence of magnet load and improve the current stability. The new joint algorithm extracts the ripple component quickly and accurately by using the parallel Second-Order Generalized Integrator(SSOGI) as the ripple detector, and obtains the command current with high precision. The error signal is obtained by subtracting the command current and the compensation current of the DC active power filter, and the Reaching Law Sliding Mode Control(RLSMC) algorithm is used to track and compensate the error signal dynamically, so as to improve the direct current active power filter can suppress the ripple of the output current of the excitation power supply, so as to achieve the precise control of the particle trajectory. Finally, through MATLAB/Simulink simulation, it is proved that the new joint algorithm can effectively improve the accuracy and stability of the output current of the excitation power supply, and improve the ripple current suppression ability of the DC active power filter.
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