系统仿真学报 ›› 2017, Vol. 29 ›› Issue (10): 2574-2582.doi: 10.16182/j.issn1004731x.joss.201710043

• 仿真应用工程 • 上一篇    下一篇

基于单相自解耦锁相策略的HSSS实时控制方法

易映萍1, 渠博岗1, 张扬2   

  1. 1.上海理工大学,上海 200093;
    2.南昌工程学院,江西 南昌 330029
  • 收稿日期:2015-10-10 发布日期:2020-06-04
  • 作者简介:易映萍(1967-),女,湖南湘乡,硕士,副教授,研究方向为电力电子与电气传动,电网大数据;渠博岗(1990-),男,山西朔州,硕士研究生,研究方向为电力电子及其控制。
  • 基金资助:
    沪江基金(B14002,D14002,C14002)

Real-time Control Method of HSSS Based on Single Phrase Self Decoupling Strategy

Yi Yingping1, Qu Bogang1, Zhang Yang2   

  1. 1. University of Shanghai for Science and Technology, Shanghai 200093, China;
    2. Nanchang Institute of Technology, Nanchang 330029, China
  • Received:2015-10-10 Published:2020-06-04
  • About author:Yang Senyan (1992-), female, Henan, Bachelor, PhD Candidate, research area: ITS, transportation data mining, traffic simulation; Wu Jianping(1957-), male, Zhejiang, Professor, research area: ITS, traffic simulation

摘要: 在实时性导通控制中,常用过零检测法和锁相环法。比较了过零检测法、三相单同步、三相双同步坐标系锁相环法,提出了适用于混合式固态交流断路器(Hybird Solid State Switch,HSSS)的单相自解耦锁相策略,并给出了数学模型和控制模型,通过分析稳态性能和动态性能得出了控制参数。在MATLAB/Simulink环境下构建上述实时性控制模型与HSSS模型,通过仿真与最优化分析验证了单相自解耦锁相环在各种电网电压工况下具有良好的锁相效果,能够实现HSSS的基本功能,满足实时性控制要求。

关键词: 实时性控制, 锁相环, 单相自解耦锁相环, 混合式固态交流断路器, 最优化

Abstract: Zero Crossing Detection (ZCD) and phase locked loop are widely applied in the real-time control. Compared the performances of ZCD, SSRF SPLL and DDSRF SPLL,a method named as Single Phase Self Decoupling SPLL (SPSD SPLL) for HSSS(Hybrid Solid State Switch) is proposed and the mathematical method and control methods are given. The control parameters were obtained by analyzing the steady and dynamic performance of SPSD SPLL. By establishing the real-time controlling models based on the above strategies and HSSS model in the MATLAB/Simulink, the simulation and optimization analysis results verified that the SPSD SPLL was well performed under different working conditions, the SPSD strategy could realize the basic functions of HSSS, and the requirement of real-time control could be satisfied.

Key words: real-time control, PLL, SPSD SPLL, HSSS, optimization

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