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弱电网下LCL型单相并网逆变器的鲁棒延时补偿策略

ROBUST DELAY COMPENSATION STATEGY FOR LCL SINGLE-PHASE GRID-CONNECTED INVERTER UNDER WEAK GRID

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【作者】 丁欣施睿清薛睿南郑天志孔繁镍陈延明

【Author】 Ding Xin;Shi Ruiqing;Xue Ruinan;Zheng Tianzhi;Kong Fannie;Chen Yanming;School of Electrical Engineering,Guangxi University;School of Automation Engineering,Guangxi Vocational College of Water Resources and Electric Power;College of Electronic Science & Engineering,Jilin University;

【通讯作者】 陈延明;

【机构】 广西大学电气工程学院广西水利电力职业技术学院自动化工程学院吉林大学电子科学与工程学院

【摘要】 考虑到控制延时,LCL型光伏并网逆变器传统电容电流反馈有源阻尼(CCFAD)仅能保证采样频率f_s的1/6以内系统稳定。弱电网中,电网阻抗的变化会导致实际谐振频率f_r偏移,若f_r大于f_s/6,系统鲁棒性将会变差。为解决传统CCFAD有效阻尼区间不足的问题,提出一种基于延时补偿的改进CCFAD控制策略,通过在电容电流反馈通道串入级联超前相位补偿器,补偿控制延时引起的相位滞后,将有效正阻尼区扩展至(0,f_s/3)频段,扩大系统稳定域。此外,电流控制环采用比例复数积分(PCI)控制策略,提高了并网电流跟踪性能,仿真和实验验证了所提策略的可行性。与传统CCFAD方法相比,所提延时补偿策略扩大了有效阻尼区,增强了系统鲁棒性。

【Abstract】 Considering the digital control delay,the boundary frequency of the equivalent positive and negative damping zone of the traditional capacitor current feedback active damping(CCFAD)of LCL-type photovoltaic grid-connected inverter is f_s/6( f_s,is the sampling frequency). Under weak grid,the variation of grid impedance will cause the actual resonance frequency frshift,and if f_r> f_s/6,the robustness of the system will be threatened. In order to solve the above problem,an improved compensation strategy is proposed,the phase lag caused by digital control delay was compensated by adding a cascade lead phase compensator into the capacitorcurrent-feedback path,so the effective positive damping region was broadened to(0, f_s/3). In addition,the grid connected current tracking performance was improved due to the proportional complex integral(PCI)controller in the current control loop. Simulation and experiment verify the feasibility of the proposed strategy. Compared with the traditional CCFAD,the proposed delay compensation strategy expands the effective damping region and enhances the robustness of the system.

【基金】 国家自然科学基金(51567004);广西自然科学基金(2021GXNSFAA220136);广西高等学校高水平创新团队及卓越学者计划(桂教人才[2020]6号)
  • 【文献出处】 太阳能学报 ,Acta Energiae Solaris Sinica , 编辑部邮箱 ,2023年05期
  • 【分类号】TM464
  • 【下载频次】70
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