电工技术学报  2023, Vol. 38 Issue (6): 1596-1607    DOI: 10.19595/j.cnki.1000-6753.tces.211751
电力电子 |
基于端口电压积分与变下垂系数的逆变器并联下垂控制策略
谢沁园, 王瑞田, 林克文, 范学鑫, 杨国润
舰船综合电力技术国防科技重点实验室(海军工程大学) 武汉 430033
Droop Control Strategy of Parallel Inverters Based on Port Voltage Integration and Variable Droop Coefficient
Xie Qinyuan, Wang Ruitian, Lin Kewen, Fan Xuexin, Yang Guorun
National Key Laboratory of Science and Technology on Vessel Integrated Power System Naval University of Engineering Wuhan 430033 China
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摘要 孤岛微电网中逆变器采用传统下垂方法并联时,由于逆变器输出阻抗和线路阻抗差异,可能存在无功功率不均分和输出电压偏移过大的问题。该文分析了并联系统功率分配机理和输出电压外特性,提出了一种基于端口输出电压积分与变下垂系数结合的下垂控制方法。通过电压电流双环控制器参数设计,实现有功功率和无功功率的解耦,使逆变器适用P-ω/Q-V下垂控制策略;通过无功功率均值与实时无功功率误差调整下垂系数实现无功功率的均分,通过端口输出电压积分抑制输出电压偏移过大。仿真和实验结果表明,该文所提控制方法提高了无功功率均分精度,同时将逆变器输出电压相对于额定电压的偏移维持在±5%范围内。
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谢沁园
王瑞田
林克文
范学鑫
杨国润
关键词 逆变器并联下垂控制端口电压积分变下垂系数功率均分    
Abstract:When inverters are paralleled using the traditional droop method in the isolated island microgrid, the difference between inverter output impedance and line impedance leads to the problem of unequal reactive power distribution and over-migration of output voltage. It is necessary to rationally configure the output impedance of the inverter and reconstruct the droop controller to meet the requirements of the inverter parallel index.
The equivalent model of two paralleled inverters was established. The power distribution characteristics of the parallel system and droop control equations corresponding to different impedance angles were analyzed. Active power frequency droop and reactive power voltage droop were mainly realized based on inductive output impedance in this paper. In steady-state, the frequency of each inverter in the parallel system was consistent, so the active power can be evenly divided. There was no integration link in voltage droop, so the reactive power was unequal when the line impedance was not consistent. The causes of voltage drop in traditional droop control were revealed, including the drop caused by droop control and output impedance. Aiming at the problem of uneven reactive power distribution caused by line impedance differences and output voltage drop exceeding the standard caused by output impedance and droop control, a droop control strategy based on port voltage integration and variable droop coefficient was proposed.
Firstly, the active power and reactive power were decoupling by designing the output inductor parameter and the voltage and current double-loop control parameters, so that the P-ω/Q-V droop control equation was applicable to the inverter.
Secondly, the power droop controller was redesigned. The integral term of the difference between the output reactive power and the average reactive power was added to the conventional output voltage-reactive power droop equation. Two inverter output port voltage, current and its reactive power was calculated, at the same time the use of digital communication its reactive power was sent to the other inverter, reactive power real-time calculated average, through the average error of the reactive power and reactive power regulation droop coefficient, compensation inverter due to inconsistent line impedance between reactive power differences. The integral term of the difference between the output port voltage and the rated voltage was added to the droop equation, which was used to suppress the port voltage drop and stabilize the port voltage within the allowable offset range.
Finally, the traditional droop control, virtual impedance droop control and the droop control strategy proposed in this paper were compared by simulation and experiment. The results show that the reactive power cannot be evenly divided due to the difference of line impedance in the traditional droop control, and the port output voltage drop was serious. Although the virtual impedance method can achieve equal division of reactive power, the output voltage still drops seriously, exceeding the ±5% requirement. The inverter parallel control method proposed in this paper can ensure equal active power division and control the difference of reactive power distribution within 5%, improve the equal division of reactive power, and maintain the inverter output voltage offset rate within ±5% of the rated output voltage.
Key wordsInverter parallel    drop control    port-voltage integration    variable droop coefficient    power sharing   
收稿日期: 2021-10-30     
PACS: TM464  
基金资助:国家自然科学基金(51907199)和中国博士后基金第64批面上项目(2018M643866)资助
通讯作者: 通信作者林克文 男,1989年生,助理研究员,研究方向为电力电子与电力传动。E-mail:kewenlin@163.com   
作者简介: 谢沁园 女,1998年生,硕士研究生,研究方向为电力电子与电力传动。E-mail:xqy329221315@qq.com
引用本文:   
谢沁园, 王瑞田, 林克文, 范学鑫, 杨国润. 基于端口电压积分与变下垂系数的逆变器并联下垂控制策略[J]. 电工技术学报, 2023, 38(6): 1596-1607. Xie Qinyuan, Wang Ruitian, Lin Kewen, Fan Xuexin, Yang Guorun. Droop Control Strategy of Parallel Inverters Based on Port Voltage Integration and Variable Droop Coefficient. Transactions of China Electrotechnical Society, 2023, 38(6): 1596-1607.
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https://dgjsxb.ces-transaction.com/CN/10.19595/j.cnki.1000-6753.tces.211751          https://dgjsxb.ces-transaction.com/CN/Y2023/V38/I6/1596