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A DC Microgrid Coordinated Control Strategy Based on Integrator Current-Sharing

机译:基于积分器均流的直流微电网协调控制策略

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The DC microgrid has become a new trend for microgrid study with the advantages of high reliability, simple control and low losses. With regard to the drawbacks of the traditional droop control strategies, an improved DC droop control strategy based on integrator current-sharing is introduced. In the strategy, the principle of eliminating deviation through an integrator is used, constructing the current-sharing term in order to make the power-sharing between different distributed generation (DG) units uniform and reasonable, which can reduce the circulating current between DG units. Furthermore, at the system coordinated control level, a hierarchical/droop control strategy based on the DC bus voltage is proposed. In the strategy, the operation modes of the AC main network and micro-sources are determined through detecting the DC voltage variation, which can ensure the power balance of the DC microgrid under different operating conditions. Meanwhile, communication is not needed between different DG units, while each DG unit needs to sample the DC bus voltage, which retains the plug-and-play feature of the DC microgrid. The proposed control strategy is validated by simulation on a DC microgrid with permanent magnet synchronous generator-based wind turbines, solar arrays and energy storage batteries, which can be applied to small commercial or residential buildings.
机译:直流微电网具有可靠性高,控制简单,损耗低等优点,已成为微电网研究的新趋势。针对传统下垂控制策略的弊端,提出了一种基于积分器均流的改进型直流下垂控制策略。该策略采用了通过积分器消除偏差的原理,构造了均流项,以使不同分布式发电(DG)单元之间的功率共享均匀合理,从而可以减少DG单元之间的环流。此外,在系统协调控制级别上,提出了基于直流总线电压的分级/下降控制策略。该策略通过检测直流电压的变化来确定交流主网和微源的运行方式,可以保证不同工况下直流微电网的功率平衡。同时,不同的DG单元之间不需要通信,而每个DG单元都需要采样DC总线电压,这保留了DC微电网的即插即用功能。通过在具有永磁同步发电机的风力涡轮机,太阳能电池板和储能电池的直流微电网上进行仿真,验证了所提出的控制策略,该微电网可用于小型商业或住宅建筑。

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