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An Improved Droop Control Method for DC Microgrids Based on Low Bandwidth Communication With DC Bus Voltage Restoration and Enhanced Current Sharing Accuracy

机译:基于低带宽通信,直流母线电压恢复和均流精度提高的改进的直流微电网下垂控制方法

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摘要

Droop control is the basic control method for load current sharing in dc microgrid applications. The conventional dc droop control method is realized by linearly reducing the dc output voltage as the output current increases. This method has two limitations. First, with the consideration of line resistance in a droop-controlled dc microgrid, since the output voltage of each converter cannot be exactly the same, the output current sharing accuracy is degraded. Second, the dc-bus voltage deviation increases with the load due to the droop action. In this paper, in order to improve the performance of the dc microgrid operation, a low-bandwidth communication (LBC)-based improved droop control method is proposed. In contrast with the conventional approach, the control system does not require a centralized secondary controller. Instead, it uses local controllers and the LBC network to exchange information between converter units. The droop controller is employed to achieve independent operation, and the average voltage and current controllers are used in each converter to simultaneously enhance the current sharing accuracy and restore the dc bus voltage. All of the controllers are realized locally, and the LBC system is only used for changing the values of the dc voltage and current. Hence, a decentralized control scheme is accomplished. The simulation test based on MATLAB/Simulink and the experimental validation based on a 2 × 2.2 kW prototype were implemented to demonstrate the proposed approach.
机译:下降控制是直流微电网应用中负载电流共享的基本控制方法。传统的直流下垂控制方法是通过随着输出电流的增加线性降低直流输出电压来实现的。此方法有两个限制。首先,考虑到下垂控制的直流微电网中的线路电阻,由于每个转换器的输出电压不能完全相同,因此输出电流共享精度会降低。其次,由于下垂作用,直流总线电压偏差随负载而增加。为了提高直流微电网运行的性能,提出了一种基于低带宽通信的改进的下垂控制方法。与传统方法相反,控制系统不需要集中式辅助控制器。相反,它使用本地控制器和LBC网络在转换器单元之间交换信息。采用下垂控制器来实现独立操作,并且在每个转换器中使用平均电压和电流控制器来同时提高电流共享精度并恢复直流总线电压。所有控制器均在本地实现,LBC系统仅用于更改直流电压和电流值。因此,实现了分散控制方案。进行了基于MATLAB / Simulink的仿真测试和基于2×2.2 kW原型的实验验证,以证明该方法。

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