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Networked-Based Hybrid Distributed Power Sharing and Control for Islanded Microgrid Systems

机译:孤岛微电网系统的基于网络的混合分布式功率共享和控制

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Distributed generation (DG) microgrid systems are forming the building blocks for smart distribution grids. Enhanced networked-based control structure is needed not only to eliminate the frequency deviations, power-sharing errors, and stability concerns associated with conventional droop control in microgrids but also to yield: 1) improved microgrid dynamic performance, 2) minimized active/reactive power-sharing errors under unknown line impedances, and 3) high reliability and robustness against network failures or communication delays. This paper proposes a new hybrid distributed networked-based power control scheme that addresses the aforementioned problems in a distributed manner. The new method consists of a set of distributed power regulators that are located at each DG unit to ensure perfect tracking of the optimized set points assigned by the centralized energy management unit (EMU). The average power measurements are transmitted to the EMU to calculate the share of each unit of the total power demand based on real-time optimization criteria; therefore, a low-bandwidth communication system can be used. In the proposed method, the distributed nature of the power regulators allows them to adopt the delay-free local power measurements as the required feedback signals. Therefore, the proposed structure provides great robustness against communication delays. Further, this paper presents a generalized and computationally efficient modeling approach that captures the dominant dynamics of a microgrid system. The model can be used to study the impact of power-sharing controllers and delays in microgrid stability. Comparative simulation and experimental results are presented to show the validity and effectiveness of the proposed controller.
机译:分布式发电(DG)微电网系统正在构成智能配电网的构建块。基于增强的基于网络的控制结构不仅需要消除与微电网中常规下垂控制相关的频率偏差,功率共享误差和稳定性问题,而且还需要:1)改善微电网动态性能,2)最小化有功/无功功率-未知线路阻抗下的-共享错误,以及3)针对网络故障或通信延迟的高可靠性和鲁棒性。本文提出了一种新的混合分布式基于网络的功率控制方案,以分布式方式解决上述问题。新方法由位于每个DG单元处的一组分布式功率调节器组成,以确保完美跟踪由集中式能源管理单元(EMU)分配的优化设置点。平均功率测量值被传输到EMU,以基于实时优化标准计算每个单元在总功率需求中的份额;因此,可以使用低带宽通信系统。在所提出的方法中,功率调节器的分布式特性允许他们采用无延迟的本地功率测量作为所需的反馈信号。因此,所提出的结构提供了针对通信延迟的强大鲁棒性。此外,本文提出了一种通用且计算有效的建模方法,该方法可捕获微电网系统的主要动态。该模型可用于研究功率共享控制器的影响以及微电网稳定性的延迟。通过对比仿真和实验结果验证了该控制器的有效性。

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