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System Operation and Energy Management of a Renewable Energy-Based DC Micro-Grid for High Penetration Depth Application

机译:高渗透深度的可再生能源直流微电网的系统运行和能源管理

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A renewable energy-based dc micro-grid with hybrid energy storage, consisting of battery and ultracapacitor, is investigated. To achieve high penetration depth of renewable sources into the utility grid, a novel system operation strategy and the corresponding energy management method is proposed. In the operation strategy, the ultracapacitor unit works as the sole voltage source of the micro-grid to support the dc link in both connected and islanding mode. The micro-grid is controlled to deliver/absorb predefined amount of power to/from the utility grid during connected mode and zero during islanding mode. This design will certainly simplify the power dispatching algorithm of the power system and increase the possibility of including large quantities of micro-grids into the utility grid. The energy management method is dedicated to conducting the net power of the micro-grid effectively. The net power is separated into high- and low-frequency components. The high-frequency power is suppressed by the ultracapacitor automatically and the low frequency power is shared by the battery and an adjustment unit. A small-scale dc micro-grid structure with a single dc link is considered for investigation. MATLAB/Simulink simulation results are presented to validate the proposed system operation strategy and the energy management method.
机译:研究了基于可再生能源的直流微电网,该微电网具有混合储能,包括电池和超级电容器。为了实现可再生能源对公用电网的高渗透深度,提出了一种新颖的系统运行策略和相应的能源管理方法。在操作策略中,超级电容器单元充当微电网的唯一电压源,以在连接和孤岛模式下支持直流链路。控制微电网以在连接模式期间向公用电网传递/从公用电网吸收预定量的功率,而在孤岛模式期间则为零。这种设计肯定会简化电力系统的功率分配算法,并增加将大量微电网纳入公用电网的可能性。能量管理方法致力于有效地传导微电网的净功率。净功率分为高频和低频分量。超级电容器会自动抑制高频功率,而低频功率则由电池和调节单元共享。考虑使用具有单个直流链路的小型直流微电网结构。给出了MATLAB / Simulink仿真结果,以验证所提出的系统操作策略和能量管理方法。

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