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Decentralized Power Management of Multiple PV, Battery, and Droop Units in an Islanded Microgrid

机译:孤岛微电网中多个PV,电池和下垂单元的分散式电源管理

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In this paper, a decentralized power management strategy is proposed for multiple photovoltaic (PV), battery, and droop units in an islanded microgrid. The control strategy is developed to handle any combination of these units without modifying their control systems. This provides a more comprehensive and generalized approach to coordinate the three types of units, in comparison to the techniques in the literature that consider only two types, mainly PV and battery systems, or consider only a single unit of each type. The operation of each unit is autonomously coordinated to maintain the balance between generation and consumption, while ensuring controlled charging/discharging of the batteries in the microgrid. To achieve this coordination, the voltage and the power control loops, within each of the PV and battery units, are configured to follow the specifically designed multi-segment power/frequency (P/f) characteristic curves. These characteristics are designed to independently adapt to the microgrid operating conditions, without relying on any external communications and centralized management systems. Accordingly, the control system for each unit is able to autonomously and seamlessly switch in real-time between power control and frequency regulation based on the available PV power, the state-of-charge of the batteries, and the total load demand in the microgrid. The strategy is designed and implemented using multi-loop controllers, in contrast to the commonly adopted approach of using discrete operating modes and switching logics. The proposed strategy is validated using a microgrid simulated in PSCAD/EMTDC with detailed switching models of the power electronic converters.
机译:本文针对孤岛微电网中的多个光伏(PV),电池和下垂单元,提出了一种分散式电源管理策略。开发了控制策略以处理这些单元的任何组合,而无需修改其控制系统。与文献中仅考虑两种类型(主要是光伏和电池系统)或仅考虑每种类型的单个单元的技术相比,这提供了一种更全面,更通用的方法来协调三种类型的单元。每个单元的操作可以自动进行协调,以维持发电量和消耗量之间的平衡,同时确保微电网中电池的受控充电/放电。为了实现这种协调,每个PV和电池单元内的电压和功率控制回路均配置为遵循专门设计的多段功率/频率(P / f)特性曲线。这些特性旨在独立于微电网运行条件而设计,而无需依赖任何外部通信和集中管理系统。因此,每个单元的控制系统都能够基于可用的PV功率,电池的充电状态以及微电网中的总负载需求,在功率控制和频率调节之间自主地,无缝地实时进行实时切换。 。与使用离散操作模式和开关逻辑的通常采用的方法相反,该策略是使用多环控制器设计和实现的。使用PSCAD / EMTDC中模拟的微电网以及功率电子转换器的详细开关模型,可以验证所提出的策略。

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