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Effective Control and Management Scheme for Isolated and Grid Connected DC Microgrid

机译:隔离和电网连接直流微电网的有效控制与管理方案

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This article addresses a voltage control and energy management strategy of active distribution systems with a grid-connected dc microgrid as well as for an islanded dc microgrid with hybrid energy resources. In the islanded mode, a control and management strategy using a backup diesel generator (DG), a renewable energy source (RES), and an energy storage system plays a vital role in maintaining the microgrid bus voltages within the limits. However, operating backup diesel generator (DG) has its own challenges including startup delay, frequent switching, and uneven loading when operated along with a RES. Additionally, fuel efficiency and emission characteristics vary with loading since most of DGs are driven by constant-speed diesel engines. Hence, an exhaustive power management scheme (PMS) is proposed by utilizing the hybrid energy storage system. Real-time simulation and experimental validation of the proposed scheme are provided using a real-time digital simulator (RTDS) and a laboratory-scale prototype, respectively. Extreme scenarios including DG failure/scheduled maintenance, low power generation, and battery charge are analyzed in the islanded mode. Furthermore, a dc microgrid is connected to an IEEE active distribution system feeder to analyze control and management challenges for the grid connected mode with contribution from a microgrid and with no contribution from a microgrid. These scenarios resemble more realistic unbalanced utility grid conditions. A centralized optimization problem is formulated at an advanced distribution management system level to maintain all the node voltages within limits in the IEEE test system. RTDS is used to simulate dc microgrid connected with the IEEE test system and an optimization algorithm is implemented in MATLAB. Superior performance of the developed algorithms are demonstrated and validated for coordination between centralized optimization at ADMS and the microgrid energy management system.
机译:本文介绍了具有网格连接的DC微电网的主动分配系统的电压控制和能量管理策略,以及具有混合能源的岛状DC微电网。在岛屿模式中,使用备用柴油发电机(DG),可再生能源(RES)和能量存储系统的控制和管理策略在维护限制内的微电网总线电压方面起着至关重要的作用。然而,操作备用柴油发电机(DG)具有其自身的挑战,包括启动延迟,频繁切换和与RES一起操作时的频繁加载。另外,由于大多数DGS由恒速柴油发动机驱动,因此燃料效率和排放特性随装载而变化。因此,通过利用混合能量存储系统提出了一种详尽的电力管理方案(PMS)。使用实时数字模拟器(RTD)和实验室规模原型提供所提出方案的实时模拟和实验验证。在岛立模式下分析了极端场景,包括DG故障/预定维护,低发电和电池电量。此外,DC MicroGrid连接到IEEE主动分配系统进料器,以分析网格连接模式的控制和管理挑战,具有从微电网的贡献,并且没有从微电网的贡献。这些方案类似于更现实的不平衡实用电网条件。在高级分配管理系统级别中配制了集中优化问题,以维护IEEE测试系统中的限制内的所有节点电压。 RTDS用于模拟与IEEE测试系统连接的DC微电网,在MATLAB中实现了优化算法。显影算法的卓越性能被证明并验证了ADMS和MicroGrid Energy Management系统的集中优化之间的协调。

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