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Studying impacts of communication system performance on dynamic stability of networked microgrid

机译:研究通信系统性能对网络微电网动态稳定性的影响

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The development of smart grid technologies has resulted in increased interdependence between power and communication systems. Many of the operations in the existing power system rely on a stable and secured communication system. For electrically weak systems and time-critical applications, this reliance can be even greater, where a small degradation in communication performance can degrade system stability. However, despite inter-dependencies between power and communication systems, only a few studies have investigated the impacts of communication system performance on power system dynamics. This study investigates the dependencies of power system dynamics operations on a communication system performance. First, a detailed, dynamic networked microgrid model is developed in the GridLAB-D simulation environment, along with a representative multi-traffic, multi-channel, multi-protocol communication system model, developed in the network simulator (ns-3). Second, a hierarchical engine for large-scale infrastructure co-simulation framework is developed to co-simulate microgrid dynamics, its communication system, and a microgrid control system. The impact of communication system delays on the dynamic stability of networked microgrids is evaluated for the loss of generation using three use-cases. While the example use-cases examine microgrid applications and the impact to resiliency, the framework can be applied to all levels of power system operations.
机译:智能电网技术的开发导致电力和通信系统之间的相互依存性增加。现有电力系统中的许多操作依赖于稳定和安全的通信系统。对于电气薄弱的系统和时间关键应用,这种依赖性甚至更大,其中通信性能的小小化降低可能降低系统稳定性。然而,尽管电力和通信系统之间存在依赖性,但只有少数研究已经调查了通信系统性能对电力系统动态的影响。本研究调查了电力系统动力学操作对通信系统性能的依赖性。首先,在Gridlab-D仿真环境中开发了一个详细的动态网络微电网模型,以及在网络模拟器(NS-3)中开发的代表性多流量,多协议通信系统模型。其次,开发了一种用于大型基础设施共仿框架的分层引擎,用于共模拟微电网动力学,其通信系统和微电网控制系统。通过三种用例评估通信系统对网络微电网动态稳定性的影响。虽然示例用例检查了Microgrid应用程序和对弹性的影响,但框架可以应用于所有电源系统操作。

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