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Intelligent voltage regulator to distributed voltage control in smart grids

机译:智能电压调节器,用于智能电网中的分布式电压控制

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Distribution networks have, in general, the electrical energy flow unidirectional from substation to customers. With high levels of distributed energy resources integration, the energy may flow backwards which creates challenges with legacy circuit designs and control techniques. The Distribution System Operator fixes a set-point and prepares scenarios and ranges based on seasonal load curves. However, the growing of distributed energy resources, distributed storage, flexible load and plug-in-electrical vehicles brings to the distribution systems substantial challenges. On one hand, the uncontrolled charging load may occur coincidentally with the peak hours. On the other hand the photovoltaic and wind generation may occur coincidentally with the off-peak hours and will affect or even deteriorate the operation performance of distribution systems dramatically. In both cases, the voltage regulators need to have their settings previously evaluated for these different operating conditions. From these considerations, this paper presents an innovative methodology to distributed voltage control developed to a Brazilian power utility (CEEE-D) from the project named Intelligent Dynamic Control for Voltage Regulators and Supervisory Systems in a Smart Grid Environment Code ANEEL PD-5707-4301/2015. The methodology is not restricted to voltage regulators settings. It acts also evaluating the hierarchy between the voltage regulators, adjusting the delay time, based on the network topology. The results are provided using a typical utility distribution circuit from Electrical Energy State Company-CEEE-D. Moreover, the authors discuss further opportunities and challenges in this field of research.
机译:配电网络通常具有从变电站到客户的单向电能流。随着分布式能源资源的高度集成,能量可能会倒流,这给传统电路设计和控制技术带来了挑战。配电系统操作员确定设定点,并根据季节性负荷曲线准备方案和范围。但是,分布式能源,分布式存储,灵活的负载和插电式电动车辆的增长给配电系统带来了巨大的挑战。一方面,不受控制的充电负荷可能与高峰时段同时发生。另一方面,光伏发电和风力发电可能与非高峰时段同时发生,并将极大地影响甚至降低配电系统的运行性能。在这两种情况下,电压调节器都需要事先针对这些不同的工作条件评估其设置。基于这些考虑,本文提出了一种创新的分布式电压控制方法,该方法是通过名为智能电网环境代码ANEEL PD-5707-4301中的电压调节器和监控系统的智能动态控制项目,开发给巴西电力公司(CEEE-D)的。 / 2015。该方法不限于电压调节器设置。它还根据网络拓扑结构评估电压调节器之间的层次,调整延迟时间。使用Electric State State Company-CEEE-D的典型公用事业分配电路提供了结果。此外,作者讨论了该研究领域的进一步机遇和挑战。

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