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Coordinated voltage and reactive power control of power distribution systems with distributed generation.

机译:具有分布式发电的配电系统的协调电压和无功功率控制。

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摘要

Distribution system voltage and VAR control (VVC) is a technique that combines conservation voltage reduction and reactive power compensation to operate a distribution system at its optimal conditions. Coordinated VVC can provide major economic benefits for distribution utilities. Incorporating distributed generation (DG) to VVC can improve the system efficiency and reliability. The first part of this dissertation introduces a direct optimization formulation for VVC with DG. The control is formulated as a mixed integer non-linear programming (MINLP) problem. The formulation is based on a three-phase power flow with accurate component models. The VVC problem is solved with a state of the art open-source academic solver utilizing an outer approximation algorithm. Applying the approach to several test feeders, including IEEE 13-node and 37-node radial test feeders, with variable load demand and DG generation, validates the proposed control.;Incorporating renewable energy can provide major benefits for efficient operation of the distribution systems. However, when the number of renewables increases the system control becomes more complex. Renewable resources, particularly wind and solar, are often highly intermittent. The varying power output can cause significant fluctuations in feeder voltages. Traditional feeder controls are often too slow to react to these fast fluctuations. DG units providing reactive power compensation they can be utilized in supplying voltage support when fluctuations in generation occur. The second part of this dissertation focuses on two new approaches for dual-layer VVC. In these approaches the VVC is divided into two control layers, slow and fast. The slow control obtains optimal voltage profile and set points for the distribution control. The fast control layer is utilized to maintain the optimal voltage profile when the generation or loading suddenly changes. The MINLP based VVC formulation is utilized as the slow control. Both local reactive power control of DG and coordinated quadratic programming (QP) based reactive power control is considered as the fast control approaches. The effectiveness of these approaches is studied with test feeders, utility load data, and fastvarying solar irradiance data. The simulation results indicate that both methods achieve good results for VVC with DG.
机译:配电系统电压和VAR控制(VVC)是一种结合了守恒电压降低和无功功率补偿的技术,可在最佳条件下运行配电系统。协调的VVC可以为配电公司带来重大的经济利益。将分布式发电(DG)集成到VVC中可以提高系统效率和可靠性。本文的第一部分介绍了带有DG的VVC的直接优化公式。该控制公式化为混合整数非线性规划(MINLP)问题。该公式基于具有精确组件模型的三相潮流。使用外部近似算法,使用最先进的开源学术求解器解决VVC问题。将这种方法应用于具有可变负载需求和DG产生的多个测试馈线(包括IEEE 13节点和37节点径向馈线),可以验证所提出的控制措施。结合可再生能源可以为配电系统的有效运行带来重大好处。但是,当可再生能源的数量增加时,系统控制将变得更加复杂。可再生资源,尤其是风能和太阳能,通常是高度间歇性的。输出功率的变化会引起馈线电压的明显波动。传统的进料器控制通常太慢,无法对这些快速波动做出反应。提供无功功率补偿的DG单元可在发生发电波动时用于提供电压支持。本文的第二部分着重介绍了两种用于双层VVC的新方法。在这些方法中,VVC分为慢速和快速两个控制层。慢速控制获得最佳电压曲线和分配点,以进行配电控制。当发电或负载突然变化时,利用快速控制层来维持最佳电压曲线。基于MINLP的VVC配方用作慢速控制。 DG的本地无功功率控制和基于协调二次规划(QP)的无功功率控制均被视为快速控制方法。这些方法的有效性通过测试馈线,公用事业负荷数据和快速变化的太阳辐照度数据进行了研究。仿真结果表明,两种方法对于带有DG的VVC都取得了良好的效果。

著录项

  • 作者

    Paaso, Esa Aleksi.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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