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Modeling and Analysis of Three-Phase Grid-Tied Photovoltaic Systems.

机译:三相并网光伏系统的建模与分析。

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摘要

Market acceptability of distributed energy resource (DER) technologies and the gradual and consistent increase in their depth of penetration have generated significant interest over the past few years. In particular, in Arizona and several other states there has been a substantial increase in distributed photovoltaic (PV) generation interfaced to the power distribution systems, and is expected to continue to grow at a significant rate. This has made integration, control and optimal operation of DER units a main area of focus in the design and operation of distribution systems. Grid-connected, distributed PV covers a wide range of power levels ranging from small, single phase residential roof-top systems to large three-phase, multi-megawatt systems. The focus of this work is on analyzing large, three-phase systems, with the power distribution system of the Arizona State University (ASU) Tempe campus used as the test bed for analysis and simulation. The Tempe campus of ASU has presently 4.5 MW of installed PV capacity, with another 4.5 MW expected to be added by 2011, which will represent about 22% of PV penetration.;The PV systems are interfaced to the grid invariably by a power electronic inverter. Many of the important characteristics of the PV generation are influenced by the design and performance of the inverter, and hence suitable models of the inverter are needed to analyze PV systems. Several models of distributed generation (DG), including switching and average models, suitable for different study objectives, and different control modes of the inverter have been described in this thesis. A critical function of the inverters is to quickly detect and eliminate unintentional islands during grid failure. In this thesis, many active anti-islanding techniques with voltage and frequency positive feedback have been studied. Effectiveness of these techniques in terms of the tripping times specified in IEEE Std. 1547 for interconnecting distributed resources with electric power systems has been analyzed.;The impact of distributed PV on the voltage profile of a distribution system has been analyzed with ASU system as the test bed using power systems analysis tools namely PowerWorld and CYMDIST. The present inverters complying with IEEE 1547 do not regulate the system voltage. However, the future inverters especially at higher power levels are expected to perform several grid support functions including voltage regulation and reactive power support. Hence, the impact of inverters with the reactive power support capabilities is also analyzed. Various test sce-narios corresponding to different grid conditions are simulated and it is shown that distributed PV improves the voltage profile of the system. The improvements are more significant when the PV generators are capable of reactive power support. Detailed short circuit analyses are also performed on the system, and the impact of distributed PV on the fault current magnitude, with and without reactive power injection, have been studied.
机译:在过去的几年中,分布式能源(DER)技术的市场接受度以及其渗透深度的逐步稳定增长引起了人们的极大兴趣。特别是,在亚利桑那州和其他几个州,与配电系统接口的分布式光伏(PV)发电量已大大增加,并且有望继续以显着速度增长。这使得DER单元的集成,控制和最佳运行成为配电系统设计和运行的主要重点领域。并网的分布式PV涵盖了广泛的功率水平,范围从小型单相住宅屋顶系统到大型三相多兆瓦系统。这项工作的重点是分析大型三相系统,并将亚利桑那州立大学(ASU)坦佩校区的配电系统用作分析和仿真的试验台。 ASU的坦佩校区目前已安装了4.5兆瓦的光伏装机容量,预计到2011年将再增加4.5兆瓦,这将占光伏普及率的22%。;光伏系统始终通过电力电子逆变器与电网连接。光伏发电的许多重要特性受逆变器的设计和性能的影响,因此需要合适的逆变器模型来分析光伏系统。本文介绍了适用于不同研究目标,逆变器控制方式不同的分布式发电(DG)模型,包括切换模型和平均模型。逆变器的一项关键功能是在电网故障期间快速检测并消除意外的孤岛。本文研究了许多具有电压和频率正反馈的主动抗孤岛技术。这些技术在IEEE标准中规定的跳闸时间方面的有效性。分析了用于将分布式资源与电力系统互连的1547。;已使用ASU系统作为测试平台,使用PowerWorld和CYMDIST等电力系统分析工具,分析了分布式PV对配电系统电压曲线的影响。目前符合IEEE 1547的逆变器无法调节系统电压。但是,未来的逆变器,尤其是功率较高的逆变器,有望实现多种电网支持功能,包括电压调节和无功功率支持。因此,还分析了具有无功支持功能的逆变器的影响。模拟了对应于不同电网条件的各种测试场景,结果表明,分布式光伏改善了系统的电压分布。当光伏发电机具有无功功率支持功能时,这些改进将更为显着。还对该系统进行了详细的短路分析,并且研究了有无无功注入情况下分布式光伏对故障电流幅度的影响。

著录项

  • 作者

    Narayanan, Anand.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2010
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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