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Real time hardware implementation of power converters for grid integration of distributed generation and STATCOM systems.

机译:电力转换器的实时硬件实现,用于分布式发电和STATCOM系统的电网集成。

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摘要

Deployment of smart grid technologies is accelerating. Smart grid enables bidirectional flows of energy and energy-related communications. The future electricity grid will look very different from today's power system. Large variable renewable energy sources will provide a greater portion of electricity, small DERs and energy storage systems will become more common, and utilities will operate many different kinds of energy efficiency. All of these changes will add complexity to the grid and require operators to be able to respond to fast dynamic changes to maintain system stability and security.;This thesis investigates advanced control technology for grid integration of renewable energy sources and STATCOM systems by verifying them on real time hardware experiments using two different systems: d SPACE and OPAL RT. Three controls: conventional, direct vector control and the intelligent Neural network control were first simulated using Matlab to check the stability and safety of the system and were then implemented on real time hardware using the d SPACE and OPAL RT systems. The thesis then shows how dynamic-programming (DP) methods employed to train the neural networks are better than any other controllers where, an optimal control strategy is developed to ensure effective power delivery and to improve system stability. Through real time hardware implementation it is proved that the neural vector control approach produces the fastest response time, low overshoot, and, the best performance compared to the conventional standard vector control method and DCC vector control technique. Finally the entrepreneurial approach taken to drive the technologies from the lab to market via ORANGE ELECTRIC is discussed in brief.
机译:智能电网技术的部署正在加速。智能电网可实现能源和能源相关通信的双向流动。未来的电网看起来将与今天的电力系统大不相同。大型可变可再生能源将提供更多的电力,小型DER和能源存储系统将变得更加普遍,公用事业将运营许多不同类型的能源效率。所有这些变化将增加电网的复杂性,并要求运营商能够对快速的动态变化做出响应,以维持系统的稳定性和安全性。本文通过对可再生能源和STATCOM系统的电网集成进行验证,研究了先进的控制技术。使用两个不同的系统进行实时硬件实验:d SPACE和OPAL RT。三种控制:首先使用Matlab模拟传统的直接矢量控制和智能神经网络控制,以检查系统的稳定性和安全性,然后使用d SPACE和OPAL RT系统在实时硬件上实现这些控制。然后,论文说明了用于训练神经网络的动态编程(DP)方法如何比其他任何控制器都更好,在该控制器中,开发了一种最优控制策略来确保有效的功率传输并提高系统稳定性。通过实时硬件实现,证明了与传统的标准矢量控制方法和DCC矢量控制技术相比,神经矢量控制方法具有最快的响应时间,较低的过冲以及最佳的性能。最后,简要讨论了通过ORANGE ELECTRIC将技术从实验室推向市场的企业方法。

著录项

  • 作者

    Jaithwa, Ishan.;

  • 作者单位

    The University of Alabama.;

  • 授予单位 The University of Alabama.;
  • 学科 Engineering Electronics and Electrical.;Energy.;Business Administration Entrepreneurship.
  • 学位 M.S.
  • 年度 2014
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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