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Reliable and Resilient Future Grid Through T&D Co-Simulation and Improved Distribution Systems Protection Using Traveling-Wave Relays

机译:通过T&D协同模拟和改进的配电系统保护,使用行波继电器实现可靠且有弹性的未来电网

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摘要

Over the past century, US electric grid has evolved into an extremely complex and large interconnected grid identified by the National Academy of Engineers (NAE) as the greatest engineering achievement of the century. During that period, the overwhelming accepted principle was "larger or bigger the better". The AC transmission voltage went up to 765 kV and the individual generating units were in excess of 1,000 MW. This centralized generation model was considered to be efficient and reliable way to operate the grid. This grid continued to serve the nation well. It, however, faced serious challenges with the demands of the 21st century that will require high penetration of renewable energy, environmental impact of large power plants, global warming and climate change, carbon emission and global energy sustainability. New approach had to be taken to adopt the new regulatory policies. Emerging trends such as low-cost natural gas, increased deployment of renewable energy technologies in distribution, and continued evolution of electricity markets are transforming the ways to generate and deliver electricity. Other factors such as environmental policies to reduce the carbon footprint, maximize the energy efficiency by utilizing the distributed based renewable energy generation also influence the future grid structure. Aging infrastructure combined with the growth and the evolving de-centralized model will have significant impact on the future grid's ability to provide the electricity more efficiently, reliably, with higher resiliency.This dissertation is divided into two parts: (1) to achieve greater resiliency, it proposes an integrated T&D co-simulation framework that considers the effects of Distributed Energy Resources (DER) in the distribution. (2) to achieve greater reliability, improved system protection is needed at the distribution level that considers the DER affect such as two-way power flow, low fault currents, etc. This dissertation proposes and analyzes the travelling-wave (TW) based protection at the distribution level. Integrated T&D framework and the TW based protection improves the grid to be more reliable and resilient.
机译:在过去的一个世纪里,美国电网已经发展成为一个极其复杂和大型的互连电网,被美国国家工程师学院 (NAE) 确定为本世纪最伟大的工程成就。在那段时间里,压倒性的公认原则是“越大越好”。交流输电电压上升到 765 kV,单个发电机组超过 1,000 MW。这种集中式发电模式被认为是运行电网的高效可靠方式。这个网格继续为国家提供良好的服务。然而,它面临着 21 世纪需求的严峻挑战,这将需要可再生能源的高渗透率、大型发电厂的环境影响、全球变暖和气候变化、碳排放和全球能源可持续性。必须采取新的方法来采用新的监管政策。低成本天然气、可再生能源技术在配电中的部署增加以及电力市场的持续发展等新兴趋势正在改变发电和输送的方式。其他因素,例如减少碳足迹的环境政策,通过利用分布式可再生能源发电最大限度地提高能源效率,也会影响未来的电网结构。老化的基础设施,加上增长和不断发展的去中心化模式,将对未来电网更高效、更可靠、具有更高弹性的电力能力产生重大影响。本论文分为两个部分:(1) 为了实现更大的弹性,它提出了一个集成的 T&D 协同模拟框架,该框架考虑了分布式能源 (DER) 在分布中的影响。(2) 为了实现更高的可靠性,需要在配电层改进系统保护,考虑 DER 影响,例如双向潮流、低故障电流等。本论文提出并分析了配电层基于行波 (TW) 的保护。集成的T&D框架和基于TW的保护使电网更加可靠和有弹性。

著录项

  • 作者

    Velaga, Yaswanth Nag.;

  • 作者单位

    Colorado School of Mines.;

  • 授予单位 Colorado School of Mines.;
  • 学科 Electrical engineering.;Engineering.
  • 学位
  • 年度 2020
  • 页码 190
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Electrical engineering.; Engineering.;

    机译:电气工程。;工程。;

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