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Development of Hardware in the Loop Real-Time Control Techniques for Hybrid Power Systems Involving Distributed Demands and Sustainable Energy Sources

机译:分布式需求与可持续能源混合动力系统硬件在环实时控制技术的发展

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The future power grid will effectively utilize renewable energy resources and distributed generation to respond to energy demand while incorporating information technology and communication infrastructure for their optimum operation. This dissertation contributes to the development of real-time techniques, for wide-area monitoring and secure real-time control and operation of hybrid power systems.To handle the increased level of real-time data exchange, this dissertation develops a supervisory control and data acquisition (SCADA) system that is equipped with a state estimation scheme from the real-time data. This system is verified on a specially developed laboratory-based test bed facility, as a hardware and software platform, to emulate the actual scenarios of a real hybrid power system with the highest level of similarities and capabilities to practical utility systems. It includes phasor measurements at hundreds of measurement points on the system. These measurements were obtained from especially developed laboratory based Phasor Measurement Unit (PMU) that is utilized in addition to existing commercially based PMU’s. The developed PMU was used in conjunction with the interconnected system along with the commercial PMU’s. The tested studies included a new technique for detecting the partially islanded micro grids in addition to several real-time techniques for synchronization and parameter identifications of hybrid systems.Moreover, due to numerous integration of renewable energy resources through DC microgrids, this dissertation performs several practical cases for improvement of interoperability of such systems. Moreover, increased number of small and dispersed generating stations and their need to connect fast and properly into the AC grids, urged this work to explore the challenges that arise in synchronization of generators to the grid and through introduction of a Dynamic Brake system to improve the process of connecting distributed generators to the power grid.Real time operation and control requires data communication security. A research effort in this dissertation was developed based on Trusted Sensing Base (TSB) process for data communication security. The innovative TSB approach improves the security aspect of the power grid as a cyber-physical system. It is based on available GPS synchronization technology and provides protection against confidentiality attacks in critical power system infrastructures.
机译:未来的电网将有效利用可再生能源和分布式发电来满足能源需求,同时结合信息技术和通信基础设施以实现最佳运行。本文为混合动力系统的广域监控和安全实时控制与操作的实时技术的发展做出了贡献。为应对日益增长的实时数据交换水平,本论文开发了监督控制和数据采集(SCADA)系统,该系统配备有根据实时数据进行的状态估计方案。该系统已在专门开发的基于实验室的测试平台设施(作为硬件和软件平台)上进行了验证,以模拟真正的混合动力系统的实际情况,该系统与实用系统的相似性和功能最高。它包括系统上数百个测量点处的相量测量。这些测量值是从专门开发的基于实验室的相量测量单元(PMU)获得的,该相量测量单元是在现有的基于商业的PMU的基础上再利用的。开发的PMU与互连系统以及商用PMU一起使用。测试的研究除了包括用于混合系统同步和参数识别的多种实时技术外,还包括一种用于检测部分孤岛微电网的新技术。此外,由于可再生能源通过直流微电网的大量集成,本文进行了一些实际的研究。改善此类系统的互操作性的案例。此外,越来越多的小型分散发电站,以及它们需要快速正确地连接到交流电网的要求,敦促这项工作来探索在发电机与电网同步化过程中出现的挑战,并通过引入动态制动系统来改善发电效率。将分布式发电机连接到电网的过程。实时操作和控制要求数据通信的安全性。本文基于可信感知基础(TSB)过程,为数据通信的安全性进行了研究。创新的TSB方法改善了作为网络物理系统的电网的安全性。它基于可用的GPS同步技术,可提供针对关键电力系统基础架构中的机密性攻击的保护。

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    Mazloomzadeh Ali;

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  • 年度 2014
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