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Analysis and Modeling of Advanced Power Control and Protection Requirements for Integrating Renewable Energy Sources in Smart Grid,

机译:智能电网中可再生能源集成的先进电源控制和保护要求分析与建模,

摘要

Attempts to reduce greenhouse gas emissions are promising with the recent dramatic increase of installed renewable energy sources (RES) capacity. Integration of large intermittent renewable resources affects smart grid systems in several significant ways, such as transient and voltage stability, existing protection scheme, and power leveling and energy balancing. To protect the grid from threats related to these issues, utilities impose rigorous technical requirements, more importantly, focusing on fault ride through requirements and active/reactive power responses following disturbances. This dissertation is aimed at developing and verifying the advanced and algorithmic methods for specification of protection schemes, reactive power capability and power control requirements for interconnection of the RESs to the smart grid systems. The first findings of this dissertation verified that the integration of large RESs become more promising from the energy-saving, and downsizing perspective by introducing a resistive superconducting fault current limiter (SFCL) as a self-healing equipment. The proposed SFCL decreased the activation of the conventional control scheme for the wind power plant (WPP), such as dc braking chopper and fast pitch angle control systems, thereby increased the reliability of the system.A static synchronous compensator (STATCOM) has been proposed to assist with the uninterrupted operation of the doubly-fed induction generators (DFIGs)-based WTs during grid disturbances. The key motivation of this study was to design a new computational intelligence technique based on a multi-objective optimization problem (MOP), for the online coordinated reactive power control between the DFIG and the STATCOM in order to improve the low voltage ride-through (LVRT) capability of the WT during the fault, and to smooth low-frequency oscillations of the active power during the recovery. Furthermore, the application of a three-phase single-stage module-integrated converter (MIC) incorporated into a grid-tied photovoltaic (PV) system was investigated in this dissertation. A new current control scheme based on multivariable PI controller, with a faster dynamic and superior axis decoupling capability compared with the conventional PI control method, was developed and experimentally evaluated for three-phase PV MIC system. Finally, a study was conducted based on the framework of stochastic game theory to enable a power system to dynamically survive concurrent severe multi-failure events, before such failures turn into a full blown cascading failure. This effort provides reliable strategies in the form of insightful guidelines on how to deploy limited budgets for protecting critical components of the smart grid systems.
机译:随着最近已安装的可再生能源(RES)容量的急剧增加,尝试减少温室气体排放是有希望的。大型间歇性可再生资源的集成会以多种重要方式影响智能电网系统,例如瞬态和电压稳定性,现有保护方案以及功率均衡和能量平衡。为了保护电网免受与这些问题有关的威胁,公用事业公司提出了严格的技术要求,更重要的是,重点关注故障穿越要求以及干扰后的有功/无功功率响应。本文旨在开发和验证用于保护方案,无功功率能力和RES与智能电网系统互连的功率控制要求的高级算法算法。本文的初步发现证明,通过引入电阻式超导故障限流器(SFCL)作为自愈设备,从节能和小型化的角度来看,大型RES的集成变得更有希望。所提出的SFCL减少了风力发电站(WPP)的常规控制方案(例如直流制动斩波器和快速俯仰角控制系统)的激活,从而提高了系统的可靠性。来帮助电网干扰期间基于双馈感应发电机(DFIG)的WT的不间断运行。这项研究的主要动机是基于多目标优化问题(MOP)设计一种新的计算智能技术,用于DFIG和STATCOM之间的在线协调无功功率控制,以改善低压穿越( WT在故障期间的能力,以及在恢复期间平滑有功功率的低频振荡的能力。此外,本文还研究了并网光伏发电系统中集成的三相单级模块集成变换器的应用。提出了一种基于多变量PI控制器的电流控制方案,与传统的PI控制方法相比,具有更快的动态和更好的轴解耦能力,并针对三相PV MIC系统进行了实验评估。最后,基于随机博弈理论的框架进行了研究,以使电力系统能够在并发严重的多故障事件动态转变为完全级联故障之前动态幸免。这项工作以具有洞察力的指导方针的形式提供了可靠的策略,这些指导方针涉及如何部署有限的预算来保护智能电网系统的关键组件。

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    Moghadasiriseh Amirhasan;

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  • 年度 2016
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