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Time-domain simulation of large electric power systems using domain-decomposition and parallel processing methods

机译:使用域分解和并行处理方法的大型电力系统时域仿真

摘要

Dynamic simulation studies are used to analyze the behavior of power systems after a disturbance has occurred. Over the last decades, they have become indispensable to anyone involved in power system planning, control, operation, and security. Transmission system operators depend on fast and accurate dynamic simulations to train their personnel, analyze large sets of scenarios, assess the security of the network in real-time, and schedule the day ahead operation. In addition, those designing future power systems depend on dynamic simulations to evaluate proposed reinforcements, whether these involve adding new transmission lines, increasing renewable energy sources, or implementing new control schemes.Even though almost all computers are now parallel, power system dynamic simulators are still based on monolithic, circuit-based, single-process algorithms. This is mainly due to legacy code, written in the 80's, that is still today in the core of the most important commercial tools and does not allow them to fully exploit the parallel computational resources of modern computers.In this thesis, two parallel algorithms belonging to the family of Domain Decomposition Methods are developed to tackle the computational complexity of power system dynamic simulations. The first proposed algorithm is focused on accelerating the dynamic simulation of large interconnected systems; while, the second algorithm aims at accelerating dynamic simulations of large combined transmission and distribution systems. Both proposed algorithms employ non-overlapping decomposition schemes to partition the power system model and expose parallelism. Then, “divide-and-conquer” techniques are utilized and adapted to exploit this parallelism. These algorithms allow the full usage of parallel processing resources available in modern, inexpensive, multi-core machines to accelerate the dynamic simulations. In addition, some numerical acceleration techniques are proposed to further speed-up the parallel simulations with little or no impact on accuracy.All the techniques proposed and developed in this thesis have been thoroughly tested on academic systems, a large real-life system, and a realistic system representative of the continental European synchronous grid. The investigations were performed on a large multi-core machine, set up for the needs of this work, as well as on two multi-core laptops computers.
机译:动态仿真研究用于分析发生干扰后的电力系统行为。在过去的几十年中,它们已成为涉及电力系统规划,控制,操作和安全的任何人所必需的。传输系统运营商依赖于快速,准确的动态仿真来训练其人员,分析大量场景,实时评估网络的安全性并安排提前一天的运行。此外,那些设计未来电力系统的人依赖于动态仿真来评估提议的增强措施,无论这些方案涉及增加新的输电线路,增加可再生能源或实施新的控制方案。仍然基于单片,基于电路的单处理算法。这主要是由于80年代以来编写的遗留代码仍然是当今最重要的商业工具的核心,并且不允许它们充分利用现代计算机的并行计算资源。开发了“领域分解法”系列以解决电力系统动态仿真的计算复杂性。首先提出的算法专注于加速大型互连系统的动态仿真。而第二种算法旨在加速大型组合输配电系统的动态仿真。两种提出的算法均采用非重叠分解方案来划分电力系统模型并公开并行性。然后,利用“分而治之”技术并将其改编为利用这种并行性。这些算法允许充分利用现代,廉价的多核计算机中可用的并行处理资源,以加速动态仿真。此外,还提出了一些数值加速技术来进一步加快并行仿真的速度,而对精度的影响很小或没有影响。本文中提出和开发的所有技术均已在学术系统,大型现实系统和代表欧洲大陆同步电网的现实系统。这些调查是在为满足这项工作需要而设置的大型多核计算机上进行的,并且是在两台多核便携式计算机上进行的。

著录项

  • 作者

    Aristidou, Petros;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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