Investigation of dynamic electricity line rating based on neural networks

Q3 Earth and Planetary Sciences
L. Rácz, B. Németh
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引用次数: 7

Abstract

The security of supply with a high level of operational safety and security has a prominent role in the domestic and international electricity networks. Due to continuous growth of consumer demand, the integration of renewable energy sources and other related changes in the market issues, a number of problems and challenges with the operation and utilization of the existing network have been identified. The need for a higher level of transmission capacity for the transmission network is one of the major challenges in the electricity network. Dynamic Line Rating (DLR) is a new generation of transfer capacity methods that can provide a cost-effective solution for the security of supply problems without re-planning the existing infrastructure background. The currently used Static Line Rating allows operators to calculate transfer capacity determined by the worst-case of the weather conditions on the wires of a particular transmission line. Whereas practical applicability shifts to security, the result of this calculation method is almost 95% of time less than the real permissible load of the overhead lines. This potential can be exploited with the DLR by always adjusting the maximum current that can be transmitted on wires. These maximum current values are calculated from the real-time environmental conditions, thus the DLR does not only provide better security of supply, but also a higher level of availability. The main issue of the article is to investigate the DLR based on the application of non-analytic computational methods different from the current calculations of the international standards (CIGRE, IEEE). The aim of this research is to create a neural network capable of recognizing patterns based on the weather data of previous years and the actual current values of the wires. In this way, it is not only possible to fine-tune, but also accelerate the applied calculation of maximum load capacity.
基于神经网络的动态电力线路额定值研究
供电安全具有高水平的运行安全保障,在国内外电网中发挥着突出作用。由于消费者需求的持续增长、可再生能源的整合等相关市场变化问题,现有网络的运营和利用出现了一些问题和挑战。输电网络对更高水平输电容量的需求是电力网络中的主要挑战之一。动态线路评级(DLR)是新一代的输电能力方法,可以在不重新规划现有基础设施背景的情况下,为供应安全问题提供具有成本效益的解决方案。目前使用的静态线路额定值允许运营商计算特定输电线路线路上最坏天气条件下的输电能力。虽然实际适用性转向了安全性,但这种计算方法的结果几乎比架空线路的实际允许负荷少95%的时间。DLR可以通过始终调整导线上可传输的最大电流来利用此电位。这些最大电流值是根据实时环境条件计算的,因此DLR不仅提供了更好的供电安全性,而且提供了更高水平的可用性。本文的主要问题是基于不同于当前国际标准(CIGRE、IEEE)计算的非分析计算方法的应用来研究DLR。这项研究的目的是创建一个能够根据前几年的天气数据和电线的实际电流值识别模式的神经网络。这样,不仅可以进行微调,而且可以加速最大负荷能力的应用计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energetika
Energetika Energy-Energy Engineering and Power Technology
CiteScore
2.10
自引率
0.00%
发文量
0
期刊介绍: The journal publishes original scientific, review and problem papers in the following fields: power engineering economics, modelling of energy systems, their management and optimi­zation, target systems, environmental impacts of power engi­neering objects, nuclear energetics, its safety, radioactive waste disposal, renewable power sources, power engineering metro­logy, thermal physics, aerohydrodynamics, plasma technologies, combustion processes, hydrogen energetics, material studies and technologies, hydrology, hydroenergetics. All papers are re­viewed. Information is presented on the defended theses, vari­ous conferences, reviews, etc.
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