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Case Study: An Adaptive Underfrequency Load-Shedding System

机译:案例研究:自适应低频减载系统

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摘要

Underfrequency (UF) schemes are implemented in nearly every power system and are deemed critical methods to avert system-wide blackouts. Unfortunately, UF-based schemes are often ineffective for industrial power systems. Traditional UF schemes are implemented in either discrete electromechanical relays or microprocessor-based multifunction relays. Individual loads or feeders are most commonly shed by relays working autonomously. The UF in each relay is set in a staggered fashion, using different timers and UF thresholds. Sometimes, $domega/dt$ elements are used to select larger blocks of load to shed. Unfortunately, no traditional schemes take into account load-level changes, system inertia changes, changes in load composition, governor response characteristics, or changes in system topology. This paper explains an adaptive method that overcomes known UF scheme problems by using communication between remote protective relays and a centralized UF appliance. This method continuously keeps track of dynamically changing load levels, system topology, and load composition. The theory behind the improved scheme is explained using modeling results from a real power system.
机译:几乎所有电力系统中都采用了低频(UF)方案,被认为是避免系统范围内停电的关键方法。不幸的是,基于超滤的方案通常对工业电源系统无效。传统超滤方案可在离散式机电继电器或基于微处理器的多功能继电器中实现。单个负载或馈线通常是由自动工作的继电器释放的。使用不同的计时器和UF阈值,以交错方式设置每个继电器中的UF。有时,$ domega / dt $元素用于选择要减轻的较大负载块。不幸的是,没有传统的方案考虑到负载水平的变化,系统惯性的变化,负载组成的变化,调速器响应特性或系统拓扑的变化。本文介绍了一种自适应方法,该方法通过使用远程保护继电器和集中式UF设备之间的通信来克服已知的UF方案问题。此方法连续跟踪动态变化的负载级别,系统拓扑和负载组成。改进方案背后的理论是使用真实电力系统的建模结果进行解释的。

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