数字测量保护元件中输入信号正交分量的形成及动态误差校正

Q3 Energy
F. Romaniuk, Y. Rumiantsev, V. Rumiantsev
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引用次数: 3

摘要

电气装置微处理器保护中的数字测量元件主要是利用输入信号的正交分量来实现的。为了在微处理器保护中形成正交分量,数字傅里叶滤波器应用最为广泛,其在瞬态模式下的作用总是惯性的。结果,出现了动态误差,随着时间的推移而变化,当稳态状态发生时完全消失。动态误差包括幅值误差和相位误差,会严重影响数字测量元件的功能,并为其在外部短路时的过度触发和内部短路时的减速触发创造条件。因此,对动态误差进行补偿是可取的,为此提出用特殊形式的正交分量确定基频信号的幅值和相位。提出了一种补偿动态幅度和相位误差的信号正交分量的方法,该方法基于数字傅立叶滤波器的正交分量的使用,然后确定其最终正交分量的样本,这些正交分量在稳态模式下与傅立叶正交分量重合,在瞬态模式下相对于后者相移。在动态相位误差最小的情况下,由数字测量元件中最终正交分量的采样值计算出信号的幅值和相位。在MATLAB-Simulink-SimPowerSystems的动态建模环境下,实现了一个数字模型,该模型包括一个电力系统、一组三相电流互感器、一个负载、一个短路块,以及一个基于最终正交分量实现的数字测量元件模型。采用频率为50 Hz的正弦信号和接近短路电流互感器真实二次电流的信号两种测试效果来检查数字模型的运行情况。计算结果表明,与作为参考的傅立叶测量元件相比,基于所提出的方法制作的数字测量元件可以将相对动态幅度和相位误差降低三到四倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Formation of Orthogonal Components of Input Signals in Digital Measuring Protection Elements with Correction of Dynamic Errors
Digital measuring elements in microprocessor protections of electrical installations are implemented mainly with the use of orthogonal components of input signals. To form orthogonal components in microprocessor protections, digital Fourier filters are most widely used, the action of which is al-ways inertial in transient modes. As a result, a dynamic error appears, changing over time and completely disappearing when a steady-state regime occurs. The dynamic error consists of amplitude and phase errors, which can significantly affect the functioning of digital measuring elements and create conditions for their excessive triggering during external short circuits and deceleration of triggering during internal short circuits. Therefore, it is advisable to compensate for the dynamic error, for which it is proposed to determine the amplitude and phase of the fundamental harmonic signal by specially formed orthogonal components. The proposed method of forming orthogonal components of the signal with compensation of dynamic amplitude and phase errors is based on the use of orthogonal components of the digital Fourier filter, followed by the determination of their samples of the final orthogonal components that coincide with the orthogonal components of Fourier in steady-state mode and shifted in phase relative to the latter in transient mode. The amplitude and phase of the signal with minimal dynamic phase errors are calculated from the samples of the final orthogonal components in the digital measuring element. In the dynamic modeling environment of MATLAB-Simulink-SimPowerSystems, a digital model is implemented, which includes a power system, a three-phase group of current transformers, a load, a short-circuit block, as well as a model of a digital measuring element implemented on the basis of the final orthogonal components. The operation of the digital model was checked using two types of test effects, viz. a sinusoidal signal with a frequency of 50 Hz, and a signal close to the real secondary current of a short-circuit current transformer. As a result of the calculations, it was found that digital measuring elements made on the basis of the proposed methodology made it possible to reduce the relative dynamic amplitude and phase errors by three to four times, as compared with the Fourier measuring element taken as a reference.
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来源期刊
CiteScore
1.60
自引率
0.00%
发文量
32
审稿时长
8 weeks
期刊介绍: The most important objectives of the journal are the generalization of scientific and practical achievements in the field of power engineering, increase scientific and practical skills as researchers and industry representatives. Scientific concept publications include the publication of a modern national and international research and achievements in areas such as general energetic, electricity, thermal energy, construction, environmental issues energy, energy economy, etc. The journal publishes the results of basic research and the advanced achievements of practices aimed at improving the efficiency of the functioning of the energy sector, reduction of losses in electricity and heat networks, improving the reliability of electrical protection systems, the stability of the energetic complex, literature reviews on a wide range of energy issues.
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