波形松弛法在远程继电器测试中的实际应用

Mohammad Goulkhah, A. Gole
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引用次数: 2

摘要

在电力系统中安装继电器硬件之前,对新设计的继电器逻辑进行测试是必不可少的。实时仿真器(rts)被广泛用于对电力系统的计算机模型进行实时仿真,以分析继电器的闭环性能。这种模拟是昂贵的,因为rts系统需要高性能的处理单元。此外,如果rts和继电器硬件之间存在通信延迟,闭环仿真结果将不准确。本文提出了一种新的继电器闭环性能测试迭代方法。该方法使用了波形松弛(WR)的迭代方法,并使用了称为实时播放器/记录器(RTPR)的专用接口硬件。在脱机电磁暂态仿真程序中对电力系统模型进行仿真,并将继电器硬件连接到RTPR器件上。离线仿真结果(波形)被记录下来,然后通过RTPR设备实时回放到继电器。RTPR相应记录继电器响应(行程信号),并使其可用于EMT仿真。用新记录的波形再次进行了EMT模拟,并与前一次迭代的结果进行了比较。如果波形不同,则重复上述过程。收敛结果代表了EMT仿真和继电器硬件的闭环响应。该方法用于测试市售继电器(SEL-421)的重合闸功能。结果表明,一些继电器设置必须调整,以方便这种类型的模拟。该继电器还通过实时数字模拟器进行了测试,以交叉验证所提出的方法。非常相似的结果证明了所提方法的高准确度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Practical application of waveform relaxation method for testing remote protective relays
Testing of newly designed protective relay logics is essential prior to the installation of the relay hardware in power systems. Real-time simulators (rts) are widely used to simulate the computer models of the power system in real-time to analyze the closed loop performance of the relay. This kind of simulation is expensive because high performance processing units are required for the rts systems. Also, the closed loop simulation results will be inaccurate if there are communication delays between the rts and the relay hardware. In this paper, a new iterative method for the closed loop performance test of protective relays is presented. The approach uses the iterative method of the Waveform Relaxation (WR) with the use of a specialized interface hardware called the Real-Time Player/Recorder (RTPR). The power system model is simulated in an off-line electromagnetic transient (EMT) simulation program and the relay hardware is connected to the RTPR device. The off-line simulation results (waveforms) are recorded and then played back in real-time to the relay through the RTPR device. The RTPR records the relay response (trip signals) accordingly and makes them available to the EMT simulation. The EMT simulation is once again repeated with the new recorded waveforms and the results are compared with those from the previous iteration. If the waveforms are different, the above process is repeated. The converged results represent the closed loop response of the EMT simulation and the relay hardware. The approach is used to test the reclosing function of a commercially available relay (SEL-421). It is shown that some of the relay settings must be adjusted to facilitate this type of simulation. The relay is also tested by a real-time digital simulator for cross-validation of the proposed approach. Very similar results prove the high accuracy of the proposed method.
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