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Fault Diagnosis for Electrical Systems and Power Networks: A Review

机译:电气系统和电网故障诊断:审查

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In this paper, we review the state of the art in the detection, location, and diagnosis of faults in electrical wiring interconnection systems (EWIS) including in the electric power grid and vehicles and machines. Most electrical test methods rely on measurements of either currents and voltages or on high frequency reflections from impedance discontinuities. Of these high frequency test methods, we review phasor, travelling wave and reflectometry methods. The reflectometry methods summarized include time domain reflectometry (TDR), sequence time domain reflectometry (STDR), spread spectrum time domain reflectometry (SSTDR), orthogonal multi-tone reflectometry (OMTDR), noise domain reflectometry (NDR), chaos time domain reflectometry (CTDR), binary time domain reflectometry (BTDR), frequency domain reflectometry (FDR), multicarrier reflectometry (MCR), and time-frequency domain reflectometry (TFDR). All of these reflectometry methods result in complex data sets (reflectometry signatures) that are the result of reflections in the time/frequency/spatial domains. Automated analysis techniques are needed to detect, locate, and diagnose the fault including genetic algorithm (GA), neural networks (NN), particle swarm optimization, teaching–learning-based optimization, backtracking search optimization, inverse scattering, and iterative approaches. We summarize several of these methods including electromagnetic time-reversal (TR) and the matched-pulse (MP) approach. We also discuss the issue of soft faults (small impedance changes) and methods to augment their signatures, and the challenges of branched networks. We also suggest directions for future research and development.
机译:在本文中,我们在包括在电力电网和车辆和机器中的电气布线互连系统(EWIS)中的检测,位置和诊断中审查了本领域的概念。大多数电气测试方法依赖于电流和电压的测量或阻抗不连续性的高频反射。在这些高频测试方法中,我们审查了相量,行波和反射测量方法。总结的反射测量方法包括时域反射区(TDR),序列时域反射仪(SSTD),扩频时域反射仪(SSTDR),正交多音响反射仪(OMTDR),噪声域反射仪(NDR),混沌时域反射率( CTDR),二进制时域反射区(BTDR),频域反射区(FDR),多载波反射区(MCR)和时频域反射仪(TFDR)。所有这些反射测量方法都会导致复杂的数据集(反射区签名),其是时间/频率/空间域中的反射的结果。需要自动分析技术来检测,定位和诊断包括遗传算法(GA),神经网络(NN),粒子群优化,基于教学的优化,回溯搜索优化,逆散射和迭代方法的故障。我们总结了这些方法中的几种方法,包括电磁时间反转(TR)和匹配脉冲(MP)方法。我们还讨论了软件问题(小阻抗变化)和增强其签名的方法,以及分支网络的挑战。我们还建议未来的研究和发展的指示。

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