Detection and Protection Against Geomagnetically Induced Current via Harmonic Signature Analysis

Jiahao Xie, A. P. Sakis Meliopoulos, G. Cokkinides
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Abstract

Geomagnetically induced current (GIC) manifests its effects in electric power systems with DC current flow and characteristic harmonic signatures in the AC current. The harmonics generated from GIC will overheat transformers and other iron core circuits and increase reactive power consumption. We identify the major power devices affected by GIC and determine the modeling requirements for realistic assessment of GIC effects including harmonic signature during these events. Low frequency broadband transmission line models, grounding models, and transformer models with nonlinear reluctance in the magnetic circuit are developed and used for high fidelity simulations of power systems subjected to GIC. In addition, the DC component generated by GIC would introduce DC flux in iron cores instrument current transformers, leading to distorted magnetizing current and distorted output. The non-sinusoidal magnetizing current will increase significantly as the DC flux increases, leading to distortion in measurements. To reduce this distortion, a state estimation based method for instrumentation channel error correction is implemented, derived from the detailed modeling of the instrumentation channel. The method reduces the error from this distortion and recreates the primary quantities with high fidelity. The risk of relay misoperation due to errors in measurements is drastically reduced. Based on the result of harmonic signature analysis, a detection and protection scheme for GIC is proposed and simulated. The detection is based on the characteristic harmonic signature consisting of odd- and evenorder harmonics; the control consists of the insertion of a grounding capacitor between transformer neutral and ground. The results show the proposed method is able to successfully detect the onset of GIC and protect the power system by drastically reducing the harmful harmonic components during GIC.
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基于谐波特征分析的地磁感应电流检测与保护
地磁感应电流(GIC)在电力系统中表现为直流电流和交流电流的特有谐波特征。GIC产生的谐波会使变压器和其他铁芯电路过热,增加无功功率消耗。我们确定了受GIC影响的主要功率器件,并确定了实际评估GIC影响的建模要求,包括这些事件中的谐波特征。建立了低频宽带传输线模型、接地模型和磁路中具有非线性磁阻的变压器模型,并将其用于受GIC影响的电力系统的高保真仿真。此外,GIC产生的直流分量会在铁芯仪表电流互感器中引入直流磁通,导致磁化电流畸变,输出失真。非正弦磁化电流会随着直流磁通的增大而显著增大,导致测量失真。为了减少这种失真,在对仪器信道进行详细建模的基础上,提出了一种基于状态估计的仪器信道误差校正方法。该方法减少了这种失真所带来的误差,并以高保真度再现了原始量。由于测量误差导致继电器误操作的风险大大降低。在谐波特征分析的基础上,提出了一种谐波检测与保护方案,并进行了仿真。基于奇次谐波和偶次谐波组成的特征谐波特征进行检测;控制包括在变压器中性点和地之间插入接地电容。结果表明,该方法能够有效地检测出故障的发生,并通过大幅降低故障过程中的有害谐波分量来保护电力系统。
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