Department of Electrical Engineering, ESEIAAT, Universitat Politècnica de Catalunya, 08222 Terrassa, Spain.
Sensors (Basel). 2023 Jan 9;23(2):744. doi: 10.3390/s23020744.
Current transformer saturation affects measurement accuracy and, consequently, protection reliability. One important concern in the case of overcurrent protections is the discrimination between faults and inrush current in power transformers. This paper presents an FPGA-based smart sensor to detect current transformer saturation, especially during inrush current conditions. Several methods have been proposed in the literature, but some are unsuitable for inrush currents due to their particular waveform. The proposed algorithm implemented on the smart sensor uses two time-domain features of the measured secondary current: the second-order difference function and the third-order statistic central moment. The proposed smart sensor presents high effectiveness and immunity against noise with accurate results in different conditions: different residual flux, resistive burdens, sampling frequency, and noise levels. The points at which saturation starts are detected with an accuracy of approximately 100%. Regarding the end of saturation, the proposed method detects the right ending points with a maximum error of a sample. The smart sensor has been tested on experimental online and real-time conditions (including an anti-aliasing filter) with accurate results. Unlike most existing methods, the proposed smart sensor operates efficiently during inrush conditions. The smart sensor presents high-speed processing despite its simplicity and low computational cost.
电流互感器饱和会影响测量精度,从而影响保护可靠性。在过电流保护中,一个重要问题是区分变压器故障和励磁涌流。本文提出了一种基于 FPGA 的智能传感器,用于检测电流互感器饱和,特别是在励磁涌流情况下。文献中已经提出了几种方法,但由于其特殊的波形,有些方法不适合励磁涌流。该智能传感器上实现的算法使用测量的二次电流的两个时域特征:二阶差分函数和三阶统计中心矩。所提出的智能传感器具有很高的有效性和抗噪能力,在不同条件下都能得到准确的结果:不同的剩磁、电阻负载、采样频率和噪声水平。饱和开始的点的检测精度约为 100%。至于饱和的结束,所提出的方法以最大一个样本的误差检测到正确的结束点。该智能传感器已经在实验在线和实时条件下(包括抗混叠滤波器)进行了测试,结果准确。与大多数现有方法不同,所提出的智能传感器在励磁涌流情况下也能高效运行。该智能传感器尽管简单且计算成本低,但具有高速处理能力。