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Time–Frequency Distribution Characteristic and Model Simulation of Photovoltaic Series Arc Fault With Power Electronic Equipment

机译:电力电子设备光伏串联电弧故障的时频分布特性及模型仿真

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摘要

In the photovoltaic (PV) system, the electrical characterization of series arc faults would he inevitably interfered by power electronic equipment. Existing methods are unable to effectively separate clear arc fault features from these influence factors, forming some unwanted detection barriers. In this paper, series arc fault experiments are conducted in PV systems with different kinds of power electronic equipment first. Having analyzed PV series arc faults through the existing linear transform, arc faults are hard to be identified in the undesired switching frequency band and harmonics because of noise interferences. Through establishment of effectiveness evaluation index, more performance limitations are discovered in low- and high-frequency bands for the bandpass filter effect of the linear transform. Then the arc fault identification in high and switching frequency bands become much easier after the investigation of the bilinear transform with higher time-frequency resolution. However, the performance is not obviously improved in the low-frequency band because of the cross term. Next, arc fault features in low and switching frequency hands would he more obvious through application of the adaptive transform. Besides, performances just have a slight decrease in the high-frequency band. These better time-frequency distributions are of great benefit to improve the detection accuracy and expand the application scope. Finally, the arc fault model is proposed to acquire the simulated data in the PV system with the power electronic equipment. It is found that the power electronic equipment would seriously interfere arc fault behaviors in the low and switching frequency bands.
机译:在光伏(PV)系统中,串联电弧故障的电气特性将不可避免地受到电力电子设备的干扰。现有方法无法有效地将清晰的电弧故障特征与这些影响因素分开,从而形成一些不需要的检测屏障。本文首先在具有不同类型电力电子设备的光伏系统中进行了串联电弧故障实验。通过现有的线性变换分析了PV系列电弧故障,由于噪声干扰,很难在不希望的开关频带和谐波中识别出电弧故障。通过建立有效性评估指标,对于线性变换的带通滤波器效果,在低频和高频频段中发现了更多的性能限制。因此,在研究具有较高时频分辨率的双线性变换之后,高频段和开关频段的电弧故障识别变得更加容易。但是,由于交叉项,在低频频带中的性能没有明显改善。接下来,通过应用自适应变换,低频和开关频率手中的电弧故障特征将更加明显。此外,表演只是在高频频段略有下降。这些更好的时频分布对提高检测精度和扩大应用范围具有很大的好处。最后,提出了电弧故障模型,以利用电力电子设备获取光伏系统中的仿真数据。发现电力电子设备会严重干扰低频段和开关频段的电弧故障行为。

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