基于周期差分能量与波形自相似度的小电阻接地系统高阻接地故障检测方法

A Method for Detecting High Impedance Grounding Faults in a Small Resistance Grounding System Based on the Periodic Difference in Energy and Waveform Self-similarity

  • 摘要: 小电阻接地系统发生高阻接地故障时,馈线上的零序过流保护与主站的选线装置存在拒动风险。为提高小电阻接地系统耐过渡电阻能力,提出一种基于周期差分能量与波形自相似度的高阻接地故障检测方法。首先,定量研究小电阻接地系统单相接地故障特征,分析零序过流保护与选线装置拒动的原因;随后,采用零序电压周期差分能量对包括接地故障在内的多种扰动进行初步检测,设定阈值以防止采样点数据丢失导致的保护误动作;在此基础上,选取稳态零序电压的连续数个周波,利用 Tanimoto系数计算零序电压的波形自相似度,进一步区分永久接地故障与瞬时扰动。最后,在Matlab/Simulink仿真环境中搭建典型小电阻接地系统高阻接地故障仿真模型,对各种故障工况与瞬时扰动进行检测。仿真结果表明,在20 dB高斯白噪声干扰下,所提方法可有效检测出永久接地故障与间歇弧光接地故障,不受故障位置与相角的影响,耐过渡电阻极限值可提升至7 kΩ;且在三相不同期合闸等瞬时扰动下能够及时闭锁选线装置,抗干扰性强;全程仅需母线零序电压即可完成检测,无须安装其他监测设备,易于实现,经济性好。

     

    Abstract: The small resistance grounding system is at risk of maloperation for the zero-sequence overcurrent protection on the feeder and the line selection device at the main station when a high impedance grounding fault occurs. To enhance the capability of small resistance grounding systems to withstand transient resistance, a detection method for high impedance grounding faults based on periodic differential energy and waveform self-similarity is proposed. Firstly, the characteristics of single-phase grounding faults in the small resistance grounding system are quantitatively studied, and the reasons for the maloperation of zero-sequence overcurrent protection and the line selection device are analyzed. Subsequently, the periodic differential energy of zero-sequence voltage is used for preliminary detection of various disturbances including grounding faults, and a threshold is set to prevent protection mis-operation due to data loss at sampling points. Based on this, consecutive cycles of steady-state zero-sequence voltage are selected, and the Tanimoto coefficient is utilized to calculate the waveform self-similarity of the zero-sequence voltage, further distinguishing between permanent grounding faults and transient disturbances. Finally, a simulation model of high impedance grounding faults in a typical small resistance grounding system is constructed by Matlab/Simulink, and various fault conditions and transient disturbances are simulated. The simulation results indicate that under 20 dB Gaussian white noise interference, the method effectively detects permanent grounding faults and intermittent arc grounding faults, is not affected by fault location or phase angle, and the limit of resistance to transient faults can be increased to 7 kΩ. Additionally, the line selection device is promptly locked during transient disturbances such as out-of-phase three-phase switching, demonstrating strong anti-interference capabilities. The entire detection process requires only the bus zero-sequence voltage, without the need for additional monitoring equipment, making it easy to implement and cost-effective.

     

/

返回文章
返回