金琰, 胡钰骁, 石超群, 何光华, 王昱力, 徐阳. 基于反射系数的电缆故障定位及评估优化算法[J]. 高电压技术, 2025, 51(5): 2436-2446. DOI: 10.13336/j.1003-6520.hve.20241152
引用本文: 金琰, 胡钰骁, 石超群, 何光华, 王昱力, 徐阳. 基于反射系数的电缆故障定位及评估优化算法[J]. 高电压技术, 2025, 51(5): 2436-2446. DOI: 10.13336/j.1003-6520.hve.20241152
JIN Yan, HU Yuxiao, SHI Chaoqun, HE Guanghua, WANG Yuli, XU Yang. Cable Fault Location and Assessment Optimization Algorithm Based on Reflection Coefficient[J]. High Voltage Engineering, 2025, 51(5): 2436-2446. DOI: 10.13336/j.1003-6520.hve.20241152
Citation: JIN Yan, HU Yuxiao, SHI Chaoqun, HE Guanghua, WANG Yuli, XU Yang. Cable Fault Location and Assessment Optimization Algorithm Based on Reflection Coefficient[J]. High Voltage Engineering, 2025, 51(5): 2436-2446. DOI: 10.13336/j.1003-6520.hve.20241152

基于反射系数的电缆故障定位及评估优化算法

Cable Fault Location and Assessment Optimization Algorithm Based on Reflection Coefficient

  • 摘要: 频域反射法(frequency domain reflection,FDR)对阻抗变化微弱的缺陷或故障具有良好的检测与定位能力,在电缆故障诊断领域得到了广泛的应用,然而近年来现场经验表明该方法尚不能解决判断故障类型与严重程度的问题。针对以上问题,该文基于频域-空间域积分变换,提出了一种提升电缆故障定位能力,评估故障类型与严重程度的优化算法。首先利用光孤子在光纤通信等领域中的良好自维持性,向电缆频域反射信息中调制其频谱信息,其次定义衰减算子对频谱信息及积分核函数进行衰减补偿,设置Chebyshev窗函数削弱待测频谱低频成分。该方法在保证高检测灵敏度及定位精度的同时实现了电缆异常处阻抗不匹配类型的判别,根据定位曲线中反射信息的幅值进一步评估其故障严重程度。研究在10 kV电缆模拟线路中进行了不同失配程度的感性、容性故障及中间接头的仿真验证;分别对同轴电缆、10 kV电缆实验线路及已投运的5 km 110 kV电缆线路进行实测,结果表明其定位精度误差 < 2%,能够准确判断故障类型并评估其严重程度。

     

    Abstract: The frequency domain reflection (FDR) method, known for excellent capabilities in detecting and localizing minor impedance changes in faults, is widely applied in cable fault diagnosis. However, recent field experience has shown that this method is still inadequate in determining the types and severity of faults. To address these issues, an optimized algorithm based on the frequency-domain to space-domain integral transform is proposed in this paper to enhance the cable fault localization capability and to assess the fault type and severity. Initially, spectral information is modulated into the cable's frequency information using the soliton's good self-sustaining properties, as demonstrated in optical fiber communication. A decay operator is then defined to perform attenuation compensation on the spectral information and the integral kernel function, and a Chebyshev window function is employed to diminish the low-frequency components of the spectrum. This method not only maintains high detection sensitivity and precision but also enables discrimination of impedance mismatches and severity assessment based on reflection amplitude. Research has been conducted with simulations on a 10 kV cable simulation line involving inductive faults, capacitive and joints at different mismatch levels; real measurements have been carried out on coaxial cables, a 10 kV experimental cable line, and a 110 kV operational cable line. The results show that a localization precision error of less than 2% can be achieved, accurately determining fault types and assessing their severity, thereby verifying the effectiveness and feasibility of the improved algorithm.

     

/

返回文章
返回