Improved Locating Method for Local Defects in XLPE Cable Based on Broadband Impedance Spectrum
Abstract
:1. Introduction
2. BIS Algorithm
2.1. Transmission Line Model
2.2. BIS Algorithm
2.3. The selection of Gaussian Signal
2.4. The Process of Time–Frequency Transformation
2.5. Location of Reflected Peaks
3. Results and Discussion
3.1. Experimental Setup
3.2. Location Spectra of Samples
3.3. Locating Results of Abrasion and Nail Insertion
4. Conclusions
- The pulse width parameter c of the Gaussian signal is determined by the upper limit frequency of BIS. The proper c will improve the locating resolution.
- The location spectrum can locate mechanical abrasion and an inserted nail in a 20 m cable. The location of the abrasion shows two reflected peaks, and the location of the inserted nail shows a single reflected peak.
- In the location of abrasion, the deviation is within 1%. The centroid and function fitting methods can effectively reduce the positioning error.
- When the depth of the nail insertion is small, the locating deviation is within 1%. The centroid method and function fitting method can reduce the locating error. When the nail insertion depth is greater, the absolute value of the deviation will be more significant, and the maximum absolute value is 4%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Number | Abrasion Location (Maximum Method) (m) | Abrasion Location (Centroid Method) (m) | Abrasion Location (Function Fitting Method) (m) |
---|---|---|---|
(a) | — | — | — |
(b) | 9.188 | 8.951 | 9.101 |
(c) | 9.190 | 9.216 | 9.055 |
(d) | 9.138 | 8.977 | 9.030 |
(e) | 9.134 | 9.041 | 9.089 |
(f) | 9.118 | 9.052 | 9.086 |
Ratio of Nail Depth to Insulation Thickness n | Nail Location (Maximum Method) (m) | Nail Location (Centroid Method) (m) | Nail Location (Function Fitting Method) (m) |
---|---|---|---|
25% | 12.424 | 12.335 | 12.381 |
50% | 12.456 | 12.337 | 12.360 |
75% | 12.128 | 11.636 | 12.020 |
100% | 12.856 | 12.904 | 12.878 |
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Wei, L.; Pang, X.; Su, J.; Han, T.; Yao, Y. Improved Locating Method for Local Defects in XLPE Cable Based on Broadband Impedance Spectrum. Energies 2022, 15, 8295. https://doi.org/10.3390/en15218295
Wei L, Pang X, Su J, Han T, Yao Y. Improved Locating Method for Local Defects in XLPE Cable Based on Broadband Impedance Spectrum. Energies. 2022; 15(21):8295. https://doi.org/10.3390/en15218295
Chicago/Turabian StyleWei, Liqiang, Xianhai Pang, Jingang Su, Tao Han, and Yufei Yao. 2022. "Improved Locating Method for Local Defects in XLPE Cable Based on Broadband Impedance Spectrum" Energies 15, no. 21: 8295. https://doi.org/10.3390/en15218295
APA StyleWei, L., Pang, X., Su, J., Han, T., & Yao, Y. (2022). Improved Locating Method for Local Defects in XLPE Cable Based on Broadband Impedance Spectrum. Energies, 15(21), 8295. https://doi.org/10.3390/en15218295