A Method for Assessing the Degradation of PVC-Insulated Low-Voltage Distribution Cables Exposed to Short-Term Cyclic Aging
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Types
- NYCWY kV mm2, manufactured by Cablel Hellenic Cables Group. The structure from inside to outside: 1. copper conductors, 2. PVC core insulation, 3. filling material, 4. copper wire and tape screen, and 5. PVC jacket. The cable structure of the NYCWY type can be seen in Figure 1. The maximum conductor operating temperature of NYCWY is 70 °C.
- SZRMtKVM kV mm2, manufactured by Pyrismian MKM Kft. The structure from inside to outside: 1. copper conductors, 2. PVC core insulation, 3. PVC tape belt, 4. steel armor, and 5. PVC jacket. The cable structure of SZRMtKVM can be seen in Figure 2. According to the datasheet, the maximum conductor operating temperature of SZRMtKVM is 70 °C.
2.2. Aging
- Setting the climate chamber temperature to 110 °C.
- Placing the samples inside the climate chamber once the temperature reached the setpoint value.
- Keeping the samples inside the climate chamber for accelerated thermal aging.
- Removing the samples from the climate chamber.
- Placing the samples at room temperature for pre-conditioning for 24 h.
- Performing the dielectric measurements.
2.3. Measurement Techniques
2.3.1. Dielectric Response Measurement
- Tan Measurement
- Extended voltage response (EVR)
2.3.2. Mechanical Measurement
2.4. Regression Analysis
3. Results
3.1. SZRMtKVM-Type Cable
3.1.1. Results of Tan Measurement
3.1.2. Results of EVR Measurement
3.1.3. Shore D Hardness
3.2. NYCWY-Type Cable
3.2.1. Results of Tan Measurement
3.2.2. Results of EVR Measurement
3.2.3. Shore D Hardness
4. Discussion
4.1. Tan Measurement
- 50 Hz.
- 100 Hz.
- 2 kHz.
- 5 kHz.
- 500 kHz.
4.2. EVR Measurement
4.3. Shore D Hardness
4.4. Correlation between Electrical and Mechanical Quantities
- For SZRMtKVM type:
- -
- The highest correlation between the mechanical and electrical measurements was observed at a frequency of 2 kHz. Therefore, it can be concluded that 2 kHz can be utilized as an aging marker for the FDS technique.
- -
- The measurement at a 1-s discharging time exhibited a strong correlation with the hardness measurement. Therefore, it can also be utilized as an aging marker in the TDS technique.
- -
- Overall, in the case of SZRMtKVM, the FDS technique demonstrated a slightly better correlation with aging compared to the TDS technique at frequency points of 100 Hz, 2 kHz, and 5 kHz.
- For NYCWY type:
- -
- The frequency domain spectroscopy (FDS) technique exhibited a weak correlation with hardness, with the highest coefficient of determination () of 0.5974 observed at a frequency of 100 Hz.
- -
- The time domain spectroscopy (TDS) technique demonstrated a relatively strong correlation, with coefficient of determination () values above 0.8 for both and .
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
CM | Condition Monitoring |
LV | Low Voltage |
PVC | Polyvinyl Chloride |
XLPE | Cross-linked Polyethylene |
CSPE | Chlorosulfonated Polyethylene |
EPR | Ethylene Propylene Rubber |
EaB | Elongation at Break |
EVR | Extended Voltage Response Measurement |
VR | Voltage Response Measurement |
TDS | Time Domain Spectroscopy |
FDS | Frequency Domain Spectroscopy |
DRM | Dielectric Response Measurement |
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SZRMtKVM | NYCWY | |
---|---|---|
Before | 61.856 | 161.806 |
After | 70.369 | 233.09 |
Ratio (After/Before) | 1.13 | 1.44 |
SZRMtKVM | NYCWY | |
---|---|---|
Before | 44.02 | 40.27 |
After | 46.08 | 45.52 |
Ratio (After/Before) | 1.046 | 1.13 |
Electrical Quantity | |||
---|---|---|---|
SZRMtKVM | NYCWY | ||
50 Hz | tan | 0.8493 | 0.5866 |
100 Hz | tan | 0.908 | 0.5974 |
2 kHz | tan | 0.9317 | 0.3648 |
5 kHz | tan | 0.9059 | 0.2488 |
500 kHz | tan | 0.8025 | 0.5374 |
EVR | 0.7548 | 0.8367 | |
1 s | EVR | 0.8875 | 0.8289 |
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Bal, S.; Tamus, Z.Á. A Method for Assessing the Degradation of PVC-Insulated Low-Voltage Distribution Cables Exposed to Short-Term Cyclic Aging. Electronics 2024, 13, 1085. https://doi.org/10.3390/electronics13061085
Bal S, Tamus ZÁ. A Method for Assessing the Degradation of PVC-Insulated Low-Voltage Distribution Cables Exposed to Short-Term Cyclic Aging. Electronics. 2024; 13(6):1085. https://doi.org/10.3390/electronics13061085
Chicago/Turabian StyleBal, Semih, and Zoltán Ádám Tamus. 2024. "A Method for Assessing the Degradation of PVC-Insulated Low-Voltage Distribution Cables Exposed to Short-Term Cyclic Aging" Electronics 13, no. 6: 1085. https://doi.org/10.3390/electronics13061085
APA StyleBal, S., & Tamus, Z. Á. (2024). A Method for Assessing the Degradation of PVC-Insulated Low-Voltage Distribution Cables Exposed to Short-Term Cyclic Aging. Electronics, 13(6), 1085. https://doi.org/10.3390/electronics13061085