Monitoring of Dry Bands and Discharge Activities at the Surface of Textured Insulators with AC Clean Fog Test Conditions
Abstract
:1. Introduction
2. Experimental Setup and Procedure
- The r.m.s. values of leakage current irms and voltage vrms for a cycle was calculated numerically, according to Equations (1) and (2):
- The surface conductance was deduced from the ratio of the current and the voltage.
- The average power was calculated for one cycle by multiplying each voltage element by its counterpart of leakage current, according to the formula:
3. Results and Discussion
3.1. Light Pollution
3.2. Medium Pollution Level
3.3. Heavy Pollution Level
3.4. Severe Pollution Level
3.5. Dry Band Voltage Onset, Dry Band Discharge Voltage Inception, and Average Power
3.5.1. DB Voltage Onset and DbD Voltage Inception
3.5.2. Average Power
4. Conclusions
- DB onset began at a relative low voltage (less than 10 kV), depending on the pollution layer conductivity. At this stage, the SC and LC were likely constant.
- After this stage, with increasing voltage ramp step, the SC and LC collapsed, resulting in local DB extension, which drastically increased the insulator surface resistance. Visual and thermal images showed that the DBs were situated at the trunks of the insulator.
- The DbD appeared at a voltage greater than the DB onset. With the increase of the applied voltage, the LC activity was more intense.
- The DbD were spark discharged with purple/white coloration and partial arcs with orange color. The nature of the discharges depended on the voltage level and the pollution layer conductivity.
- The discharge activity was related to the temperature distribution at the insulator surface and the DB dynamic. The nature of those discharges’ changed with the pollution level and the applied voltage magnitude.
- DBA inception voltage was higher than DB onset voltage and depended on the applied voltage and the temperature distribution, as well as the pollution level.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
ADE | Accumulated Dissipated Energy |
AP | Average Power |
DB | Dry-Band |
DBA | Dry-band Arc |
DBPA | Dry Band Partial Arc |
ESDD | Equivalent Salt Deposit Density |
FOV | Flashover |
HC | Hydrophobicity Class |
LC | Leakage Current |
SC | Surface Conductance |
TXT | Textured |
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Conductivity (mS/cm) | Pollution Level | ESDD (mg/cm2) |
---|---|---|
1.40 | Light | 0.03 |
3.50 | Medium | 0.07 |
8.60 | Heavy | 0.19 |
12.5 | Severe | 0.28 |
Arc Length (mm) | Large Shed Diameter (mm) | Small Shed Diameter (mm) | Texture Pattern (mm) | Total Surface (cm2) |
---|---|---|---|---|
346 | 160 | 130 | 4 | 4168.6 |
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Slama, M.E.A.; Albano, M.; Haddad, A.M.; Waters, R.T.; Cwikowski, O.; Iddrissu, I.; Knapper, J.; Scopes, O. Monitoring of Dry Bands and Discharge Activities at the Surface of Textured Insulators with AC Clean Fog Test Conditions. Energies 2021, 14, 2914. https://doi.org/10.3390/en14102914
Slama MEA, Albano M, Haddad AM, Waters RT, Cwikowski O, Iddrissu I, Knapper J, Scopes O. Monitoring of Dry Bands and Discharge Activities at the Surface of Textured Insulators with AC Clean Fog Test Conditions. Energies. 2021; 14(10):2914. https://doi.org/10.3390/en14102914
Chicago/Turabian StyleSlama, Mohammed El Amine, Maurizio Albano, Abderrahmane Manu Haddad, Ronald T. Waters, Oliver Cwikowski, Ibrahim Iddrissu, Jon Knapper, and Oliver Scopes. 2021. "Monitoring of Dry Bands and Discharge Activities at the Surface of Textured Insulators with AC Clean Fog Test Conditions" Energies 14, no. 10: 2914. https://doi.org/10.3390/en14102914
APA StyleSlama, M. E. A., Albano, M., Haddad, A. M., Waters, R. T., Cwikowski, O., Iddrissu, I., Knapper, J., & Scopes, O. (2021). Monitoring of Dry Bands and Discharge Activities at the Surface of Textured Insulators with AC Clean Fog Test Conditions. Energies, 14(10), 2914. https://doi.org/10.3390/en14102914