Effects of a Crossarm Brace Application on a 275 kV Fiberglass-Reinforced Polymer Crossarm Subjected to a Lightning Impulse
Abstract
:1. Introduction
2. Lightning Overvoltages on the Transmission Line
3. Application of CrossArm Bracing
4. CFO Estimation of the Transmission Line
5. Simulation Model
6. Results
6.1. Effect of Bracing on the Potential Distribution
6.2. Effect of Bracing on the Localization of E-Fields
6.3. Consideration of the Swing Effect on the E-Field
6.4. Consideration of the Lightning Impulse Voltage Caused by Shielding Failure
7. Conclusions
- (1)
- The use of an FEM-based simulation has been proven to particularly locate the stresses along the composite FRP crossarm under a lightning impulse voltage. The 2D simulation sufficiently predicted the approximate value of the potential and E-Field distribution along the crossarm and in the surrounding air;
- (2)
- The installation of the brace remarkably changed the potential distribution pattern of the surrounding area, which allowed a higher potential to shift closer to earthed parts, where the changes could obviously be seen in proximity of the crossarm. This alteration of the potential distribution is believed to cause a reduction of CFO across D1 and D7 of up to 4.9 and 10.6%, respectively;
- (3)
- The brace installation and insulator swing greatly influenced the maximum E-Field found on both the FRP surface and across the air. This study highlighted that the swing angle should be taken into consideration when designing a crossarm for a high voltage;
- (4)
- By knowing the magnitude of the electric field on the crossarm structure, a proper mitigation plan can be considered to address the problem. The maximum E-Field strength on the FRP surface can be related to the cause of the insulation and physical degradation of the crossarm. It is important that the E-Field stress is kept at the minimum or at least below the dielectric strength of the material to ensure insulation integrity;
- (5)
- The results presented in this study can further be enhanced by conducting a 3D simulation. It is worth mentioning that by producing a 3D model, the flashover distance will be more accurate and complexity of the structure can be introduced, thus providing accurate crossarm representation and more reliable results;
- (6)
- Analyses conducted using FEM can provide a preliminary overview of the crossarm performance before the actual prototypes are produced. This can present more ideas for the designers to play around with in terms of the design, without investing so much in the production and testing the costly prototypes. Apart from being cost effective, this approach can save more time and is much more practical.
Author Contributions
Funding
Conflicts of Interest
References
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Length | Distance, m | Estimated CFO Corresponds to + ve LIV, MV | Estimated CFO Corresponds to—ve LIV, MV |
---|---|---|---|
D1 | 4.823 | 2.70 | 2.92 |
D2 | 4.250 | 2.38 | 2.57 |
D3 | 2.343 | 1.31 | 1.42 |
D4 | 3.423 | 1.92 | 2.07 |
D5 | 3.075 | 1.72 | 1.86 |
D6 | 3.043 | 1.70 | 1.84 |
D7 | 2.175 | 1.22 | 1.32 |
D8 | 2.171 | 1.22 | 1.31 |
D9 | 2.873 | 1.61 | 1.74 |
Structure | Relative Permittivity (εr) | Bulk Conductivity (σ), S/m |
---|---|---|
FRP crossarm | 5 | 1 × 10−16 |
Steelworks/fittings | 1 | 2 × 106 |
Glass insulator disc | 5.5 | 2 × 10−14 |
Brace | Swing Angle | Applied LIV (kV) | Type of LIV |
---|---|---|---|
No | 0° | 1050 | BIL |
2000 | SF | ||
30° | 1050 | BIL | |
2000 | SF | ||
57° | 1050 | BIL | |
2000 | SF | ||
Yes | 0° | 1050 | BIL |
2000 | SF | ||
30° | 1050 | BIL | |
2000 | SF | ||
57° | 1050 | BIL | |
2000 | SF |
Applied LIV (kV) | Brace | Swing Angle | Maximum E-Field (V/m) | |
---|---|---|---|---|
On Overall FRP Surface | Across Air | |||
1050 | No | 0° | 6.33 × 105 | 1.74 × 106 |
30° | 1.53 × 106 | 1.98 × 106 | ||
57° | 7.15 × 105 | 1.68 × 106 | ||
Yes | 0° | 1.25 × 106 | 6.11 × 105 | |
30° | 9.51 × 105 | 1.09 × 106 | ||
57° | 8.79 × 105 | 2.46 × 106 |
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Abd Rahman, M.S.; Ab Kadir, M.Z.A.; Ab-Rahman, M.S.; Osman, M.; Mohd Nor, S.F.; Mohd Zainuddin, N. Effects of a Crossarm Brace Application on a 275 kV Fiberglass-Reinforced Polymer Crossarm Subjected to a Lightning Impulse. Energies 2020, 13, 6248. https://doi.org/10.3390/en13236248
Abd Rahman MS, Ab Kadir MZA, Ab-Rahman MS, Osman M, Mohd Nor SF, Mohd Zainuddin N. Effects of a Crossarm Brace Application on a 275 kV Fiberglass-Reinforced Polymer Crossarm Subjected to a Lightning Impulse. Energies. 2020; 13(23):6248. https://doi.org/10.3390/en13236248
Chicago/Turabian StyleAbd Rahman, Muhammad Syahmi, Mohd Zainal Abidin Ab Kadir, Muhamad Safwan Ab-Rahman, Miszaina Osman, Shamsul Fahmi Mohd Nor, and Noorlina Mohd Zainuddin. 2020. "Effects of a Crossarm Brace Application on a 275 kV Fiberglass-Reinforced Polymer Crossarm Subjected to a Lightning Impulse" Energies 13, no. 23: 6248. https://doi.org/10.3390/en13236248
APA StyleAbd Rahman, M. S., Ab Kadir, M. Z. A., Ab-Rahman, M. S., Osman, M., Mohd Nor, S. F., & Mohd Zainuddin, N. (2020). Effects of a Crossarm Brace Application on a 275 kV Fiberglass-Reinforced Polymer Crossarm Subjected to a Lightning Impulse. Energies, 13(23), 6248. https://doi.org/10.3390/en13236248