Effects of Thermal Cycles on Interfacial Pressure in MV Cable Joints †
Abstract
:1. Introduction
2. Measurement Setup
2.1. Overview
2.2. Cable Joints
- Metallic connector holding the two cable conductors.
- Silicon Rubber (SR) as main insulating material covering the metallic connector and the XLPE insulating part of the cable. This silicon layer is covered by semi-conductive material.
- A metallic meshed shielding covering the silicon rubber, which is used to maintain the ground electrical connection between the two portions of jointed cables.
- The external cold-shrinkable layer.
2.3. Pressure Sensors
- Absolute measurement. This means that the reference point is the vacuum, and therefore, one side of the sensor itself is dedicated to it, while the other side is faced to the mean to be measured.
- Gauge measurement. This type of sensor shares the structure with the previous one, but it uses as reference point the atmosphere. Hence, when using this kind of sensor, the operator should always check that the air can flow inside the side of the sensor dedicated to the atmosphere.
- Differential measurement. According to their name, these sensors measure the pressure between two arbitrary points.
3. Description of the Experimental Tests
4. Results & Discussion
4.1. Measurement Results
4.2. Discussion & Comparison
4.2.1. Analysis of the Results
4.2.2. Comparison with Literature
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Days | Pressure (kPa) | |||||||
---|---|---|---|---|---|---|---|---|
24 °C | 60 °C | |||||||
1 | 750 | 1210 | 196 | 174 | 892 | 1473 | 256 | 205 |
2 | 729 | 1218 | 217 | 176 | 893 | 1471 | 276 | 209 |
3 | 735 | 1213 | 210 | 175 | 901 | 1482 | 249 | 215 |
4 | 747 | 1194 | 215 | 188 | 915 | 1500 | 281 | 216 |
5 | 743 | 1256 | 227 | 190 | 914 | 1502 | 273 | 224 |
6 | 748 | 1260 | 238 | 193 | 1191 | 1508 | 313 | 223 |
7 | 900 | 1267 | 248 | 195 | 1104 | 1523 | 308 | 228 |
8 | 872 | 1236 | 251 | 192 | 1075 | 1512 | 307 | 231 |
9 | 874 | 1273 | 258 | 195 | 1072 | 1520 | 309 | 233 |
10 | 870 | 1279 | 264 | 202 | 1064 | 1520 | 306 | 233 |
11 | 870 | 1273 | 267 | 199 | 1060 | 1513 | 311 | 235 |
12 | 866 | 1283 | 271 | 204 | 1058 | 1528 | 313 | 237 |
55 | 864 | 1278 | 206 | 188 | - | - | - | - |
86 | 875 | 1294 | 225 | 198 | - | - | - | - |
104 | 883 | 1303 | 231 | 203 | - | - | - | - |
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Di Sante, R.; Ghaderi, A.; Mingotti, A.; Peretto, L.; Tinarelli, R. Effects of Thermal Cycles on Interfacial Pressure in MV Cable Joints. Sensors 2020, 20, 169. https://doi.org/10.3390/s20010169
Di Sante R, Ghaderi A, Mingotti A, Peretto L, Tinarelli R. Effects of Thermal Cycles on Interfacial Pressure in MV Cable Joints. Sensors. 2020; 20(1):169. https://doi.org/10.3390/s20010169
Chicago/Turabian StyleDi Sante, Raffaella, Abbas Ghaderi, Alessandro Mingotti, Lorenzo Peretto, and Roberto Tinarelli. 2020. "Effects of Thermal Cycles on Interfacial Pressure in MV Cable Joints" Sensors 20, no. 1: 169. https://doi.org/10.3390/s20010169
APA StyleDi Sante, R., Ghaderi, A., Mingotti, A., Peretto, L., & Tinarelli, R. (2020). Effects of Thermal Cycles on Interfacial Pressure in MV Cable Joints. Sensors, 20(1), 169. https://doi.org/10.3390/s20010169