Diagnosis of Insulation Condition of MV Switchgears by Application of Different Partial Discharge Measuring Methods and Sensors
Abstract
:1. Introduction
2. Measuring Methods, Sensors, and Measurement Devices
2.1. Measuring Methods
- High sensitivity is obtained when the sensors are located close to the PD source and when they are hundreds of meters from it. Hence, as mentioned before, with this method a high field of vision is achieved and use of a few measuring units positioned in strategic points in a MV installation is sufficient for its supervision.
- If two or more HFCT sensors are placed in a MV or HV installation, the measurement of the PD pulses with a common time reference allows the location of the defects by the time-of-flight analysis.
- High immunity to electric noise interferences and corona discharges in air, since the frequency spectrum of these signals in the UHF range is very low and in some emplacements negligible.
- High sensitivity in PD detection inside the metal enclosed switchgears due to the inner electrical resonance and low-inherent losses.
- Possibility of assuring that when an insulation defect is detected with an antenna placed in a switchgear, this defect is confined inside this switchgear (including the cable terminations connected to it).
2.2. PD Sensors
2.3. PD Measurement Devices and Switchgear Cabinet
3. Experimental Setup
4. Experimental Measurements
4.1. Measurement of the Internal Defect
- -
- Regarding the insulation defect detection:
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- Sensitivity in the detection.
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- Analytical capability for the assisted or autonomous detection.
- -
- Regarding the type of defect identification:
- ◾
- Analytical capability for the assisted or autonomous defect recognition.
- -
- Regarding the defect location (determination of the MV switchgear where the PD source is present and identification of the defective element inside it):
- ◾
- Analytical capability for the assisted or autonomous identification of the affected MV switchgear and for the identification of the defective element (cable termination or rest of components).
4.2. Measurement of the Surface Defect
5. Discussion
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Measuring Method | Measuring Technique | Sensor | Frequency Range |
---|---|---|---|
1 | UHF | UHF Antenna | UHF |
2 | HF | HFCT | HF |
3 | IEC 60270 | Quadrupole | <1 MHz |
Number of Element | Component of the Setup |
---|---|
1 | Autotransformer (voltage regulator), 0–250 V, 3 kVA |
2 | HV transformer 110 V/66 kV, 600 VA |
3 | Blocking impedance |
4 | Capacitive divider and measuring quadrupole (according to IEC 60270) |
5 | MV power cable |
6 | Accessible part of the MV metal cabinet |
7 | Test cell with insulation defect |
8 | Circuit breaker and bus duct compartment |
Measuring Method | Sensor | Measuring Point | Measuring Frequency Range |
---|---|---|---|
UHF | UHF Antenna | 1 | 225–375, 475–750 and 1000–1500 MHz |
HF | HFCT | 2 | 10 kHz–20 MHz |
IEC 60270 | Quadrupole | 3 | <1 MHz |
Voltage Level | Method Two (HF) Sensor: HFCT Equipment: BlueBOX | Method Three (IEC 60270) Sensor: Quadrupole Equipment: Mtronix | ||
---|---|---|---|---|
10 kV | Rate: 2 PDs/cycle Amplitude: 47 mV Max. amplitude by semi period: “+”: 105 mV “−”: 60 mV | Rate: 3 PDs/cycle Charge: 336 pC Max. charge by semi period: “+”: 717 pC “−”: 510 pC | ||
12 kV | Rate: 11 PDs/cycle Amplitude: 85 mV Max. amplitude by semi period: “+”: 140 mV “−”: 85 mV | Rate: 9 PDs/cycle Charge: 527 pC Max. charge by semi period: “+”: 800 pC “−”: 530 pC | ||
15 kV | Rate: 14 PDs/cycle Amplitude: 114 mV Max. amplitude by semi period: “+”: 162 mV “−”: 93 mV | Rate: 12 PDs/cycle Charge: 635 pC Max. charge by semi period: “+”: 970 pC “−”: 720 pC | ||
19 kV | Rate: 24 PDs/cycle Amplitude: 121 mV Max. amplitude by semi period: “+”: 165 mV “−”: 116 mV | Rate: 20 PDs/cycle Charge: 698 pC Max. charge by semi period: “+”: 1.2 nC “−”: 868 pC |
Voltage Level | Method Two (HF) Sensor: HFCT Equipment: BlueBOX | Method Three (IEC 60270) Sensor: Quadrupole Equipment: Mtronix | ||
---|---|---|---|---|
11.5 kV | Rate: 3 PDs/cycle Amplitude: 74 mV Max. amplitude by semi period: “+”:101 mV “−”: 112 mV | Rate: 3 PDs/cycle Charge: 512 pC Max. charge by semi period: “+”: 1.4 nC “−”: 1.1 nC | ||
15 kV | Rate: 12 PDs/cycle Amplitude: 174 mV Max. amplitude by semi period: “+”: 307 mV “−”: 170 mV | Rate: 10 PDs/cycle Charge: 1.6 nC Max. charge by semi period: “+”: 4 nC “−”: 1.5 nC | ||
17 kV | Rate: 17 PDs/cycle Amplitude: 206 mV Max. amplitude by semi period: “+”: 285 mV “−”: 214 mV | Rate: 15 PDs/cycle Charge: 2 nC Max. charge by semi period: “+”: 4 nC “−”: 1.5 nC | ||
19 kV | Rate: 20 PDs/cycle Amplitude: 201 mV Max. amplitude by semi period: “+”: 325 mV “−”: 265 mV | Rate: 17 PDs/cycle Charge: 2.4 nC Max. charge by semi period: “+”: 4 nC “−”: 2.9 nC |
Method | Insulation Defect Detection | Insulation Defect Identification | Insulation Defect Location (1) | Defected Element Identification (2) | ||||
---|---|---|---|---|---|---|---|---|
Autonomous | Detection (Sensitivity) | Autonomous | Identification | Autonomous | Location | Autonomous | Identification | |
1 (UHF) | ||||||||
2 (HF) | ||||||||
1&2 (UHF&HF) |
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Álvarez Gómez, F.; Albarracín-Sánchez, R.; Garnacho Vecino, F.; Granizo Arrabé, R. Diagnosis of Insulation Condition of MV Switchgears by Application of Different Partial Discharge Measuring Methods and Sensors. Sensors 2018, 18, 720. https://doi.org/10.3390/s18030720
Álvarez Gómez F, Albarracín-Sánchez R, Garnacho Vecino F, Granizo Arrabé R. Diagnosis of Insulation Condition of MV Switchgears by Application of Different Partial Discharge Measuring Methods and Sensors. Sensors. 2018; 18(3):720. https://doi.org/10.3390/s18030720
Chicago/Turabian StyleÁlvarez Gómez, Fernando, Ricardo Albarracín-Sánchez, Fernando Garnacho Vecino, and Ricardo Granizo Arrabé. 2018. "Diagnosis of Insulation Condition of MV Switchgears by Application of Different Partial Discharge Measuring Methods and Sensors" Sensors 18, no. 3: 720. https://doi.org/10.3390/s18030720
APA StyleÁlvarez Gómez, F., Albarracín-Sánchez, R., Garnacho Vecino, F., & Granizo Arrabé, R. (2018). Diagnosis of Insulation Condition of MV Switchgears by Application of Different Partial Discharge Measuring Methods and Sensors. Sensors, 18(3), 720. https://doi.org/10.3390/s18030720