An Online Monitoring Method for Low-Frequency Dielectric Loss Angle of Mining Cables
Abstract
:1. Introduction
- (1)
- Under the industrial frequency conditions, the value of the dielectric loss angle tan δ when the cable insulation is normal is particularly small, even if the insulation level of the cable decreases, the change of tan δ value remains small, and it is difficult to characterize the change of tan δ in the cable insulation level. Solving the problem of low sensitivity of the cable dielectric loss angle tangent value to the insulation level change under the industrial frequency condition is the key to online monitoring of the dielectric loss angle.
- (2)
- Due to the existence of core resistance and residual inductance in the cable, when the load current flows into the load equipment at the end of the cable, there will also be part of the voltage on the core resistance and residual inductance, resulting in a large voltage difference between the first and last ends of the cable, and the voltage difference will change with the change in the cable load current. Therefore, when the voltage to ground at different locations on the cable is selected as the reference phase for online monitoring of the cable dielectric loss angle, the monitoring results are often different.
2. Methods and Principles
2.1. Signal Injection Method
2.2. Feasibility Analysis of Low Frequency Signal Injection Method
2.3. Double-End Synchronous Measurement Method
3. Simulation Analysis
3.1. Simulation Model Building
3.2. Dielectric Loss Angle Simulation under Different Aging Conditions
- (1)
- Set the equivalent insulation resistance of cable phase A to 100 MΩ and the equivalent distributed capacitance to 340 nF to characterize the slight aging of the insulation of cable phase A.
- (2)
- Set the equivalent insulation resistance of phase B of the cable to 50 MΩ and the equivalent distributed capacitance to 360 nF to characterize the moderate aging of the insulation of phase B of the cable.
- (3)
- Set the equivalent insulation resistance of the phase C of the cable to 10 MΩ and the equivalent distributed capacitance to 380 nF to characterize the severe aging of the C phase insulation of the cable.
- (4)
- Set the equivalent insulation resistance of phase A of the cable to 1 MΩ and the equivalent distributed capacitance to 400 nF to characterize the insulation failure of phase A of the cable.
- (5)
- Set the equivalent insulation resistance of phase A to 30 MΩ and the equivalent distributed capacitance to 370 nF, set the equivalent insulation resistance of phase B to 5 MΩ and the equivalent distributed capacitance to 390 nF and set phase C to the normal value of the cable insulation to characterize the simultaneous failure of the cable insulation of phases A and B.
- (6)
- Set the equivalent insulation resistance of phase A to 20 MΩ and the equivalent distributed capacitance to 375 nF, set the equivalent insulation resistance of phase B to 10 MΩ and the equivalent distributed capacitance to 380 nF and set the equivalent insulation resistance of phase C to 1 MΩ and the equivalent distributed capacitance to 400 nF to characterize the simultaneous failure of the cable insulation of phases A, B and C.
3.3. Dielectric Loss Angle Simulation under Water Tree Aging
4. Error Analysis
4.1. Effect of Grid Harmonics
4.2. Effect of Frequency Fluctuations of the Injected Signal
5. Conclusions
- (1)
- Through the cable tan δ values under different aging conditions, it can be found that the proposed method in this paper can accurately reflect the insulation level of the cable. When the aging phenomenon occurs in the cable insulation, the dielectric loss angle tan δ of the aging phase will change with the aging degree, and the deeper the aging degree, the larger the tan δ value.
- (2)
- When using the double-end synchronous measurement method for tan δ calculation, the sum of the voltage phasors at the first and last ends is selected as the reference phase, the tan δ value is not affected by the load current, and the calculation is more accurate.
- (3)
- By building the cable water tree aging model and simulating the dielectric loss angle tan δ values under different lengths of water trees, the dielectric loss angle of the aging phase where water tree aging occurs increases with the increase in the water tree length, and there is almost no change in the non-aging phase.
- (4)
- Grid harmonics do not affect the measurement of tan δ value. When the frequency of the injected signal fluctuates in the range of 9.5~10.5 Hz, the relative error of tan δ measurement does not exceed 0.25%, which has less influence on the monitoring of cable insulation tan δ value.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Load Resistance/Ω | tan δ1/% | tan δ2/% | tan δ3/% |
---|---|---|---|
10 | 0.45872 | 0.38267 | 0.01463 |
50 | 0.14726 | 0.08669 | 0.01463 |
100 | 0.09285 | 0.03745 | 0.01463 |
200 | 0.05808 | 0.01896 | 0.01463 |
300 | 0.03651 | 0.00982 | 0.01463 |
Measurement Phase | tan δA/% | tan δB/% | tan δC/% |
---|---|---|---|
Normal insulation | 0.01463 | 0.01463 | 0.01463 |
Slight aging of phase A | 0.04679 | 0.01463 | 0.01463 |
Moderate aging of phase B | 0.01463 | 0.08838 | 0.01463 |
Severe aging of phase C | 0.01463 | 0.01463 | 0.4186 |
Insulation fault of phase A | 3.9769 | 0.01463 | 0.01463 |
AB two-phase insulation fault | 0.1433 | 0.8158 | 0.01463 |
ABC three-phase insulation fault | 0.2121 | 0.4186 | 3.9769 |
Length/μm | Rwt/MΩ | Cwt/fF | R1/Ω | C1/pF | R2/Ω | C2/pF |
---|---|---|---|---|---|---|
100 | 0.48 | 0.11 | 8.14 × 109 | 2.50 | 3.58 × 1010 | 202.50 |
200 | 0.24 | 0.24 | 4.07 × 109 | 5.00 | 1.79 × 1010 | 405.00 |
300 | 0.16 | 0.37 | 2.72 × 109 | 7.50 | 1.19 × 1010 | 607.50 |
400 | 0.12 | 0.44 | 2.14 × 109 | 9.51 | 0.94 × 1010 | 810.00 |
500 | 0.10 | 0.55 | 1.63 × 109 | 12.49 | 0.72 × 1010 | 1012.50 |
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Wang, Y.; Chen, P.; Feng, C.; Cao, J. An Online Monitoring Method for Low-Frequency Dielectric Loss Angle of Mining Cables. Sensors 2023, 23, 4273. https://doi.org/10.3390/s23094273
Wang Y, Chen P, Feng C, Cao J. An Online Monitoring Method for Low-Frequency Dielectric Loss Angle of Mining Cables. Sensors. 2023; 23(9):4273. https://doi.org/10.3390/s23094273
Chicago/Turabian StyleWang, Yanwen, Peng Chen, Chen Feng, and Jiyuan Cao. 2023. "An Online Monitoring Method for Low-Frequency Dielectric Loss Angle of Mining Cables" Sensors 23, no. 9: 4273. https://doi.org/10.3390/s23094273
APA StyleWang, Y., Chen, P., Feng, C., & Cao, J. (2023). An Online Monitoring Method for Low-Frequency Dielectric Loss Angle of Mining Cables. Sensors, 23(9), 4273. https://doi.org/10.3390/s23094273