Measurement of Line-to-Ground Capacitance in Distribution Network Considering Magnetizing Impedance’s Frequency Characteristic
Abstract
:1. Introduction
2. Line-to-Ground Capacitance Measurement Method
2.1. Vector Calculation Method
2.2. Amplitude Calculation Method
2.3. Phase Calculation Method
3. Experiment Platform and Techniques
3.1. Line-Ground-Capacitance Measurement
3.2. Magnetizing Impedance’s Frequency Characteristic Measurement
4. Experiment Results and Analysis
4.1. Vector Calculation Method Results
- (1).
- Cf is more accurate than C50Hz, while C50Hz is more accurate than C0.
- (2).
- If the calculation is based on SIM, the recommended frequency scope of the injecting signal should be in the vicinity of the rated frequency.
- (3).
- If the calculation is based on RSIM, the recommended frequency scope of the injecting signal should be 30~80 Hz, but the results are not stable and could be affected by the external topology and frequency.
- (4).
- If the calculation is based on ISIM, the recommended frequency scope could reach 20~120 Hz, and the results are more stable and reliable.
- (5).
- With the rise of frequency f of the injecting signal, e50Hz and e0 decrease first and then increase:
- when f is low, the iron core is more vulnerable to be saturated, thus magnetizing impedance for calculation far away from the true value;
- when f is high, the impedance of line-to-ground capacitance is low, and the line stray impedance Zε in zero sequence is high. Thus, calculation error and system error increase during calculation.
- (6).
- With the rise of frequency f of the injecting signal, ef has the same tendency, but the tendency is not obvious because of the improvement caused by considering the magnetizing impedance’s frequency characteristic in the ISIM calculation.
4.2. Amplitude Calculation Method Results
4.3. Phase Calculation Method Results
5. Conclusions
- (1).
- The topology of zero sequence of ISIM is similar to traditional methods and its applied frequency scope is extended and the accuracy of calculation is improved.
- (2).
- The saturation of iron core at low frequency and the system error due to line stray impedance Zε in zero sequence at high frequency are the major causes of measurement error.
- (3).
- When the injecting transformer is a transformer of small capacity, it is necessary to measure the frequency characteristic of magnetizing impedance for better results.
- (4).
- The frequency group should be selected in the range of 20–80 Hz, if line-to-ground capacitance is calculated through amplitude calculation method and phase calculation method via two-frequency information.
- (5).
- Nice shielding and filtering are demanded to obtain reasonable results via phase calculation method, because electrical signal is more vulnerable to the influence of electromagnetic interference.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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C (μF) | L (H) | f (Hz) | Calculation Capacitance (μF) | Relative Error (%) | ||||
---|---|---|---|---|---|---|---|---|
Cf | C50Hz | C0 | ef | e50Hz | e0 | |||
22.27 | 0.44882 | 10 | 20.96 | −171.26 | −193.28 | 5.88 | 869.02 | 967.89 |
20 | 21.43 | 17.63 | 13.24 | 3.77 | 20.84 | 40.55 | ||
30 | 22.37 | 21.69 | 19.98 | 0.45 | 2.6 | 10.28 | ||
40 | 22.43 | 22.74 | 21.39 | 0.72 | 2.11 | 3.95 | ||
60 | 22.33 | 22.57 | 21.69 | 0.27 | 1.35 | 2.6 | ||
80 | 21.69 | 21.52 | 18.47 | 2.6 | 3.37 | 17.06 | ||
100 | 19.31 | 21.07 | 16.31 | 13.29 | 5.39 | 26.76 | ||
120 | 24.45 | 15.88 | 11.02 | 9.79 | 28.69 | 50.52 | ||
14.08 | 0.64744 | 10 | 13.81 | −34.93 | −40.12 | 1.92 | 348.08 | 384.94 |
20 | 13.92 | 5.00 | −2.28 | 1.14 | 64.49 | 116.19 | ||
30 | 14.15 | 11.82 | 9.52 | 0.5 | 16.05 | 32.39 | ||
40 | 13.98 | 13.33 | 12.69 | 0.71 | 5.33 | 9.87 | ||
60 | 13.96 | 13.64 | 14.42 | 0.85 | 3.13 | 2.41 | ||
80 | 13.31 | 12.15 | 11.7 | 5.47 | 13.71 | 16.9 | ||
100 | 12.87 | 9.67 | 9.39 | 8.59 | 31.32 | 33.31 | ||
120 | 10.14 | 7.03 | 5.56 | 27.98 | 50.07 | 60.51 | ||
7.06 | 1.06029 | 10 | 5.85 | −123.84 | −211.76 | 17.14 | 1854.11 | 3099.43 |
20 | 6.98 | −0.02 | −5.53 | 1.13 | 100.28 | 178.33 | ||
30 | 7.14 | 6.22 | 3.33 | 1.13 | 11.9 | 52.83 | ||
40 | 7.11 | 6.51 | 5.43 | 0.71 | 7.79 | 23.09 | ||
60 | 6.93 | 6.92 | 6.92 | 1.84 | 1.98 | 1.98 | ||
80 | 6.90 | 6.15 | 5.54 | 2.27 | 12.89 | 21.53 | ||
100 | 7.30 | 5.15 | 4.09 | 3.4 | 27.05 | 42.07 | ||
120 | 6.93 | 3.95 | 3.01 | 1.84 | 44.05 | 57.37 |
C (μF) | f1 (Hz) | f2 (Hz) | Cmf (μF) | emf (%) |
---|---|---|---|---|
22.27 | 10 | 20 | 19.22 | 13.7 |
20 | 40 | 23.23 | 4.31 | |
30 | 60 | 23.99 | 7.72 | |
40 | 60 | 22.76 | 2.2 | |
40 | 80 | 22.59 | 1.44 | |
40 | 100 | 22.76 | 2.20 | |
14.08 | 10 | 20 | 16.96 | 20.45 |
20 | 40 | 13.42 | 4.69 | |
30 | 60 | 12.98 | 7.81 | |
40 | 60 | 14.02 | 0.43 | |
40 | 80 | 13.79 | 2.06 | |
40 | 100 | 13.70 | 2.70 | |
7.06 | 10 | 20 | 6.42 | 9.07 |
20 | 40 | 6.71 | 4.96 | |
30 | 60 | 6.94 | 1.70 | |
40 | 60 | 6.97 | 1.27 | |
40 | 80 | 6.88 | 2.55 | |
40 | 100 | 7.50 | 6.23 |
C (μF) | f1 (Hz) | f2 (Hz) | Cpf (μF) | epf (%) |
---|---|---|---|---|
22.27 | 10 | 20 | 19.46 | 12.62 |
20 | 40 | 21.87 | 1.80 | |
30 | 60 | 21.95 | 1.44 | |
40 | 60 | 22.28 | 0.04 | |
40 | 80 | 22.06 | 0.94 | |
40 | 100 | 23.4 | 5.07 | |
14.08 | 10 | 20 | 15.37 | 9.16 |
20 | 40 | 12.43 | 11.72 | |
30 | 60 | 12.44 | 11.65 | |
40 | 60 | 13.74 | 2.41 | |
40 | 80 | 12.33 | 12.43 | |
40 | 100 | 11.24 | 20.17 | |
7.06 | 10 | 20 | 7.68 | 8.78 |
20 | 40 | 6.52 | 7.65 | |
30 | 60 | 6.59 | 6.66 | |
40 | 60 | 7.29 | 3.26 | |
40 | 80 | 7.66 | 8.50 | |
40 | 100 | 6.26 | 11.33 |
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Yang, Q.; Zhang, B.; Ran, J.; Chen, S.; He, Y.; Sun, J. Measurement of Line-to-Ground Capacitance in Distribution Network Considering Magnetizing Impedance’s Frequency Characteristic. Energies 2017, 10, 477. https://doi.org/10.3390/en10040477
Yang Q, Zhang B, Ran J, Chen S, He Y, Sun J. Measurement of Line-to-Ground Capacitance in Distribution Network Considering Magnetizing Impedance’s Frequency Characteristic. Energies. 2017; 10(4):477. https://doi.org/10.3390/en10040477
Chicago/Turabian StyleYang, Qing, Bo Zhang, Jiaquan Ran, Song Chen, Yanxiao He, and Jian Sun. 2017. "Measurement of Line-to-Ground Capacitance in Distribution Network Considering Magnetizing Impedance’s Frequency Characteristic" Energies 10, no. 4: 477. https://doi.org/10.3390/en10040477
APA StyleYang, Q., Zhang, B., Ran, J., Chen, S., He, Y., & Sun, J. (2017). Measurement of Line-to-Ground Capacitance in Distribution Network Considering Magnetizing Impedance’s Frequency Characteristic. Energies, 10(4), 477. https://doi.org/10.3390/en10040477