The Use of Instantaneous Overcurrent Relay in Determining the Threshold Current and Voltage for Optimal Fault Protection and Control in Transmission Line
Abstract
:1. Introduction
- The use of wavelet transforms to determine the threshold voltage and current of faulty transmission lines;
- A designed model to determine the tripping time and the operating time of instantaneous over current relay at different fault-resistant values;
- A protection scheme was designed to evaluate and determine the response time of relays in different zones.
Contribution of the Proposed Algorithm
2. Proposed Algorithm
2.1. Wavelet Transform
2.2. Data Acquisition
3. Modelling of the High Sensitive Overcurrent Relay
4. Results and Discussion
4.1. Validation of the Result Using the Threshold Current and Voltage with Other Models for the Sensitivity of TMS
4.2. Comparison of the Proposed Algorithm with the Deep Learning-Based Results
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
List of Acronyms
TL | Transmission Line |
TEC | Thevenin Equivalent Circuit |
WT | Wavelet Transform |
DWT | Discrete Wavelet Transform |
CWT | Continuous Wavelet Transform |
SSU | Supply and Switching Unit |
IDMT | Inverse Definite Minimum Time |
PMU | Phasor Measurement Unit |
TMS | Time Multiplier Setting |
L-G | Single Phase to Ground Fault |
LL-G | Double Phase to Ground Fault |
LLL-G | Three Phase to Ground Fault |
RBFNN | Radial Bias Function Neural Network |
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Fault Types | Coeff of | Coeff of | Coeff of | Coeff of | Coeff of | Coeff of |
---|---|---|---|---|---|---|
ABC-G | 533.0974 | 495.1115 | 575.3335 | 0.0000 | 0.0000 | 0.0000 |
ABC | 395.1943 | 587.4911 | 474.7873 | −0.0001 | 0.0000 | 0.0001 |
(AB-G) | 338.5069 | 531.6202 | 32.9732 | 0.6655 | −1.6882 | 1.0227 |
(AC-G) | 306.5768 | 22.3418 | 620.4303 | 1.5501 | −0.1691 | −1.3810 |
(BC-G) | 26.1066 | 608.8079 | 294.0561 | −1.2685 | 1.6153 | −0.3468 |
(A-B) | 855.3816 | 385.9281 | 17.8156 | −1.2792 | 1.6102 | −0.3311 |
(A-C) | 299.0803 | 19.8595 | 574.5684 | −1.2897 | 1.6050 | −0.3154 |
(B-C) | 15.3783 | 420.5652 | 355.8047 | −1.3001 | 1.5996 | −0.2996 |
(A-G) | 307.6007 | 39.5083 | 20.8305 | −1.3103 | 1.5941 | −0.2838 |
(B-G) | 32.6032 | 199.6292 | 28.3545 | −1.3205 | 1.5885 | −0.2680 |
(C-G) | 15.1679 | 28.6647 | 364.3873 | 0.4383 | −1.6423 | 1.2040 |
No Fault | 10.6870 | 15.1958 | 23.0105 | 1.4530 | 0.0390 | −1.4920 |
Fault Types | Threshold of (kA) | Threshold of (kA) | Threshold of (kA) | Threshold of Ground Current (kA) | |||
---|---|---|---|---|---|---|---|
Max | Min | Max | Min | Max | Min | ||
ABC-G | 18.6876 | ||||||
ABC | 56.9488 | ||||||
AB-G | 531.6202 | 32.9732 | 25.7012 | ||||
AC-G | 620.4303 | 22.3418 | 15.5710 | ||||
BC-G | 608.8079 | 26.1066 | 20.9355 | ||||
A-B | 855.3816 | 17.8156 | 28.2445 | ||||
A-C | 574.5684 | 19.8595 | 34.5217 | ||||
B-C | 420.5652 | 15.3783 | 16.8326 | ||||
A-G | 307.6007 | 39.5083 | 307.6007 | 20.8305 | 18.3399 | ||
B-G | 199.6292 | 32.6032 | 199.6292 | 28.3545 | 24.7174 | ||
C-G | 364.3873 | 15.1679 | 364.3873 | 28.6647 | 15.5710 | ||
No-Fault | 23.0105 | 10.6870 | 23.0105 | 15.1958 | 23.0105 | 23.0105 | 13.0455 |
Curve Types | K | |
---|---|---|
Normal Inverse Curve | 0.140 | 0.020 |
Very Inverse Curve | 13.5 | 1 |
Extremely Inverse Curve | 80 | 2 |
Long-time Standard Curve | 120 | 1 |
Fault Types | Fault Resistance = 0.01 Ω | ||
---|---|---|---|
Three-phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 259 | 8.524 | 2.826 |
TMS (Seconds) | 2.991 | 0.1421 | 0.04709 |
Trip Time (Seconds) | 0.01 | 0.01 | 0.01 |
Double phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.9 | 13.25 | 4.424 |
TMS (Seconds) | 2.991 | 0.2208 | 0.07373 |
Trip Time (Seconds) | 0.01 | 0.01 | 0.01 |
Single line to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.8 | 16.43 | 5.478 |
TMS (Seconds) | 2.99 | 0.2739 | 0.0913 |
Trip Time (Seconds) | 0.01 | 0.01 | 0.01 |
Fault Types | Fault Resistance = 50 Ω | ||
---|---|---|---|
Three-phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.7 | 355.8 | 117.9 |
TMS (Seconds) | 2.989 | 5.93 | 1.966 |
Trip Time (Seconds) | 0.01 | 0.9198 | 0.01 |
Double phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.7 | 355.7 | 118.3 |
TMS (Seconds) | 2.989 | 5.929 | 1.971 |
Trip Time (Seconds) | 0 | 0.9193 | 0 |
Single line to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.5 | 355.5 | 118.5 |
TMS (Seconds) | 2.987 | 5.925 | 1.975 |
Trip Time (Seconds) | 0 | 0.9185 | 0 |
Fault Types | Fault Resistance = 100 Ω | ||
---|---|---|---|
Three-phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.2 | 353.9 | 117.9 |
TMS (Seconds) | 2.985 | 5.899 | 1.966 |
Trip Time (Seconds) | 0 | 0.9149 | 0.9039 |
Double phase to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358.1 | 353.8 | 118.3 |
TMS (Seconds) | 2.984 | 5.897 | 1.971 |
Trip time (Seconds) | 0 | 0.9145 | 0.9035 |
Single line to ground fault | Relay 1 | Relay 2 | Relay 3 |
Threshold Current (kA) | 358 | 353.7 | 349.5 |
TMS (Seconds) | 2.984 | 5.895 | 5.824 |
Trip Time (Seconds) | 0 | 0.9136 | 0.9026 |
Fault Types | Trip Time without Proposed Model (Seconds) | Trip Time with Proposed Model (Seconds) | % Increase in Accuracy |
---|---|---|---|
L-G | 0.25 | 0.03 | 85.00 |
L-L-G | 0.38 | 0.05 | 99.87 |
L-L-L-G | 0.10 | 0.04 | 60.00 |
Fault Types | Trip Time without Proposed Model (Seconds) | Trip Time with Proposed Model (Seconds) | % Increase in Accuracy |
---|---|---|---|
L-G | 0.10 | 0.03 | 70.00 |
L-L-G | 0.32 | 0.05 | 84.38 |
L-L-L-G | 0.20 | 0.04 | 80.00 |
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Ogar, V.N.; Hussain, S.; Gamage, K.A.A. The Use of Instantaneous Overcurrent Relay in Determining the Threshold Current and Voltage for Optimal Fault Protection and Control in Transmission Line. Signals 2023, 4, 137-149. https://doi.org/10.3390/signals4010007
Ogar VN, Hussain S, Gamage KAA. The Use of Instantaneous Overcurrent Relay in Determining the Threshold Current and Voltage for Optimal Fault Protection and Control in Transmission Line. Signals. 2023; 4(1):137-149. https://doi.org/10.3390/signals4010007
Chicago/Turabian StyleOgar, Vincent Nsed, Sajjad Hussain, and Kelum A. A. Gamage. 2023. "The Use of Instantaneous Overcurrent Relay in Determining the Threshold Current and Voltage for Optimal Fault Protection and Control in Transmission Line" Signals 4, no. 1: 137-149. https://doi.org/10.3390/signals4010007
APA StyleOgar, V. N., Hussain, S., & Gamage, K. A. A. (2023). The Use of Instantaneous Overcurrent Relay in Determining the Threshold Current and Voltage for Optimal Fault Protection and Control in Transmission Line. Signals, 4(1), 137-149. https://doi.org/10.3390/signals4010007