Ultrahigh-voltage direct-current line whole-line quick-acting protection method based on polar fault current curve cluster principal component clustering analysis
An ultra-high voltage DC and fault current technology, applied in the fault location and other directions, can solve the problems of difficult to move across the board, long transmission distance, etc., to achieve the effect of accelerated backup protection
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Embodiment 1
[0032] Embodiment 1: The simulation system diagram and fault component network diagram of ±800kV direct current transmission line are respectively as follows figure 1 , 2 shown. The line parameters are as follows: the total length of the line is 1500km, the total length of the ground electrode line on the rectification side is 109km, and the total length of the ground electrode line on the inverter side is 80km. Fault location: the positive line is faulty, and the MN section is 120km away from the M terminal. The ground impedance is 50Ω, and the sampling rate is 10kHz.
[0033] (1) According to step 1 to step 3 in the instruction manual, construct the cluster analysis space of the principal components of the pole line fault current;
[0034] (2) According to step 4 in the manual, put the fault sample into the principal component clustering space, and obtain its projection value q1 on the axis of the first principal component (PC1) as 3.6451;
[0035] (3) The projection q o...
Embodiment 2
[0036] Embodiment 2: The simulation system diagram and fault component network diagram of ±800kV direct current transmission line are respectively as follows figure 1 , 2 shown. The line parameters are as follows: the total length of the line is 1500km, the total length of the ground electrode line on the rectification side is 109km, and the total length of the ground electrode line on the inverter side is 80km. Fault location: The outlet of the inverter side of the positive line is faulty. The ground impedance is 10Ω, and the sampling rate is 10kHz.
[0037] (1) According to step 1 to step 3 in the instruction manual, construct the cluster analysis space of the principal components of the pole line fault current;
[0038] (2) According to step 4 in the manual, put the fault sample into the principal component clustering space, and obtain its projection value q1 on the axis of the first principal component (PC1) as -1.3014;
[0039](3) According to step 5 in the instructio...
Embodiment 3
[0040] Embodiment 3: The simulation system diagram and fault component network diagram of ±800kV direct current transmission line are respectively as follows figure 1 , 2 shown. The line parameters are as follows: the total length of the line is 1500km, the total length of the ground electrode line on the rectification side is 109km, and the total length of the ground electrode line on the inverter side is 80km. Fault location: the negative pole line is faulty, and the MN section is 750km away from the M terminal. The ground impedance is 50Ω, and the sampling rate is 10kHz.
[0041] (1) According to step 1 to step 3 in the instruction manual, construct the cluster analysis space of the principal components of the pole line fault current;
[0042] (2) According to step 4 in the manual, put the fault sample into the principal component clustering space, and obtain its projection value q1 on the first principal component (PC1) axis as 1.9257;
[0043] (3) The projection q of ...
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