117
6
F
2
S
0
8
3
4
I = fault current
Zs = zone reach setting
Zso = offset zone reach setting
Figure 2.6.1.7 is a voltage diagram showing the offset mho characteristics obtained by the phase
comparison between S1 and S2.
The offset mho characteristic on the impedance plane is obtained by dividing the voltage in Figure
2.6.1.7 by current I.
R
V
−
IZso
IZs
S2 = V
+
IZso
S1 = V
−
IZs
X
Figure 2.6.1.7 Offset Mho Element
Reactance element
The reactance elements of Z1 and Z1X have a composite characteristic with the two straight lines,
one is parallel and the other is gradual descent toward the R-axis as shown in Figure 2.6.1.8.
The characteristic is defined by the reach setting Xs and the angle settings
θ
1 and
θ
2. This
composite characteristic is obtained only when the load current is transmitted from local to remote
terminal. When the load current flows from remote to local terminal or the load current does not
flow or
θ
1 is set to 0
°
, the reactance element characteristic is a horizontal line which is parallel to
the R-axis.
The characteristic is expressed by the following equations.
For horizontal characteristic
X
≤
Xs
For gradient characteristic
R
≤
Xs tan ( 90
°
−
θ
2 )
+
( Xs
−
X ) tan ( 90
°
−
θ
1 )
where,
R = resistance component of measured impedance
X = reactance component of measured impedance
Xs = reach setting
The reactance element characteristic of Z2, ZF and ZR1 is given by a parallel line to the R axis.
R and X are calculated using an integration approximation algorithm. The reactance element
provides high measurement accuracy even in the presence of power system frequency fluctuations
and distorted transient waveforms containing low-frequency spectral components.
A decision to operate is made 6 times in each power frequency cycle using the above-mentioned
equation. The reactance element operates when two consecutive measurements are made if the
distance to a fault is within 90% of the reach setting. If the distance to a fault is more than 90%, the
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Содержание GRZ100-211B
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Страница 288: ... 287 6 F 2 S 0 8 3 4 Appendix B Signal List w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 324: ... 323 6 F 2 S 0 8 3 4 Appendix C Variable Timer List w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 352: ... 351 6 F 2 S 0 8 3 4 Appendix G External Connections w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 390: ... 389 6 F 2 S 0 8 3 4 Appendix J Return Repair Form w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 396: ... 395 6 F 2 S 0 8 3 4 Appendix K Technical Data w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
Страница 408: ... 407 6 F 2 S 0 8 3 4 Appendix L Symbols Used in Scheme Logic w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 412: ... 411 6 F 2 S 0 8 3 4 Appendix M Example of Setting Calculation w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 440: ... 439 6 F 2 S 0 8 3 4 Appendix P Data Transmission Format w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 448: ... 447 6 F 2 S 0 8 3 4 Appendix R Inverse Time Characteristics w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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Страница 460: ... 459 6 F 2 S 0 8 3 4 Appendix T Ordering w w w E l e c t r i c a l P a r t M a n u a l s c o m ...
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