Siemens SIPROTEC Manual page 155

Line differential protection with distance protection
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The earth fault resistance measured by the distance protection then results from the formula below (it is
assumed that I
with
R
RE
R
L1
R
Arc
R
/R
E
L
/I
I
2
1
R
TF
The following recommended setting applies for the resistance tolerance of distance zone Z1:
with
R
1E
1.2
The resistance R
shape of the polygon, provided that the inclination angle of the polygon Distance Angle (address 1511) is
not set greater than the line angle Line Angle (address 1105).
Example:
Arc length: 2 m
Minimum fault current: 1.0 kA
Effective tower footing resistance of the overhead line system: 3 Ω
with
I
/I
2
1
R
/R
E
L
Voltage transformer
Current transformer
SIPROTEC, 7SD5, Manual
C53000-G1176-C169-5, Release date 02.2011
and I
are in phase opposition):
1
E
Resistance measured by the SIPROTEC distance protection
Line resistance up to the fault location
Arc resistance
Setting in the distance protection (address 1116 and 1118)
Ratio between earth fault currents at the opposite end and the local end. For a correct R
setting of the distance zone, the most unfavourable case must be considered. This most un-
favourable case would be a maximum earth fault current at the opposite end and a minimum
earth fault current at the local end. Moreover, the currents considered are the r.m.s. values
without phase displacement. Where no information is available on the current ratio, a value
of approx. „3" can be assumed. On radial feeders with negligible infeed from the opposite
end, this ratio is „0".
Effective tower footing resistance of the overhead line system. Where no information is avail-
able on the amount of tower footing resistance, a value of 3 Ω can be assumed for overhead
lines with earth wire (see also /5/).
Setting in the distance protection RE(Z1) Ø-E, address 1604
Safety margin 20%
of the line itself can be ignored with SIPROTEC 4 devices. It is taken into account by the
L
= 3
= 0,6
110 kV / 0.1 kV
600 A / 5 A
Functions
2.5 Distance Protection
155

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