en06000613.vsd
jX
R
KC = 0%
KC = 80%
LOC = 0%
KC = 50%
LOC = 50%
jX
jX
R
R
KC = 2 x 33%
LOC = 33%, 66%
KC = 80%
LOC = 100%
jX
jX
R
R
IEC06000613 V1 EN-US
Figure 221: Apparent impedances seen by distance IED for different SC locations and
spark gaps used for overvoltage protection
en06000614.vsd
MOV protected series capacitor
M OV
i
L
i
C
i
M
u
C
-jX
C
0
10
20
30
40
50
60
20
10
10
20
0
10
20
30
40
50
60
100
50
50
100
0
10
20
30
40
50
60
20
10
10
20
0
10
20
30
40
50
60
20
10
10
20
Line current as a function of time
Capacitor voltage as a function of time
Capacitor current as a function of time
MOV current as a function of time
IEC06000614 V1 EN-US
Figure 222: MOV protected capacitor with examples of capacitor voltage and
corresponding currents
The impedance apparent to distance IED is always reduced for the amount of capacitive
reactance included between the fault and IED point, when the spark gap does not flash over, as
presented for typical cases in figure
. Here it is necessary to distinguish between two
typical cases:
•
Series capacitor only reduces the apparent impedance, but it does not cause wrong
directional measurement. Such cases are presented in figure
for 50% compensation at
50% of line length and 33% compensation located on 33% and 66% of line length. The
remote end compensation has the same effect.
•
The voltage inversion occurs in cases when the capacitor reactance between the IED point
and fault appears bigger than the corresponding line reactance, Figure
, 80%
compensation at local end. A voltage inversion occurs in IED point and the distance IED
will see wrong direction towards the fault, if no special measures have been introduced in
its design.
The situation differs when metal oxide varistors (MOV) are used for capacitor overvoltage
protection. MOVs conduct current, for the difference of spark gaps, only when the
Section 7
1MRK 505 343-UEN B
Impedance protection
344
Application manual
Содержание Relion 670 series
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