
The minimum time to saturate (T
m
) in TR3PTDF is 10 ms.
Two typical cases considered for the determination of the sufficient
accuracy limit factor (F
a
) are a fault occurring at the substation bus and
re-energizing against a fault occurring further down in the network.
A fault occurring at the substation bus
The protection must be stable when a fault occurs during a normal operating
situation. Re-energizing the transformer against a bus fault leads to very high fault
currents and thermal stress. Therefore, re-energizing is not preferred in this case.
With this assumption, the remanence can be neglected.
The maximum through-going fault current I
kmax
is typically 10 pu for a substation's
main transformer. At a short circuit fault close to the supply transformer, the
DC time constant (T
dc
) of the fault current is almost the same as that of the
transformer, the typical value being 100 ms.
F > K I
(T (1 - e
) + 1)
40
a
r
kmax
dc
-
Tm
⋅
⋅
⋅
⋅
≈
ω
Tdc
(Equation 175)
I
kmax
10 (pu)
T
dc
100 (ms)
ω
100π (Hz)
T
m
10 (ms)
K
r
1
Re-energizing against a fault occurring further down in the network
The protection must be stable during the re-energization against a fault on the line.
In this case, the existence of remanence is very probable. In this example, it is 40
percent.
The fault current is now smaller and since the ratio of the resistance to the
reactance is greater in this location, having a full DC offset is not possible.
Furthermore, the DC time constant (T
dc
) of the fault current is now smaller, here
50 ms.
Assuming a maximum fault current is 30 percent lower than in the bus fault and a
DC offset 90 percent of the maximum.
F > K
I
0.9 (T
(1 - e
) + 1)
40
a
r
kmax
dc
-
Tm
⋅
⋅
⋅
⋅
⋅
≈
ω
Tdc
(Equation 176)
I
kmax
0.7 · 10 = 7 (pu)
T
dc
50 (ms)
ω
100π (Hz)
T
m
10 (ms)
K
r
1/(1-0.4) = 1.6667
1MRS759142 F
Protection functions
REX640
Technical Manual
741
Содержание RELION REX640
Страница 1: ... RELION PROTECTION AND CONTROL REX640 Technical Manual ...
Страница 2: ......
Страница 3: ...Document ID 1MRS759142 Issued 2023 02 07 Revision F Copyright 2023 ABB All rights reserved ...
Страница 167: ...Figure 62 Signal outputs in power supply module 1MRS759142 F Basic functions REX640 Technical Manual 167 ...
Страница 184: ...Figure 84 mA channels working as mA outputs Basic functions 1MRS759142 F 184 REX640 Technical Manual ...
Страница 1868: ...Figure 989 ANSI extremely inverse time characteristics General function block features 1MRS759142 F 1868 REX640 Technical Manual ...
Страница 1869: ...Figure 990 ANSI very inverse time characteristics 1MRS759142 F General function block features REX640 Technical Manual 1869 ...
Страница 1870: ...Figure 991 ANSI normal inverse time characteristics General function block features 1MRS759142 F 1870 REX640 Technical Manual ...
Страница 1874: ...Figure 995 ANSI long time inverse time characteristics General function block features 1MRS759142 F 1874 REX640 Technical Manual ...
Страница 1875: ...Figure 996 IEC normal inverse time characteristics 1MRS759142 F General function block features REX640 Technical Manual 1875 ...
Страница 1876: ...Figure 997 IEC very inverse time characteristics General function block features 1MRS759142 F 1876 REX640 Technical Manual ...
Страница 1877: ...Figure 998 IEC inverse time characteristics 1MRS759142 F General function block features REX640 Technical Manual 1877 ...
Страница 1878: ...Figure 999 IEC extremely inverse time characteristics General function block features 1MRS759142 F 1878 REX640 Technical Manual ...
Страница 1882: ...Figure 1002 RI type inverse time characteristics General function block features 1MRS759142 F 1882 REX640 Technical Manual ...
Страница 1885: ...Figure 1004 UK rectifier inverse time characteristic 1MRS759142 F General function block features REX640 Technical Manual 1885 ...
Страница 1959: ......