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of the power transformer. If the phase voltages are measured, the voltage U_AB
is calculated internally in the protection relay. In case bi-directional regulation is
expected, then voltage measurement from primary side is also required. If not
available, calculated values can be used under certain conditions.
The currents from the secondary side of the power transformer (I_x, where x is A, B
or C) have several uses.
• The highest phase current value is used for overcurrent blocking.
• The currents from the secondary side of the power transformer are used for LDC
(average of the connected inputs).
• The currents from the secondary side of the power transformer are used for
calculating the circulating current in the NRP and MCC operation modes.
When reverse regulation takes place, primary side current measurements are
expected and is used in a similar way.
Both voltage U_AB and the phase currents are always measured using the value
of the filtered fundamental frequency component (DFT). Hence, the harmonics are
always suppressed. Moreover, the measured voltage value is continuously average-
filtered with the eight-value-long sliding window. The phase-compensated voltage
U_A is always used in calculations, although it is not connected. This averaged value,
the parameter U
m
, is used for control, and its magnitude can be
read from the monitored data U_MEAS.
Similarly, the magnitude of the phase current of the own transformer, I_x, and the
phase angle difference between the internally phase-compensated voltage U_A and
phase current I_x (the angle difference used in
) are
also average-filtered by the same fixed-length window. The phase angle value can
be read from the monitored data ANGL_UA_IA. These currents and phase angle
differences are used solely in circulating current calculations.
There are minimum limits for the voltage and current magnitudes, so the magnitude
and phase angle difference values diverge from zero. The voltage magnitude must
exceed three percent of U
n
and the current I_A must exceed two percent of I
n
.
9.10.5.2
Tap changer position inputs
The position value of the tap changer can be brought to OL5ATCC as a resistance
value, a mA signal or as a binary-coded signal. More information on how the
resistance value, the mA signal or a binary-coded interface are implemented can
be found in TPOSYLTC in this manual.
The indicated tap changer position of the own transformer is internally connected
to the
TAP_POS
input, and the tap changer positions of the parallel transformers
are fed to inputs
TRx_DAT
via data combiner function blocks OLGAPC. This also
defines the connection identity so that follower 1 is connected to
TR1_DAT
, follower
2 is connected to
TR2_DAT
and follower 3 is connected to
TR3_DAT
. The own
transformer position can be read from the input
TAP_POS
. The follower tap changer
positions can be read from the input data
TR_TAP_POS
of OLGAPCx.
The tap changer position value is given in parentheses. For example, (0) indicates
that there is no tap changer position connected or the quality of the tap changer
position value is bad. Typically, if no tap changer position is connected, all the
TPOSYLTC binary inputs are FALSE by default and the value shown is (0). A value
other than zero indicates bad quality. OL5ATCC treats a bad-quality tap changer
position as unconnected tap position information.
Control functions
1MRS759142 F
1698
REX640
Technical Manual
Содержание RELION REX640
Страница 1: ... RELION PROTECTION AND CONTROL REX640 Technical Manual ...
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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 ...
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