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with the binary-coded decimal coding is to calculate the sum of the bits set to TRUE
(1). The four bits nibble (BI3...BI0) have a typical factor to the natural binary coding.
The sum of the values should not be more than 9. If the nibble sum is greater than 9,
the tap position output validity is regarded as bad.
The operation mode “GRAY2INT” is selected when the binary-reflected Gray coding
is used for showing the position of the transformer tap changer. The basic principle
of the Gray coding is that only one actual bit changes value with consecutive
positions. This function is based on the common binary-reflected Gray code which
is used with some tap changers. Changing the bit closest to the right side bit gives
a new pattern.
An additional separate input,
SIGN_BIT
, can be used for negative values. If the
values are positive, the input is set to FALSE (0). If the
SIGN_BIT
is set to TRUE (1)
making the number negative, the remaining bits are identical to those of the coded
positive number.
The tap position validity is set to good in all valid cases. The quality is set to bad in
invalid combinations in the binary inputs. For example, when the “BCD2INT” mode
is selected and the input binary combination is “0001101”, the quality is set to bad.
For negative values, when the
SIGN_BIT
is set to TRUE (1) and the input binary
combination is “1011011”, the quality is set to bad.
If the tap changer has auxiliary contacts for indicating the extreme positions of the
tap changer, their status can be connected to
END_POS_R
and
END_POS_L
inputs.
The
END_POS_R
(End position raise or highest allowed tap position reached) status
refers to the extreme position that results in the highest number of the taps in
the tap changer. Similarly,
END_POS_L
(End position lower or lowest allowed tap
position reached) status refers to the extreme position that results in the lowest
number of the taps in the tap changer.
TAP_POS
output is dedicated for transferring
the validated tap position for the functions that need tap position information, for
example OL5ATCC and TRxPTDF. It includes both the actual position information
and the status of reached end positions, assuming that inputs
END_POS_R
and
END_POS_L
are connected.
Table 1449: Truth table of the decoding modes
Inputs
TAP_POS outputs
SIGN_
BIT
BI5
BI4
BI3
BI2
BI1
BI0
NAT2I
NT
BCD2I
NT
GRAY2
INT
...
...
...
...
...
...
...
1
0
0
0
0
1
1
-3
-3
-2
1
0
0
0
0
1
0
-2
-2
-3
1
0
0
0
0
0
1
-1
-1
-1
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
0
1
1
1
1
0
0
0
0
0
1
0
2
2
3
0
0
0
0
0
1
1
3
3
2
0
0
0
0
1
0
0
4
4
7
0
0
0
0
1
0
1
5
5
6
0
0
0
0
1
1
0
6
6
4
Table continues on the next page
Measurement functions
1MRS759142 F
1500
REX640
Technical Manual
Содержание RELION REX640
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Страница 167: ...Figure 62 Signal outputs in power supply module 1MRS759142 F Basic functions REX640 Technical Manual 167 ...
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Страница 1868: ...Figure 989 ANSI extremely inverse time characteristics General function block features 1MRS759142 F 1868 REX640 Technical Manual ...
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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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