CHAPTER 15: THEORY OF OPERATION
THE D90
Plus
DISTANCE ELEMENTS
D90
PLUS
LINE DISTANCE PROTECTION SYSTEM – INSTRUCTION MANUAL
631
The limit angle of the comparator is adjustable. This allows the user to shape the
characteristic as a mho or a lens as shown below. The memory-polarized mho
characteristic has excellent built-in directional integrity. Refer to the
Memory polarization
section for additional details.
Figure 547: Mho and lens characteristics
Non-directional mho characteristic
The non-directional mho characteristic is achieved by checking the angle between the two
values for the various phase and ground distance elements shown in the table below.
Table 15-1: Non-directional mho characteristic angle calculation parameters
Mho reactance characteristic for directional applications
The mho reactance characteristic is achieved by checking the angle between the two
values for the various phase and ground distance elements shown in the table below.
Table 15-2: Mho reactance characteristic angle calculation parameters
A ground element
I
A
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
A
V
A
_1M
B ground element
I
B
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
B
V
B
_1M
C ground element
I
C
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
C
V
C
_1M
Element
Value 1
Value 2
$&'5
5
5HDFKVHWWLQJ
;
&RPSDUDWRUDQJOH
VHWWLQJ
5
&RPSDUDWRUDQJOH
VHWWLQJ
5HDFKVHWWLQJ
;
0KRFKDUDFWHULVWLF
/HQVFKDUDFWHULVWLF
Element
Value 1
Value 2
AB phase element
(
I
A
–
I
B
) ×
Z
– (
V
A
–
V
B
)
(
V
A
–
V
B
) – (
I
A
–
I
B
) ×
Z
REV
BC phase element
(
I
B
–
I
C
) ×
Z
– (
V
B
–
V
C
)
(
V
B
–
V
C
) – (
I
B
–
I
C
) ×
Z
REV
CA phase element
(
I
C
–
I
A
) ×
Z
– (
V
C
–
V
A
)
(
V
C
–
V
A
) – (
I
C
–
I
A
) ×
Z
REV
A ground element
I
A
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
A
V
A
– (
I
A
×
Z
REV
+ I_0 ×
K
0
×
Z
REV
+
I
G
×
K
0
M
×
Z
REV
)
B ground element
I
B
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
B
V
B
– (
I
B
×
Z
REV
+ I_0 ×
K
0
×
Z
REV
+
I
G
×
K
0
M
×
Z
REV
)
C ground element
I
C
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
C
V
C
– (
I
C
×
Z
REV
+ I_0 ×
K
0
×
Z
REV
+
I
G
×
K
0
M
×
Z
REV
)
Element
Value 1
Value 2
AB phase element
(
I
A
–
I
B
) ×
Z
– (
V
A
–
V
B
)
(
I
A
–
I
B
) ×
Z
BC phase element
(
I
B
–
I
C
) ×
Z
– (
V
B
–
V
C
)
(
I
B
–
I
C
) ×
Z
CA phase element
(
I
C
–
I
A
) ×
Z
– (
V
C
–
V
A
)
(
I
C
–
I
A
) ×
Z
A ground element
I
A
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
A
(
I
_0) ×
Z
B ground element
I
B
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
B
(
I
_0) ×
Z
C ground element
I
C
×
Z
+
I
_0 ×
K
0
×
Z
+
I
G
×
K
0
M
×
Z
–
V
C
(
I
_0) ×
Z
Содержание D90 Plus
Страница 10: ...x D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL TABLE OF CONTENTS ...
Страница 438: ...428 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL PROTECTION FLEXANALOG PARAMETERS CHAPTER 7 PROTECTION ...
Страница 502: ...492 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL AUTOMATION FLEXANALOG PARAMETERS CHAPTER 8 AUTOMATION ...
Страница 626: ...616 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL ENERVISTA SECURITY MANAGEMENT SYSTEM CHAPTER 13 SECURITY ...
Страница 678: ...668 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL SINGLE POLE TRIPPING CHAPTER 15 THEORY OF OPERATION ...
Страница 684: ...674 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL DISPOSAL CHAPTER 16 MAINTENANCE ...
Страница 686: ...676 D90PLUS LINE DISTANCE PROTECTION SYSTEM INSTRUCTION MANUAL REVISION HISTORY CHAPTER 17 APPENDIX ...