I.L. 40-385.7
5-8
5.2
SELECTION OF REL300 SETTINGS
The following settings are determined by the application. They do not require calculation.
5.2.1
The OSC setting
For selecting one of the 4 ways (TRIP/Z2TR/Z2Z3/
∆
I
∆
V) to initiate the oscillographic data tak-
en, where:
TRIP
—
start data taken only if trip action occurs.
Z2TR
—
start data taken if Zone 2 units pick up, or any trip action occurs.
Z2Z3
—
start data taken if Zone 2 or Zone 3 units pick up, or any trip action occurs.
∆
I
∆
V
—
start data taken if
∆
I,
∆
V, Zone 2 or Zone 3 units pick up, or any trip action occurs.
NOTE:
The setting of
∆
I,
∆
V, for OSC is not recommended.
5.2.2
The FDAT setting
For selecting one of the 3 ways (TRIP/Z2TR/Z2Z3) to initiate the fault data taken, where:
TRIP
—
start to store fault data only if trip action occurs.
Z2TR
—
start to store fault data if Zone 2 units pick up or any trip action occurs.
Z2Z3
—
start to store fault data if Zone 2 or Zone 3 units pick up or any trip action occurs.
5.2.3
The current transformer ratio setting (CTR)
Used for the load current monitoring, if it is selected to be displayed in primary amperes. It has
no effect on the protective relaying system. For this example, set CTR = 240.
5.2.4
The voltage transformer ratio setting (VTR)
Used for the system voltage monitoring, if it is selected to be displayed in primary volts. It has
no effect on the protective relaying system. For this example, set VTR = 600.
5.2.5
The frequency setting (FREQ)
FREQ should be selected to match the power system operating frequency. For example, select
FREQ = 60 if the power system operating frequency is 60 Hertz.
5.2.6
The current transformer type setting (CTYP)
CTYP provides the flexibility for 5 Amp or 1 Amp rated current transformer selection. For ex-
ample, select and set CTYP = 5 if a 5 Amp current transformer is used.
The setting of CTYP affects all the distance unit and overcurrent unit setting ranges. The rang-
es will be automatically changed as listed in Table 5-1(page 5-12).
Summary of Contents for REL-300
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Page 29: ...I L 40 385 7 1 12 Figure 1 4 Simplified Block Diagram of REL300 Relay Sub 6 9651A07 ...
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Page 43: ...I L 40 385 7 2 13 Figure 2 8 REL300 Outline Drawing Sub 2 2403F38 ...
Page 44: ...I L 40 385 7 2 14 Figure 2 9 REL300 Backplane Rear View Sub 11 2420F01 ...
Page 71: ...I L 40 385 7 3 27 Figure 3 1 REL300 Characteristics R X Diagram 9651A57 Sub 3 ...
Page 74: ...I L 40 385 7 3 30 Figure 3 5 REL300 Zone 1 Trip Logic 9661A16 Sub 1 ...
Page 75: ...I L 40 385 7 3 31 Figure 3 6 REL300 Zone 2 Trip Logic 9658A84 Sub 2 ...
Page 76: ...I L 40 385 7 3 32 Figure 3 7 REL300 Zone 3 Trip Logic 1504B04 Sub 1 ...
Page 78: ...I L 40 385 7 3 34 Figure 3 10 Loss of Potential Logic 9662A61 Sub 1 ...
Page 83: ...I L 40 385 7 3 39 Figure 3 17 Load Loss Accelerated Trip Logic 9656A33 Sub 2 ...
Page 85: ...I L 40 385 7 3 41 Figure 3 19 Reclosing Initiation Logic 1504B45 Sub 1 ...
Page 88: ...I L 40 385 7 3 44 Figure 3 24 PUTT Keying Logic Sub 2 9657A62 ...
Page 89: ...I L 40 385 7 3 45 Figure 3 25 Blocking System Logic 1504B89 Sub 1 ...
Page 94: ...I L 40 385 7 3 50 Figure 3 33 Composite Signal For Programmable Output Contacts Sub 2 1504B08 ...
Page 110: ...I L 40 385 7 4 13 Figure 4 1 REL300 Backplate Sub 8 1354D22 Sheet 4 of 5 ...
Page 111: ...I L 40 385 7 4 14 Figure 4 2 REL300 Backplane PC Board Terminals Sub 1 1611C78 ...
Page 112: ...I L 40 385 7 4 15 Figure 4 3 REL300 Systems External Connection Sub 3 1502B21 ...
Page 169: ...I L 40 385 7 B 7 Figure B 2 Test Connection for Three Phase Faults 1502B51 Sub 1 Sheet 2 of 4 ...
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