5-24
B90 Low Impedance Bus Differential System
GE Multilin
5.2 PRODUCT SETUP
5 SETTINGS
5
ited responses from the B90 when any current values change by 15 A, the
DNP CURRENT DEFAULT DEADBAND
setting
should be set to “15”. Note that these settings are the deadband default values. DNP object 34 points can be used to
change deadband values, from the default, for each individual DNP analog input point. Whenever power is removed and
re-applied to the B90, the default deadbands will be in effect.
The B90 relay does not support power metering. As such, the
DNP POWER SCALE FACTOR
and
DNP POWER DEFAULT
DEADBAND
settings are not applicable.
The B90 relay does not support energy metering. As such, the
DNP ENERGY SCALE FACTOR
and
DNP ENERGY
DEFAULT DEADBAND
settings are not applicable.
The
DNP TIME SYNC IIN PERIOD
setting determines how often the Need Time Internal Indication (IIN) bit is set by the B90.
Changing this time allows the DNP master to send time synchronization commands more or less often, as required.
The
DNP MESSAGE FRAGMENT SIZE
setting determines the size, in bytes, at which message fragmentation occurs. Large
fragment sizes allow for more efficient throughput; smaller fragment sizes cause more application layer confirmations to be
necessary which can provide for more robust data transfer over noisy communication channels.
When the DNP data points (analog inputs and/or binary inputs) are configured for Ethernet-enabled relays, check
the “DNP Points Lists” B90 web page to view the points lists. This page can be viewed with a web browser by enter-
ing the B90 IP address to access the B90 “Main Menu”, then by selecting the “Device Information Menu” > “DNP
Points Lists” menu item.
The
DNP OBJECT 1 DEFAULT VARIATION
to
DNP OBJECT 32 DEFAULT VARIATION
settings allow the user to select the DNP
default variation number for object types 1, 2, 20, 21, 22, 23, 30, and 32. The default variation refers to the variation
response when variation 0 is requested and/or in class 0, 1, 2, or 3 scans. Refer to the
DNP implementation
section in
appendix E for additional details.
The DNP binary outputs typically map one-to-one to IED data points. That is, each DNP binary output controls a single
physical or virtual control point in an IED. In the B90 relay, DNP binary outputs are mapped to virtual inputs. However, some
legacy DNP implementations use a mapping of one DNP binary output to two physical or virtual control points to support
the concept of trip/close (for circuit breakers) or raise/lower (for tap changers) using a single control point. That is, the DNP
master can operate a single point for both trip and close, or raise and lower, operations. The B90 can be configured to sup-
port paired control points, with each paired control point operating two virtual inputs. The
DNP NUMBER OF PAIRED CONTROL
POINTS
setting allows configuration of from 0 to 32 binary output paired controls. Points not configured as paired operate on
a one-to-one basis.
The
DNP ADDRESS
setting is the DNP slave address. This number identifies the B90 on a DNP communications link. Each
DNP slave should be assigned a unique address.
The
DNP TCP CONNECTION TIMEOUT
setting specifies a time delay for the detection of dead network TCP connections. If
there is no data traffic on a DNP TCP connection for greater than the time specified by this setting, the connection will be
aborted by the B90. This frees up the connection to be re-used by a client.
Relay power must be re-cycled after changing the
DNP TCP CONNECTION TIMEOUT
setting for the changes to take
effect.
g) DNP / IEC 60870-5-104 POINT LISTS
PATH: SETTINGS
PRODUCT SETUP
COMMUNICATIONS
DNP / IEC104 POINT LISTS
The binary and analog inputs points for the DNP protocol, or the MSP and MME points for IEC 60870-5-104 protocol, can
configured to a maximum of 256 points. The value for each point is user-programmable and can be configured by assigning
FlexLogic operands for binary inputs / MSP points or FlexAnalog parameters for analog inputs / MME points.
DNP / IEC104
POINT LISTS
BINARY INPUT / MSP
POINTS
Range: see sub-menu below
MESSAGE
ANALOG INPUT / MME
POINTS
Range: see sub-menu below
NOTE
NOTE
NOTE
NOTE
Содержание B90 UR Series
Страница 28: ...1 20 B90 Low Impedance Bus Differential System GE Multilin 1 5 USING THE RELAY 1 GETTING STARTED 1 ...
Страница 114: ...4 28 B90 Low Impedance Bus Differential System GE Multilin 4 3 FACEPLATE INTERFACE 4 HUMAN INTERFACES 4 ...
Страница 272: ...6 14 B90 Low Impedance Bus Differential System GE Multilin 6 5 PRODUCT INFORMATION 6 ACTUAL VALUES 6 ...
Страница 316: ...A 4 B90 Low Impedance Bus Differential System GE Multilin A 1 PARAMETER LISTS APPENDIX A A ...
Страница 406: ...B 90 B90 Low Impedance Bus Differential System GE Multilin B 4 MEMORY MAPPING APPENDIX B B ...
Страница 436: ...C 30 B90 Low Impedance Bus Differential System GE Multilin C 7 LOGICAL NODES APPENDIX C C ...
Страница 446: ...D 10 B90 Low Impedance Bus Differential System GE Multilin D 1 IEC 60870 5 104 APPENDIX D D ...