Hitachi Relion 670 Series Applications Manual page 299

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1MRK506375-UEN Rev. N
PROTECTION 1
PROTECTION 1
START
START
PROTECTION 2
PROTECTION 2
REVL1
REVL1
REVL2
REVL2
PROTECTION 3
PROTECTION 3
STDIR
STDIR
IEC16000182 V3 EN-US
Figure 146:
Protection functions connect the directional data via the start combinator function STARTCOMB to
the start matrix function SMAGAPC and then to the trip function SMPPTRC, or directly to SMAGAPC
and then to the SMPPTRC.
The SMAGAPC merge start and directional output signals from different application functions and
creates a common directional output signal STDIR to be connected to SMPPTRC.
The trip function SMPPTRC splits up the directional data as general output data for START, STL1,
STL2, STN, FW, and REV.
All start and directional outputs are mapped to the IEC61850 logical node data model of the trip
function and provided via the IEC61850 dirGeneral, dirPhsA, dirPhsB, and dirNeut data attributes.
Fault current and voltage reporting
The snapshot of each phase current DFT values (FLTILxMAG/FLTILxANG), each phase voltage DFT
values (FLTULxMAG/FLTULxANG), neutral current magnitude and angle (FLTINMAG/FLTINANG),
and neutral voltage magnitude and angle (FLTUNMAG/FLTUNANG) will be taken at the positive
edge of the TRIP activation. These values also will be stored and reported to IEC 61850, LHMI, and
the monitoring tool at the instant of TRIP activation, for example, if the TRIP signal of PHPIOC is
connected to the TRINALL signal of the SMPPTRC function. The functionality is shown in
147.
Railway application RER670
Application manual
STARTCOMB
STARTCOMB
BLOCK
BLOCK
STDIR
STDIR
START
START
FW
FW
FW
FW
REV
REV
REV
REV
STL1
STL1
FWL1
FWL1
REVL1
REVL1
STL2
STL2
FWL2
FWL2
REVL2
REVL2
STN
FWN
REVN
STARTCOMB
STARTCOMB
BLOCK
BLOCK
STDIR
STDIR
START
START
FW
FW
REV
REV
STL1
STL1
STL1
STL1
FWL1
FWL1
FWL1
FWL1
REVL1
REVL1
STL2
STL2
STL2
STL2
FWL2
FWL2
FWL2
FWL2
REVL2
REVL2
STN
FWN
REVN
-
-
-
-
-
-
Example of the connection of directional start logic.
© 2017 - 2023 Hitachi Energy. All rights reserved
I2P
I2P
I2P
U2P
U2P
U2P
BLOCK
BLOCK
BLOCK
TRINALL
TRINALL
TRINALL
TRINL1
TRINL1
TRINL1
TRINL2
TRINL2
TRINL2
TRINN
TRINN
TRINN
SMAGAPC
SMAGAPC
SETLKOUT
SETLKOUT
SETLKOUT
RSTLKOUT
RSTLKOUT
RSTLKOUT
STDIR
STDIR
BLOCK
BLOCK
STDIR
STDIR
STDIR
RSTFLTUI
RSTFLTUI
RSTFLTUI
STDIR1
STDIR1
STDIR2
STDIR2
STDIR3
STDIR3
STDIR4
STDIR4
STDIR5
STDIR5
STDIR6
STDIR6
STDIR7
STDIR7
STDIR8
STDIR8
STDIR9
STDIR9
STDIR10
STDIR10
STDIR11
STDIR11
STDIR12
STDIR12
STDIR13
STDIR13
STDIR14
STDIR14
STDIR15
STDIR15
STDIR16
STDIR16
Section 14
Logic
SMPPTRC
SMPPTRC
TRIP
TRIP
TRIP
TRN
TRN
TRN
CLLKOUT
CLLKOUT
CLLKOUT
START
START
START
STL1
STL1
STL1
STL2
STL2
STL2
STN
STN
STN
FW
FW
FW
REV
REV
REV
FLTIL1MAG
FLTIL1MAG
FLTIL1MAG
FLTIL1ANG
FLTIL1ANG
FLTIL1ANG
FLTIL2MAG
FLTIL2MAG
FLTIL2MAG
FLTIL2ANG
FLTIL2ANG
FLTIL2ANG
FLTINMAG
FLTINMAG
FLTINMAG
FLTINANG
FLTINANG
FLTINANG
FLTUL1MAG
FLTUL1MAG
FLTUL1MAG
FLTUL1ANG
FLTUL1ANG
FLTUL1ANG
FLTUL2MAG
FLTUL2MAG
FLTUL2MAG
FLTUL2ANG
FLTUL2ANG
FLTUL2ANG
FLTUNMAG
FLTUNMAG
FLTUNMAG
FLTUNANG
FLTUNANG
FLTUNANG
Figure
293

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