BS PD IEC TR 62689-100-2016 Current and voltage sensors or detectors to be used for fault passage indication purposes Requirements and proposals for the IEC 61850 series data modela.pdf
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1、Current and voltage sensors or detectors, to be used for fault passage indication purposesPart 100: Requirements and proposals for the IEC 61850 series data model extensions to support fault passage indicators applicationsPD IEC/TR 62689-100:2016BSI Standards PublicationWB11885_BSI_StandardCovs_2013
2、_AW.indd 1 15/05/2013 15:06National forewordThis Published Document is the UK implementation of IEC/TR 62689-100:2016. The UK participation in its preparation was entrusted to TechnicalCommittee PEL/38, Instrument transformers.A list of organizations represented on this committee can be obtained onr
3、equest to its secretary.This publication does not purport to include all the necessary provisions ofa contract. Users are responsible for its correct application. The British Standards Institution 2016.Published by BSI Standards Limited 2016ISBN 978 0 580 93493 3ICS 17.220.20Compliance with a Britis
4、h Standard cannot confer immunity fromlegal obligations.This Published Document was published under the authority of theStandards Policy and Strategy Committee on 31 December 2016.Amendments/corrigenda issued since publicationDate Text affectedPUBLISHED DOCUMENTPD IEC/TR 62689-100:2016IEC TR 62689-1
5、00 Edition 1.0 2016-10 TECHNICAL REPORT Current and voltage sensors or detectors, to be used for fault passage indication purposes Part 100: Requirements and proposals for the IEC 61850 series data model extensions to support fault passage indicators applications INTERNATIONAL ELECTROTECHNICAL COMMI
6、SSION ICS 17.220.20 ISBN 978-2-8322-3724-3 Registered trademark of the International Electrotechnical Commission Warning! Make sure that you obtained this publication from an authorized distributor. colourinsidePD IEC/TR 62689-100:2016 2 IEC TR 62689-100:2016 IEC 2016 CONTENTS FOREWORD. 6 INTRODUCTI
7、ON . 8 1 Scope 9 2 Normative references 9 3 Terms, definitions and abbreviated terms . 9 3.1 Terms and definitions 9 3.2 Abbreviated terms . 10 3.2.1 Generic abbreviated terms . 10 3.2.2 Proposed specifically for the data model part of this document 11 3.2.3 Existing abbreviated terms used in IEC 61
8、850 (all parts) data object names model . 12 3.3 Fault classification definitions 22 4 Requirements and use cases . 23 4.1 General . 23 4.2 Common actors . 24 4.3 Use cases: fault indication and report 33 4.3.1 Generic use case Not fault type specific 33 4.3.2 Overcurrent non directional Fault Local
9、ization and Indication (F1C/NC) . 51 4.3.3 Phase to earth faults, non directional fault detection (F2) 52 4.3.4 Overcurrent and phase to earth non directional faults detection (F3) . 52 4.3.5 Overcurrent, directional and non directional, fault detection (F4) . 53 4.3.6 Overcurrent, non directional,
10、phase to earth faults, directional and non directional fault detection (F5) 53 4.3.7 Overcurrents and phase to earth faults, directional and non directional fault detection (F6) . 53 4.4 Use cases related to “other functions” 53 4.4.1 Report on device health . 53 4.4.2 Monitor substation environment
11、 53 4.4.3 Monitor external communication . 53 4.4.4 Monitor energy flow (energy flow related use cases) . 53 4.4.5 Contribute to distributed automatic FLISR . 59 4.4.6 Contribute to distributed automatic VVC . 75 4.4.7 Contribute to distributed DER management 75 4.5 Use cases related to “Product lif
12、e cycle” 75 4.5.1 IED configuration via CID file . 75 5 Information Models 100 5.1 Mapping of requirements on LNs . 100 5.1.1 General . 100 5.1.2 Mapping of the requirements of Fault Identification and report . 100 5.1.3 Mapping of the requirements of “other functions” 101 5.1.4 Mapping of the requi
13、rements of “product life cycle” (FieldComp remote configuration) . 103 6 Logical node classes . 103 6.1 General . 103 6.2 Package LNGroupL . 104 6.2.1 General . 104 6.2.2 LICH LN . 106 PD IEC/TR 62689-100:2016IEC TR 62689-100:2016 IEC 2016 3 6.2.3 LN: Common LD Settings Name: LCLD . 107 6.3 Package
14、LNGroupM 108 6.3.1 General . 108 6.3.2 LN: Energy Name: MMTNExt 109 6.3.3 LN: Energy Name: MMTRExt 111 6.3.4 LN: Measurement Name: MMXNExt 113 6.3.5 LN: Measurement Name: MMXUExt 114 6.4 Package LNGroupS . 116 6.4.1 General . 116 6.4.2 LN: Current presence monitoring Name: SCPI 117 6.4.3 LN: Fault P
15、assage Indicator Name: SFPI 118 6.4.4 LN: Fault indicator statistic calculation Name: SFST . 120 6.4.5 LN: Voltage presence indicator Name: SVPI . 121 7 Data object name semantics and enumerations 123 7.1 Data semantics . 123 7.2 Enumerated data attribute types 126 7.2.1 General . 126 7.2.2 CIDHandl
16、ingResultKind enumeration 127 7.2.3 CIDHandlingStatusKind enumeration 128 7.2.4 CurrentTransformersArrangementKind enumeration 128 7.2.5 FaultConfirmationModeKind enumeration . 128 7.2.6 FaultPermanenceKind enumeration 129 7.2.7 PwrFlwSignKind enumeration . 129 8 SCL enumerations (from DOEnumsJAHWG5
17、1) . 129 9 References 130 Annex A (informative) Interpretation of logical node tables 131 A.1 General interpretation of logical node tables 131 A.2 Conditions for element presence . 131 Bibliography . 134 Figure 1 Actors global hierarchy . 25 Figure 2 System Actors SGAM positioning (function) 26 Fig
18、ure 3 System Actors SGAM positioning (not function related) . 27 Figure 4 Fault indication Main use case . 35 Figure 5 Fault detection and indication T1 . 36 Figure 6 Fault detection and indication T2 37 Figure 7 Fault detection and indication for FPI T3,T4 (with communication to HV/MV SS) in the co
19、ntext of FLISR as described in 4.4.5 38 Figure 8 Fault detection and indication for FPI T3,T4 (without communication to HV/MV SS) in the context of FLISR as described in 4.4.5 39 Figure 9 Voltage presence/absence 52 Figure 10 Energy flow related use cases 54 Figure 11 Sequence diagram for monitoring
20、 energy flows use cases . 55 Figure 12 Logical selectivity FLI along the MV feeder . 61 Figure 13 Logical selectivity FLI inside the EU plant 62 Figure 14 Logical selectivity FLI along the MV feeder and anti-islanding . 63 Figure 15 Use case fault location indication . 64 PD IEC/TR 62689-100:2016 4
21、IEC TR 62689-100:2016 IEC 2016 Figure 16 For further analysis 65 Figure 17 IED configuration process via CID . 77 Figure 18 FieldComp configuration Main UC 78 Figure 19 FieldComp asset management 79 Figure 20 Grid and topology planning . 79 Figure 21 Communication network planning 80 Figure 22 First
22、 FieldComp connection to communication network 81 Figure 23 New FieldComp configuration via CID Remote + local (successful case) . 82 Figure 24 New FieldComp configuration via CID Remote + local (unsuccessful case corrupted CID) . 83 Figure 25 Existing FieldComp on-line reconfiguration (topology suc
23、cessful case). 84 Figure 26 Possible arrangement of LNs to support fault passage indication . 101 Figure 27 Possible arrangement of LNs to support “Energy flow related use cases“ . 102 Figure 28 Possible arrangement of LNs to support CID Handling . 103 Figure 29 Class diagram LogicalNodesJAHWG51:Log
24、icalNodesJAHWG51 . 104 Figure 30 Statechart diagram LNGroupL:LNGroupL . 105 Figure 31 Class diagram LNGroupL:LNGroupL 106 Figure 32 Class diagram LNGroupM:LNGroupM 109 Figure 33 Class diagram LNGroupS:LNGroupS . 117 Figure 34 Class diagram DOEnumsJAHWG51:DOEnumsJAHWG51 . 127 Table 1 Generic acronyms
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