BS PD IEC TR 62001-3-2016 High-voltage direct current (HVDC) systems Guidance to the specification and design evaluation of AC filters Modelling《高压直流(HVDC)系统 交流滤波器的规格和设计评估指南 建模》.pdf
《BS PD IEC TR 62001-3-2016 High-voltage direct current (HVDC) systems Guidance to the specification and design evaluation of AC filters Modelling《高压直流(HVDC)系统 交流滤波器的规格和设计评估指南 建模》.pdf》由会员分享,可在线阅读,更多相关《BS PD IEC TR 62001-3-2016 High-voltage direct current (HVDC) systems Guidance to the specification and design evaluation of AC filters Modelling《高压直流(HVDC)系统 交流滤波器的规格和设计评估指南 建模》.pdf(118页珍藏版)》请在麦多课文档分享上搜索。
1、High-voltage direct current (HVDC) systems Guidance to the specification and designevaluation of AC filtersPart 3: ModellingPD IEC/TR 62001-3:2016BSI Standards PublicationWB11885_BSI_StandardCovs_2013_AW.indd 1 15/05/2013 15:06National forewordThis Published Document is the UK implementation of IEC/
2、TR 62001- 3:2016. Together with PD IEC/TR 62001-1:2016, PD IEC/TR 62001-2:2016 and PD IEC/TR 62001-4:2016, it supersedes PD IEC/TR 62001:2009, which is withdrawn.The UK participation in its preparation was entrusted to TechnicalCommittee PEL/22, Power electronics.A list of organizations represented
3、on this committee can be obtained onrequest 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 91332 7
4、ICS 29.200Compliance with a British Standard cannot confer immunity fromlegal obligations.This Published Document was published under the authority of theStandards Policy and Strategy Committee on 31 October 2016.Amendments/corrigenda issued since publicationDate Text affectedPUBLISHED DOCUMENTPD IE
5、C/TR 62001-3:2016IEC TR 62001-3 Edition 1.0 2016-09 TECHNICAL REPORT High-voltage direct current (HVDC) systems Guidance to the specification and design evaluation of AC filters Part 3: Modelling INTERNATIONAL ELECTROTECHNICAL COMMISSION ICS 29.200 ISBN 978-2-8322-3655-0 Registered trademark of the
6、International Electrotechnical Commission Warning! Make sure that you obtained this publication from an authorized distributor. colourinsidePD IEC/TR 62001-3:2016 2 IEC TR 62001-3:2016 IEC 2016 CONTENTS FOREWORD . 7 INTRODUCTION . 9 1 Scope 10 2 Normative references. 10 3 Harmonic interaction across
7、 converters 10 3.1 General . 10 3.2 Practical experience of problems . 11 3.3 Indicators of where harmonic interaction is significant 13 3.4 Interaction phenomena 14 3.5 Impact on AC filter design . 15 3.5.1 General . 15 3.5.2 AC side third harmonic . 15 3.5.3 Direct current on the AC side . 16 3.5.
8、4 Characteristic harmonics 16 3.6 General overview of modelling techniques . 16 3.6.1 General . 16 3.6.2 Time domain AC-DC-AC interaction model . 18 3.6.3 Frequency domain AC-DC-AC interaction model . 19 3.6.4 Frequency domain AC-DC interaction model . 19 3.6.5 Frequency domain current source model
9、19 3.7 Interaction modelling . 20 3.7.1 General . 20 3.7.2 Coupling between networks 20 3.7.3 Driving forces. 21 3.7.4 System harmonic impedances 22 3.8 Study methods 22 3.8.1 Frequency domain . 22 3.8.2 Time domain 22 3.9 Composite resonance 23 3.10 Core saturation instability 23 3.11 Particular co
10、nsiderations for back-to-back converters . 23 3.12 Issues to be considered in the design process . 24 3.12.1 General . 24 3.12.2 Fundamental frequency and load issues . 24 3.12.3 Negative phase sequence 25 3.12.4 Pre-existing harmonic distortion . 26 3.12.5 AC network impedance 27 3.12.6 Converter c
11、ontrol system 28 3.12.7 Combination with “classic“ harmonic generation . 29 3.12.8 Relative magnitude of pairs of low-order harmonics 29 3.12.9 Superposition of contributions 30 3.13 Parallel AC lines and converter transformer saturation . 30 3.14 Possible countermeasures . 32 3.14.1 AC (and/or DC)
12、filters . 32 3.14.2 DC control design 32 3.14.3 Operating restrictions and design protections . 33 PD IEC/TR 62001-3:2016IEC TR 62001-3:2016 IEC 2016 3 3.15 Recommendations for technical specifications . 33 3.15.1 General . 33 3.15.2 Specified design data . 33 3.15.3 Requirements regarding calculati
13、on techniques 34 4 AC network impedance modelling 35 4.1 General . 35 4.2 Implications of inaccurate definition of network impedance . 36 4.3 Considerations for network modelling 37 4.3.1 General . 37 4.3.2 Project life expectancy and robustness of data . 37 4.3.3 Network operating conditions . 37 4
14、.3.4 Network impedances for performance and rating calculations 38 4.3.5 Modelling of network components . 39 4.3.6 Representation of loads at harmonic frequencies 40 4.4 Network harmonic impedance envelopes . 40 4.5 Methods of determining envelope characteristics . 43 4.5.1 General . 43 4.5.2 Low o
15、rder harmonics 43 4.5.3 Mid-range and higher order harmonics . 44 4.5.4 Balancing of risk and benefit 45 4.5.5 Consideration of tolerances on harmonic bands 46 4.5.6 Two separate envelopes for one harmonic band . 48 4.5.7 Critical envelope parameters 49 4.5.8 Impedance envelopes for performance and
16、rating conditions . 49 4.6 Examples of the impact of different network impedance representations . 50 4.6.1 Effect of network envelope parameters on resultant distortion . 50 4.6.2 Effect of network minimum resistance on filter rating . 53 4.7 Interharmonic impedance assessment . 54 4.8 Measurement
17、of network harmonic impedance . 56 4.9 Conclusions 57 5 Pre-existing harmonics 57 5.1 General . 57 5.2 Modelling and measurement of pre-existing harmonic levels 58 5.3 Harmonic performance evaluation, methods and discussion . 60 5.3.1 General . 60 5.3.2 “Incremental“ harmonic performance evaluation
18、60 5.3.3 “Aggregate“ harmonic performance evaluation 61 5.3.4 Both “incremental“ and “aggregate“ performance evaluation . 62 5.3.5 “Incremental“ and “maximum magnification factor“ harmonic performance evaluation 63 5.4 Calculation of total harmonic performance indices 63 5.5 Harmonic rating evaluati
19、on 64 5.6 Difficulties with the voltage source/worst network model for rating 65 5.6.1 Background . 65 5.6.2 Illustration of the voltage source/worst network method . 66 5.7 Further possible calculation procedures for rating evaluation 68 5.7.1 Using measured levels of pre-existing distortion . 68 5
20、.7.2 Applying compatibility level voltage source at the filter busbar. 70 PD IEC/TR 62001-3:2016 4 IEC TR 62001-3:2016 IEC 2016 5.7.3 Limiting the filter bus harmonic voltage to a maximum level for filter rating (MLFR) 72 5.7.4 Limiting total source distortion to the defined THD 73 5.7.5 Limiting ha
21、rmonic order of pre-existing distortion 75 5.8 Conclusions 75 Annex A (informative) Location of worst-case network impedance . 76 Annex B (informative) Accuracy of network component modelling at harmonic frequencies . 79 B.1 General . 79 B.2 Loads . 79 B.3 Transformers 82 B.3.1 Transformer reactance
22、 . 82 B.3.2 Transformer resistance 82 B.4 Transmission lines 85 B.5 Synchronous machines . 87 B.6 Modelling of resistance in harmonic analysis software 88 Annex C (informative) Further guidance for the measurement of harmonic voltage distortion 91 Annex D (informative) Project experience of pre-exis
23、ting harmonic issues . 93 D.1 General . 93 D.2 Third harmonic overload of filters in a back-to-back system 93 D.3 Third and fifth harmonic overload of filters in a line transmission 94 D.4 Overload of a DC side 6thharmonic filter . 94 Annex E (informative) Worked examples showing impact of pre-exist
24、ing distortion 96 E.1 General . 96 E.2 Pre-existing distortions 97 E.2.1 Example 1 Illustration of magnification . 97 E.2.2 Impact of network impedance parameters . 101 Annex F (informative) Comparison of calculation methods 103 F.1 General . 103 F.2 Reference case Converter generated harmonics only
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