CISPR TR 18-1-2010 Radio interference characteristics of overhead power lines and high-voltage equipment - Part 1 Description of phenomena《架空电力线路和高压设备的无线电干扰特性设备 第1部分 现象说明TR》.pdf
《CISPR TR 18-1-2010 Radio interference characteristics of overhead power lines and high-voltage equipment - Part 1 Description of phenomena《架空电力线路和高压设备的无线电干扰特性设备 第1部分 现象说明TR》.pdf》由会员分享,可在线阅读,更多相关《CISPR TR 18-1-2010 Radio interference characteristics of overhead power lines and high-voltage equipment - Part 1 Description of phenomena《架空电力线路和高压设备的无线电干扰特性设备 第1部分 现象说明TR》.pdf(76页珍藏版)》请在麦多课文档分享上搜索。
1、 TR CISPR 18-1Edition 2.0 2010-06TECHNICAL REPORT Radio interference characteristics of overhead power lines and high-voltage equipment Part 1: Description of phenomena TRCISPR 18-1:2010(E)INTERNATIONAL SPECIAL COMMITTEE ON RADIO INTERFERENCE THIS PUBLICATION IS COPYRIGHT PROTECTED Copyright 2010 IE
2、C, Geneva, Switzerland All rights reserved. Unless otherwise specified, no part of this publication may be reproduced or utilized in any form or by any means, electronic or mechanical, including photocopying and microfilm, without permission in writing from either IEC or IECs member National Committ
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4、1 Geneva 20 Switzerland Email: inmailiec.ch Web: www.iec.ch About the IEC The International Electrotechnical Commission (IEC) is the leading global organization that prepares and publishes International Standards for all electrical, electronic and related technologies. About IEC publications The tec
5、hnical content of IEC publications is kept under constant review by the IEC. Please make sure that you have the latest edition, a corrigenda or an amendment might have been published. Catalogue of IEC publications: www.iec.ch/searchpub The IEC on-line Catalogue enables you to search by a variety of
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7、ilable on-line and also by email. Electropedia: www.electropedia.org The worlds leading online dictionary of electronic and electrical terms containing more than 20 000 terms and definitions in English and French, with equivalent terms in additional languages. Also known as the International Electro
8、technical Vocabulary online. Customer Service Centre: www.iec.ch/webstore/custserv If you wish to give us your feedback on this publication or need further assistance, please visit the Customer Service Centre FAQ or contact us: Email: csciec.ch Tel.: +41 22 919 02 11 Fax: +41 22 919 03 00 TR CISPR 1
9、8-1Edition 2.0 2010-06TECHNICAL REPORT Radio interference characteristics of overhead power lines and high-voltage equipment Part 1: Description of phenomena INTERNATIONAL ELECTROTECHNICAL COMMISSION XBICS 33.100.01 PRICE CODEISBN 978-2-88912-016-1INTERNATIONAL SPECIAL COMMITTEE ON RADIO INTERFERENC
10、E Registered trademark of the International Electrotechnical Commission 2 TR CISPR 18-1 IEC:2010(E) CONTENTS FOREWORD.5 INTRODUCTION.7 1 Scope.8 2 Normative references .8 3 Terms and definitions .8 4 Radio noise from power lines9 4.1 General .9 4.2 Physical aspects of radio noise .9 4.2.1 Mechanism
11、of formation of a noise field.9 4.2.2 Definition of noise12 4.2.3 Influence of external parameters .12 4.3 Main characteristics of the noise field resulting from conductor corona13 4.3.1 General .13 4.3.2 Frequency spectrum 13 4.3.3 Lateral profile 14 4.3.4 Statistical distribution with varying seas
12、ons and weather conditions 16 5 Effects of corona from conductors 17 5.1 Physical aspects of corona from conductors 17 5.1.1 General .17 5.1.2 Factors in corona generation .17 5.2 Methods of investigation of corona by cages and test lines19 5.2.1 General .19 5.2.2 Test cages.19 5.2.3 Test lines.20 5
13、.3 Methods of predetermination .20 5.3.1 General .20 5.3.2 Analytical methods 20 5.3.3 CIGR method 21 5.4 Catalogue of standard profiles.21 5.4.1 General .21 5.4.2 Principle of catalogue presentation21 6 Radio noise levels due to insulators, hardware and substation equipment (excluding bad contacts)
14、.23 6.1 Physical aspects of radio noise sources 23 6.1.1 General .23 6.1.2 Radio noise due to corona discharges at hardware23 6.1.3 Radio noise due to insulators 23 6.2 Correlation between radio noise voltage and the corresponding field strength for distributed and individual sources 25 6.2.1 Genera
15、l .25 6.2.2 Semi-empirical approach and formula25 6.2.3 Analytical methods 27 6.2.4 Example of application 28 6.3 Influence of ambient conditions .28 7 Sparking due to bad contacts .28 7.1 Physical aspects of the radio noise phenomenon 28 TR CISPR 18-1 IEC:2010(E) 3 7.2 Example of gap sources 29 8 S
16、pecial d.c. effects .30 8.1 General .30 8.2 Effects of corona from conductors .30 8.3 Radio noise due to insulators, hardware and substation equipment .34 8.4 Valve firing effects.34 9 Figures.36 Annex A (informative) Calculation of the voltage gradient at the surface of a conductor of an overhead l
17、ine .46 Annex B (informative) Catalogue of profiles of radio noise field due to conductor corona for certain types of power line .50 Annex C (informative) Summary of the catalogue of radio noise profiles according to the recommendations of the CISPR 66 Bibliography68 Figure 1 Typical lateral attenua
18、tion curves for high voltage lines, normalized to a lateral distance of y0= 15 m, distance in linear scale36 Figure 2 Typical lateral attenuation curves for high voltage lines, normalized to a direct distance of D0= 20 m, distance in logarithmic scale37 Figure 3 Examples of statistical yearly distri
19、butions of radio-noise levels recorded continuously under various overhead lines38 Figure 4 Examples of statistical yearly distributions of radio-noise levels recorded continuously under various overhead lines39 Figure 5 Example of statistical yearly distributions of radio-noise levels recorded cont
20、inuously under various overhead lines40 Figure 6 Examples of statistical yearly distributions of radio-noise levels recorded continuously under various overhead lines41 Figure 7 Equipotential lines for clean and dry insulation units 42 Figure 8 Determination of the magnetic field strength from a per
21、pendicular to a section of a line, at a distance x from the point of injection of noise current I 43 Figure 9 Longitudinal noise attenuation versus distance from noise source (from test results of various experiments frequencies around 0,5 MHz).43 Figure 10 Lateral profile of the radio noise field s
22、trength produced by distributed discrete sources on a 420 kV line of infinite length44 Figure 11 Example of relative strength of radio noise field as a function of frequency 45 Figure 12 Example of relative strength of radio noise field as a function of the distance from the line45 Figure B.1 Triang
23、ular formation (1) 51 Figure B.2 Triangular formation (2) 52 Figure B.3 Flat formation .53 Figure B.4 Arched formation 54 Figure B.5 Flat wide formation .55 Figure B.6 Vertical formation (480 (Rail) X 4B) 56 Figure B.7 Flat formation .57 Figure B.8 Flat formation .58 Figure B.9 Arched formation 59 F
24、igure B.10 Flat formation .60 Figure B.11 Arched formation 61 4 TR CISPR 18-1 IEC:2010(E) Figure B.12 Flat formation .62 Figure B.13 Vertical formation (480 (Cardinal) X 6B)63 Figure B.14 Typical frequency spectra for the radio noise fields of high voltage power lines .64 Figure B.15 Prediction of r
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