IEEE 1783-2009 en Guide for Test Methods and Procedures to Evaluate the Electrical Performance of Insulators in Freezing Conditions《评价冷冻条件下绝缘子电气性能的试验方法和规程指南》.pdf
《IEEE 1783-2009 en Guide for Test Methods and Procedures to Evaluate the Electrical Performance of Insulators in Freezing Conditions《评价冷冻条件下绝缘子电气性能的试验方法和规程指南》.pdf》由会员分享,可在线阅读,更多相关《IEEE 1783-2009 en Guide for Test Methods and Procedures to Evaluate the Electrical Performance of Insulators in Freezing Conditions《评价冷冻条件下绝缘子电气性能的试验方法和规程指南》.pdf(42页珍藏版)》请在麦多课文档分享上搜索。
1、IEEE Std 1783-2009IEEE Guide for Test Methods andProcedures to Evaluate the ElectricalPerformance of Insulators in FreezingConditionsIEEE Dielectrics and Electrical Insulation SocietySponsored by theStandards CommitteeIEEE3 Park Avenue New York, NY 10016-5997, USA 17 October 20091783TMIEEE Std 1783-
2、2009 IEEE Guide for Test Methods and Procedures to Evaluate the Electrical Performance of Insulators in Freezing Conditions Sponsor Standards Committee of the IEEE Dielectrics and Electrical Insulation Society Approved 18 June 2009 IEEE-SA Standards Board Acknowledgments Table 1 adapted and Figure B
3、.1, Figure B.2, Figure B.3, Figure B.4 reprinted from “Insulator icing test methods and proceduresA position paper prepared by the IEEE Task Force on Insulator Icing Test Methods,” 2003 B45. Figure 1 and Table 4 adapted from IEEE Std 4-1995. Figure 2 reprinted from “Investigation of flashover perfor
4、mance of snow-covered breakers,” 2007 B73. Figure B.5 reprinted with permission from CIGR, “Influence of ice and snow on the flashover performance of outdoor insulatorsPart II: Effects of snow,” 2000 B11. Abstract: Since 1999, test methods for freezing conditions, including ice and snow, have been r
5、efined by the IEEE Dielectrics and Electrical Insulation Society and IEEE Power and Energy Society Task Forces on insulator icing. In this guide, the discussion is consolidated, and specific, appropriate, and reproducible test methods for selecting adequate insulators are recommended. Test methods f
6、or substation and line insulators at distribution and transmission voltage levels are included in the scope. Special measures to reproduce the environmental and insulator parameters that influence the risk of flashover in freezing conditions are detailed in the test methods. Statistical methods are
7、also recommended to assist in the insulator selection process. Keywords: cold fog, contamination, high-voltage testing, ice, icing, insulators, salt fog, snow The Institute of Electrical and Electronics Engineers, Inc. 3 Park Avenue, New York, NY 10016-5997, USA Copyright 2009 by the Institute of El
8、ectrical and Electronics Engineers, Inc. All rights reserved. Published 17 October 2009. Printed in the United States of America. IEEE is a registered trademark in the U.S. Patent +1 978 750 8400. Permission to photocopy portions of any individual standard for educational classroom use can also be o
9、btained through the Copyright Clearance Center. iv Copyright 2009 IEEE. All rights reserved. Introduction This introduction is not part of IEEE Std 1783-2009 IEEE Guide for Test Methods and Procedures to Evaluate the Electrical Performance of Insulators in Freezing Conditions. In many cold climate r
10、egions, overhead transmission and distribution lines as well as their substation equipment are subjected to ice and snow accumulations that may be contaminated in the same ways that affect natural rain. Insulator standards presently call for a wet test at a controlled rain rate but do not recommend
11、icing test methods. While the electrical withstand in a wet test is well above typical service voltage stress, this may not be the case in cold conditions. Certain sequences of ice or snow accumulation and melting may cause a drastic decrease in electrical insulation strength. Especially of highly s
12、tressed, extra high-voltage and ultra high-voltage insulators, this can lead to insulator flashovers at normal service voltage and power outages. Flashover problems on ice- and snow-covered insulators have been reported in North America and many countries including China, Czech Republic, England, Fi
13、nland, Japan, Norway, Switzerland, Sweden, and the former Yugoslavia. The industry need for insulation coordination in the affected countries was a source of motivation to establish an IEEE Task Force on Insulator Icing Test Methods in 1999. In 2003, this Task Force recommended icing test methods an
14、d procedures in “Insulator icing test methods and proceduresA position paper prepared by the IEEE Task Force on Insulator Icing Test Methods,” B45.aTheir scope covered all insulators, including ceramic and nonceramic types, because both have similar problems in the presence of ice. Test parameters w
15、ere adapted from IEEE Std 4, IEC 60060, IEC 60129, and IEC 60507 in a joint development effort with a CIGRE Ice and Snow Task Force.bAfter additional ice and snow testing experience using the Task Force recommendations led to positive industry response, it is now reasonable to formally endorse the t
16、est methods as an IEEE standard. Notice to users Laws and regulations Users of these documents should consult all applicable laws and regulations. Compliance with the provisions of this standard does not imply compliance to any applicable regulatory requirements. Implementers of the standard are res
17、ponsible for observing or referring to the applicable regulatory requirements. IEEE does not, by the publication of its standards, intend to urge action that is not in compliance with applicable laws, and these documents may not be construed as doing so. Copyrights This document is copyrighted by th
18、e IEEE. It is made available for a wide variety of both public and private uses. These include both use, by reference, in laws and regulations, and use in private self-regulation, standardization, and the promotion of engineering practices and methods. By making this document available for use and a
19、doption by public authorities and private users, the IEEE does not waive any rights in copyright to this document. aThe numbers in brackets correspond to those of the bibliography in Annex A. bInformation on references can be found in Clause 2. v Copyright 2009 IEEE. All rights reserved. Updating of
20、 IEEE documents Users of IEEE standards should be aware that these documents may be superseded at any time by the issuance of new editions or may be amended from time to time through the issuance of amendments, corrigenda, or errata. An official IEEE document at any point in time consists of the cur
21、rent edition of the document together with any amendments, corrigenda, or errata then in effect. In order to determine whether a given document is the current edition and whether it has been amended through the issuance of amendments, corrigenda, or errata, visit the IEEE Standards Association web s
22、ite at http:/ieeexplore.ieee.org/xpl/standards.jsp, or contact the IEEE at the address listed previously. For more information about the IEEE Standards Association or the IEEE standards development process, visit the IEEE-SA web site at http:/standards.ieee.org. Errata Errata, if any, for this and a
23、ll other standards can be accessed at the following URL: http:/standards.ieee.org/reading/ieee/updates/errata/index.html. Users are encouraged to check this URL for errata periodically. Interpretations Current interpretations can be accessed at the following URL: http:/standards.ieee.org/reading/iee
24、e/interp/ index.html. Patents Attention is called to the possibility that implementation of this guide may require use of subject matter covered by patent rights. By publication of this guide, no position is taken with respect to the existence or validity of any patent rights in connection therewith
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