ASTM D2275-2001 Standard Test Method for Voltage Endurance of Solid Electrical Insulating Materials Subjected to Partial Discharges (Corona) on the Surface《固体电绝缘材料表面对局部放电(电晕)的耐电压性标.pdf
《ASTM D2275-2001 Standard Test Method for Voltage Endurance of Solid Electrical Insulating Materials Subjected to Partial Discharges (Corona) on the Surface《固体电绝缘材料表面对局部放电(电晕)的耐电压性标.pdf》由会员分享,可在线阅读,更多相关《ASTM D2275-2001 Standard Test Method for Voltage Endurance of Solid Electrical Insulating Materials Subjected to Partial Discharges (Corona) on the Surface《固体电绝缘材料表面对局部放电(电晕)的耐电压性标.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 2275 01An American National StandardStandard Test Method forVoltage Endurance of Solid Electrical Insulating MaterialsSubjected to Partial Discharges (Corona) on the Surface1This standard is issued under the fixed designation D 2275; the number immediately following the designation in
2、dicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method differentiates among s
3、olid electricalinsulating materials for use at commercial power frequencieswith respect to their voltage endurance under the action ofcorona (see Note 1). In general, this test method is moremeaningful for rating materials with respect to their resistanceto prolonged a-c stress under corona conditio
4、ns than is dielec-tric strength.NOTE 1The term “corona” is used almost exclusively in this testmethod instead of “partial discharge”, because it is a visible glow at theedge of the smaller electrode. This is a difference in location, not in kind.Partial discharges also occur at the edges of electrod
5、es, and in generalcorona describes an electrical discharge irrespective of its location.1.2 The values stated in SI units are to be regarded as thestandard. The values given in parentheses are for informationonly.1.3 This standard does not purport to address all of thesafety concerns, if any, associ
6、ated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use. For specific hazardstatements, see Section 7.2. Referenced Documents2.1 ASTM Standards:D 149 Test Met
7、hod for Dielectric Breakdown Voltage andDielectric Strength of Solid Electrical Insulating Materialsat Commercial Power Frequencies2D 1711 Terminology Relating to Electrical Insulation2D 1868 Test Method for Detection and Measurement ofPartial Discharge (Corona) Pulses in Evaluation of Insu-lation S
8、ystems2D 5032 Practice for Maintaining Constant Relative Humid-ity by Means of Aqueous Glycerin Solutions3D 6054 Practice for Conditioning Electrical Insulating Ma-terials for Testing4E41 Terminology Relating to Conditioning4E 104 Practice for Maintaining Constant Relative Humidityby Means of Aqueou
9、s Solutions5E 171 Specification for Standard Atmospheres for Condi-tioning and Testing Flexible Barrier Materials62.2 Special Technical Publications:Symposium on Corona, STP 198, ASTM, 1956.7Corona Measurement and Interpretation, Engineering Di-electrics, Vol 1, STP 669, ASTM, 1979.72.3 Internationa
10、l Electrotechnical Commission (IEC)Documents:IEC Publication 60343 Recommended test methods for de-termining the relative resistance of insulating materials tobreakdown by surface discharges82.4 Institute of Electrical and Electronic Engineers (IEEE)Document:IEEE SS 11205-TBR Guide for the Statistic
11、al Analysis ofElectrical Insulation Voltage Endurance Data, 198793. Terminology3.1 For definitions of other terms used in this standard, referto Terminology D 1711 and Test Method D 1868.3.2 Definitions of Terms Specific to This Standard:3.2.1 threshold voltageThat voltage below which failurewill no
12、t occur under the test conditions irrespective of theduration of the test.3.2.1.1 DiscussionDemonstration of a threshold is diffi-cult when the slope of a volt-time curve is small, and failuretimes are long. High frequency tests are often an aid in1This test method is under the jurisdiction of ASTM
13、Committee D09 onElectrical and Electronic Insulating Materials and is the direct responsibility ofSubcommittee D09.12 on Electrical Tests.Current edition approved March 10, 2001. Published May 2001. Originallypublished as D 2275 64 T. Last previous edition D 2275 95.2Annual Book of ASTM Standards, V
14、ol 10.01.3Annual Book of ASTM Standards, Vol 10.02.4Annual Book of ASTM Standards, Vol 14.04.5Annual Boof of ASTM Standards, Vol 11.03.6Annual Book of ASTM Standards, Vol 15.09.7Available from ASTM Headquarters, 1916 Race St., Philadelphia, PA 19103.8Available from American National Standards Instit
15、ute, 11 West 42nd St., 13thFloor, New York, NY 10036.9Available from IEEE Headquarters, 345 East 47th St., New York, NY 10017.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.demonstration, by reducing the time required to reach anece
16、ssary number of voltage cycles.3.2.2 voltage endurance, nThe time that an insulatingmaterial can withstand a prolonged alternating voltage stressunder the action of surface corona.3.2.3 voltage stress-time curve, nA plot of the logarithmof the mean or median time to failure of a material againstvolt
17、age stress (or the logarithm of voltage stress) for aparticular set of test conditions.3.2.3.1 DiscussionThe plot is the quantitative depiction ofthe voltage stress endurance over a range of voltage stress forthe conditions of test, and for the thickness tested. The curvesof a material obtained at t
18、wo thicknesses are different.3.2.4 volt-time curve, nA plot of the logarithm of themean or median time to failure of a material against voltage (orthe logarithm of voltage) for a particular set of test conditions.3.2.4.1 DiscussionThe plot is the quantitative depiction ofthe voltage endurance over a
19、 range of voltage for the condi-tions of the test, which includes the particular thickness tested.4. Summary of Test Method4.1 In this test method, voltage sufficient to produce coronais applied to the specimen until failure occurs. Comparativevoltage endurance is the relative time to failure of two
20、 differentmaterials of the same thickness when tested with similarelectrodes at the same voltage. Comparison is also possible interms of the magnitude of voltage stress (kV/mm or kV/in.)required to produce failure in a specified number of hours.4.2 Surface corona exists in the electrically stressed
21、gaswhere electrodes are near insulation surfaces.4.3 As with most tests at constant stress, there may be alarge dispersion of times to failure for a given sample. Themedian time of nine specimens (time of fifth failure) may beused as the failure time for the sample. This removes thenecessity of wait
22、ing for the last few to fail. The mean may alsobe determined statistically (see IEEE SS 11205-TBR for addi-tional information).4.4 Under the proper conditions, the test may be acceleratedby increasing the frequency of the applied voltage (seeAppendix X1).4.5 Standardized test conditions and conditio
23、ning prior totesting are important. In particular, tests with specified air flowat both low and moderate humidities may be informative. Inspecial cases, where a service condition is thought to alter thecorona endurance, this factor should be introduced as part ofthe test and reported. Such condition
24、s might include elonga-tion, elevated temperature, high humidity, other gases besidesair, pollution, etc.4.6 Additional information from the test may be obtained ifcorona-voltage levels and corona intensity are measured at thestart of the test and monitored at various stages of deteriorationof the i
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