ASTM D3612-2002 Standard Test Method for Analysis of Gases Dissolved in Electrical Insulating Oil by Gas Chromatography《用气体色谱分离法分析电绝缘油中溶解的气体成分的标准试验方法》.pdf
《ASTM D3612-2002 Standard Test Method for Analysis of Gases Dissolved in Electrical Insulating Oil by Gas Chromatography《用气体色谱分离法分析电绝缘油中溶解的气体成分的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM D3612-2002 Standard Test Method for Analysis of Gases Dissolved in Electrical Insulating Oil by Gas Chromatography《用气体色谱分离法分析电绝缘油中溶解的气体成分的标准试验方法》.pdf(22页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 3612 02Standard Test Method forAnalysis of Gases Dissolved in Electrical Insulating Oil byGas Chromatography1This standard is issued under the fixed designation D 3612; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision,
2、 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 covers three procedures for extractionand measurement of gases dissolved in electrical
3、insulating oilhaving a viscosity of 20 cSt (100 SUS) or less at 40C (104F),and the identification and determination of the individualcomponent gases extracted. Other methods have been used toperform this analysis.1.2 The individual component gases that may be identifiedand determined include:Hydroge
4、nH2OxygenO2NitrogenN2Carbon monoxideCOCarbon dioxideCO2MethaneCH4EthaneC2H6EthyleneC2H4AcetyleneC2H2PropaneC3H8PropyleneC3H61.3 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appr
5、o-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use. For specificwarning statements see 6.1.8, 30.2.2 and 30.3.1.2. Referenced Documents2.1 ASTM Standards:D 2140 Test Method for Carbon-Type Composition of In-sulating Oils of Petroleum Origin2D
6、 2300 Test Method for Gassing of Insulating Oils UnderElectrical Stress and Ionization Modified Pirelli Method2D 2779 Test Method for Estimation of Solubility of Gasesin Petroleum Liquids3D 2780 Test Method for Solubility of Fixed Gases inLiquids3D 3613 Test Methods of Sampling Electrical Insulating
7、 Oilsfor Gas Analysis and Determination of Water Content2D 4051 Practice for Preparation of Low-Pressure GasBlends3E 260 Practice for Packed Column Gas Chromatography42.2 IEEE Standard:C 57.104 Guide for the Interpretation of Gases Generated inOil-Immersed Transformers52.3 IEC Standard:Publication N
8、o. 567 Guide for the Sampling of Gases andof Oil from Oil-Filled Electrical Equipment and for theAnalysis of Free and Dissolved Gases63. Terminology3.1 Definitions of Terms Specific to This Standard:3.1.1 gas content of oil by volumein Method A, the totalvolume of gases, corrected to 760 torr (101.3
9、25 kPa) and 0C,contained in a given volume of oil, expressed as a percentage.In Methods B and C, the sum of the individual gas concentra-tions corrected to 760 torr (101.325 kPa) and 0C, expressed inpercent or parts per million.3.1.2 headspacea volume of gas phase in contact with avolume of oil in a
10、 closed vessel. The vessel is a headspace vialof 20-mL nominal capacity.3.1.2.1 DiscussionOther vessel volumes may also beused, but the analytical performance may be somewhat differ-ent than that specified in Method C.3.1.3 parts per million (ppm) by volume of (specific gas) inoilthe volume of that
11、gas corrected to 760 torr (101.325 kPa)and 0C, contained in 106volume of oil.3.1.4 sparging, vagitating the liquid sample using a gas tostrip other gases free.3.1.5 volume concentration of (specific gas) in the gassamplethe volume of the specific gas contained in a givenvolume of the gas sample at t
12、he same temperature and pressure1This test method is under the jurisdiction of ASTM Committee D27 onElectrical Insulating Liquids and Gases and is the direct responsibility of Subcom-mittee D27.03 on Analytical Tests.Current edition approved Oct. 10, 2002. Published December 2002. Originallyapproved
13、 in 1977. Last previous edition approved in 2001 as D 3612 01.2Annual Book of ASTM Standards, Vol 10.03.3Annual Book of ASTM Standards, Vol 05.02.4Annual Book of ASTM Standards, Vol 14.02.5Available from IEEE, 345 E. 47th St., New York, NY 10017.6Available from IEC.1Copyright ASTM International, 100
14、 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.(as the measured total volume), expressed either as a percent-age or in parts per million.4. Summary of Test Method4.1 Method ADissolved gases are extracted from a sampleof oil by introduction of the oil sample into a p
15、re-evacuatedknown volume. The evolved gases are compressed to atmo-spheric pressure and the total volume measured.4.2 Method BDissolved gases are extracted from a sampleof oil by sparging the oil with the carrier gas on a strippercolumn containing a high surface area bead.4.3 Method CMethod C consis
16、ts of bringing an oil samplein contact with a gas phase (headspace) in a closed vesselpurged with argon. The dissolved gases contained in the oil arethen equilibrated in the two phases in contact under controlledconditions (in accordance with Henrys law). At equilibrium,the headspace is overpressuri
17、zed with argon and then thecontent of a loop is filled by the depressurization of theheadspace against the ambient atmospheric pressure. The gasescontained in the loop are then introduced into a gas chromato-graph.4.4 There may be some differences in the limits of detectionand precision and bias bet
18、ween Methods A, B, and C forvarious gases.4.5 Aportion of the extracted gases (MethodA) or all of theextracted gases (Method B) or a portion of the headspace gases(Method C) is introduced into a gas chromatograph. Calibra-tion curves are used in Method C to establish the concentrationof each species
19、. The composition of the sample is calculatedfrom its chromatogram by comparing the area of the peak ofeach component with the area of the peak of the samecomponent on a reference chromatogram made on a standardmixture of known composition.5. Significance and Use5.1 Oil and oil-immersed electrical i
20、nsulation materials maydecompose under the influence of thermal and electricalstresses, and in doing so, generate gaseous decompositionproducts of varying composition which dissolve in the oil. Thenature and amount of the individual component gases that maybe recovered and analyzed may be indicative
21、 of the type anddegree of the abnormality responsible for the gas generation.The rate of gas generation and changes in concentration ofspecific gases over time are also used to evaluate the conditionof the electric apparatus.NOTE 1Guidelines for the interpretation of gas-in-oil data are given inIEEE
22、 C 57.104.6. Apparatus6.1 Apparatus7of the type shown in Fig. 1 or Fig. 2 issuitable for use with up to 50-mL samples of oil and consistsof the following components:NOTE 2This sample size has been found to be sufficient for most oils.However, oil that has had only limited exposure to air may contain
23、 muchsmaller amounts of nitrogen and oxygen. For these oils it may be desirableto increase the size of the sample and the extraction apparatus.NOTE 3Alternative apparatus designs including the use of a Toeplerpump have also been found successful.6.1.1 Polytetrafluoroethylene (PTFE) Tubing, narrow-bo
24、re,terminated with a Luer-Lock fitted glass syringe, and leading toa solid plug, three-way, high-vacuum stopcock.6.1.2 Degassing Flask, with a glass inlet tube, of sufficientvolume to contain up to 50 mL of oil below the inlet tube,capable of being evacuated through a vacuum pump, contain-ing a PTFE
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