ASTM D2668-2007 Standard Test Method for 2 6-di-tert-Butyl- p-Cresol and 2 6-di-tert-Butyl Phenol in Electrical Insulating Oil by Infrared Absorption《用红外线吸收法测定电绝缘油中2 6-二叔丁基对甲酚和2 6-.pdf
《ASTM D2668-2007 Standard Test Method for 2 6-di-tert-Butyl- p-Cresol and 2 6-di-tert-Butyl Phenol in Electrical Insulating Oil by Infrared Absorption《用红外线吸收法测定电绝缘油中2 6-二叔丁基对甲酚和2 6-.pdf》由会员分享,可在线阅读,更多相关《ASTM D2668-2007 Standard Test Method for 2 6-di-tert-Butyl- p-Cresol and 2 6-di-tert-Butyl Phenol in Electrical Insulating Oil by Infrared Absorption《用红外线吸收法测定电绝缘油中2 6-二叔丁基对甲酚和2 6-.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 2668 07Standard Test Method for2,6-di-tert-Butyl-p-Cresol and 2,6-di-tert-Butyl Phenol in ElectricalInsulating Oil by Infrared Absorption1This standard is issued under the fixed designation D 2668; the number immediately following the designation indicates the year oforiginal adoption
2、 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. Scope*1.1 This test method covers the determination of the weightpercent of 2,6-dite
3、rtiary-butyl paracresol (DBPC) and 2,6-ditertiary-butyl phenol (DBP) in new or used electrical insu-lating oil in concentrations up to 0.5 % by measuring itsabsorbance at the specified wavelengths in the infrared spec-trum.1.2 This standard does not purport to address all of thesafety concerns, if a
4、ny, associated 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.2. Referenced Documents2.1 ASTM Standards:2D 923 Practices for Sampling Electrical Insulatin
5、g LiquidsD 2144 Practices for Examination of Electrical InsulatingOils by Infrared AbsorptionD 3487 Specification for Mineral Insulating Oil Used inElectrical Apparatus3. Significance and Use3.1 The quantitative determination of 2,6-ditertiary-butylparacresol and 2,6-ditertiary-butyl phenol in a new
6、 electricalinsulating oil measures the amount of this material that hasbeen added to the oil as protection against oxidation. In a usedoil it measures the amount remaining after oxidation hasreduced its concentration. The test is also suitable for manu-facturing control and specification acceptance.
7、3.2 When an infrared spectrum is obtained of an electricalinsulating oil inhibited with either of these compounds there isan increase in absorbance of the spectrum at several wave-lengths (or wavenumbers). 2,6 ditertiary-butyl paracresol pro-duces pronounced increases in absorbance at 2.72 m (3650cm
8、1), and 11.63 m (860 cm1). 2,6 ditertiary-butyl phenolproduces pronounced increases in absorbance at 2.72 m (3650cm1) and 13.42 m (745 cm1).3.3 When making this test on other than a highly oxidizedoil or when using a double-beam spectrophotometer, it hasbeen found convenient to obtain the spectrum b
9、etween 2.5 m(4000 cm1) and 2.9 m (3450 cm1) because the instrument iscompensated for the presence of moisture and the band is notinfluenced by intermolecular forces (associations). However,when testing a highly oxidized oil or when using a single-beaminstrument better results may be obtained if the
10、scan is madebetween 10.90 m (918 cm1) and 14.00 m (714 cm1).3.4 Increased absorption at 11.63 m (860 cm1) or 13.42m (745 cm1) or both, will identify the inhibitor as 2,6-ditertiary-butyl paracresol or 2,6-ditertiary-butyl phenol re-spectively (Note 1).NOTE 1The absorbance at 745 cm1for 2,6-ditertiar
11、y-butyl phenoland at 860 cm1for 2,6-ditertiary-butyl paracresol for equal concentra-tions will be in the approximate ratio of 2.6 to 1.4. Apparatus4.1 With equipment description referring to compliance, theequipment shall be in accordance with Section 6 of TestMethods D 2144. Accordingly, the use of
12、 Fourier-transformrapid scan infrared (FTIR) spectrophotometers is permitted byreference to that test method.5. Sampling5.1 Obtain the sample in accordance with Practices D 923.6. Calibration and Standardization6.1 When the manufacturer of the oil is known and the baseoil is available, use it to pre
13、pare the standards. For oils ofunknown origin, use base oils which meet the requirements ofSpecification D 3487. Some base oils may provide a bettermatch than others and therefore it is desirable to have severalavailable.6.2 Prepare standards containing between 0.05 and 0.4weight percent of 2,6-dite
14、rtiary-butyl paracresol or 2,6-ditertiary-butyl phenol dissolved in an uninhibited base oil.Alternatively, the range of prepared standards may be in-creased to 0.5 weight percent if certain oils to be investigated1This test method is under the jurisdiction of ASTM Committee D27 onElectrical Insulati
15、ng Liquids and Gases and is the direct responsibility of Subcom-mittee D27.03 on Analytical Tests.Current edition approved Dec. 1, 2007. Published January 2008. Originallyapproved in 1967. Last previous edition approved in 2002 as D 2668 02e1.2For referenced ASTM standards, visit the ASTM website, w
16、ww.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1*A Summary of Changes section appears at the end of this standard.Copyright ASTM International, 100 Barr Harbor Drive
17、, PO Box C700, West Conshohocken, PA 19428-2959, United States.are believed to contain greater amounts of inhibitor. Obtain aspectrum, at the desired band, of each standard in accordancewith Test Methods D 2144. Cells with a standard path length of0.3 to 1.0 mm are recommended. Other path lengths ma
18、y befound more suitable for different instruments or particularwave lengths. Other sample path lengths may be used providedthe instrument sensitivity can be adjusted to compensate forthis change. The dip in the curve for the inhibited oil shouldprovide a distinctive increase in the absorbance at the
19、 criticalwavelength or frequency (Note 3). Repeat the procedure oneach of the standards making at least three scans on eachstandard. (See Note 2) Record all settings of the spectropho-tometer used in obtaining the respective spectra (Note 4).NOTE 2The current method precision is based on manually de
20、ter-mined results where exactly three scans were determined for eachstandard. Newer instruments are capable of automatically performingscans much more rapidly, which can reduce the variability of resultsdetermined. In such cases, it is recommended that the number of scans beincreased to statisticall
21、y compensate for any outliers. Laboratories willneed to determine the minimum number of scans that should be used intheir instrument standardization and test specimen analyses to satisfy theirtesting needs.NOTE 3Where desired, a chart having a non-linear wavelength scaleas the abscissa may be used.N
22、OTE 4In making these tests, transmission-scaled charts may beused, but in this case special rulers and nomographs or logarithmic tableswill be necessary for determining the intensity measurements. Alterna-tively, instrument software capable of recording all settings of thespectrophotometer used in o
23、btaining the respective spectra, may be used.6.3 The quantitative determination is made from the follow-ing equation which is derived from Beers law:Absorbance 5 A 2 Aowhere:Ao= absorbance units of base oil, andA = absorbance units of oil containing 2,6-ditertiary-butylparacresol or 2,6-ditertiary-b
24、utyl phenol.6.4 Manual Plotting Routine for Generating CalibrationCurveDesignate the point of maximum absorbance of theabsorbance band as Point A. Draw a tangent to the spectrumcurve and a second line through Point A perpendicular to theabsorbance lines, as shown in Fig. 1. Designate the intersectio
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