ASTM D6810-2013 red 6250 Standard Test Method for Measurement of Hindered Phenolic Antioxidant Content in Non-Zinc Turbine Oils by Linear Sweep Voltammetry《用线性扫描伏特计测定非锌涡轮机油中的受阻碍酚型抗.pdf
《ASTM D6810-2013 red 6250 Standard Test Method for Measurement of Hindered Phenolic Antioxidant Content in Non-Zinc Turbine Oils by Linear Sweep Voltammetry《用线性扫描伏特计测定非锌涡轮机油中的受阻碍酚型抗.pdf》由会员分享,可在线阅读,更多相关《ASTM D6810-2013 red 6250 Standard Test Method for Measurement of Hindered Phenolic Antioxidant Content in Non-Zinc Turbine Oils by Linear Sweep Voltammetry《用线性扫描伏特计测定非锌涡轮机油中的受阻碍酚型抗.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D6810 07D6810 13Standard Test Method forMeasurement of Hindered Phenolic Antioxidant Content inNon-Zinc Turbine Oils by Linear Sweep Voltammetry1This standard is issued under the fixed designation D6810; the number immediately following the designation indicates the year oforiginal adop
2、tion or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope Scope*1.1 This test method covers the voltammetric determination of hindere
3、d phenol antioxidants in new or in-service non-zincturbine oils in concentrations from 0.0075 weight % up to concentrations found in new oils by measuring the amount of currentflow at a specified voltage in the produced voltammogram.1.2 The values stated in SI units are to be regarded as standard. N
4、o other units of measurement are included in this standard.1.3 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safety and health practices and determine the applicabil
5、ity of regulatorylimitations prior to use.2. Referenced Documents2.1 ASTM Standards:2D1193 Specification for Reagent WaterD4057 Practice for Manual Sampling of Petroleum and Petroleum ProductsD4378 Practice for In-Service Monitoring of Mineral Turbine Oils for Steam, Gas, and Combined Cycle Turbines
6、D6224 Practice for In-Service Monitoring of Lubricating Oil for Auxiliary Power Plant EquipmentD6447 Test Method for Hydroperoxide Number of Aviation Turbine Fuels by Voltammetric AnalysisD6971 Test Method for Measurement of Hindered Phenolic andAromaticAmineAntioxidant Content in Non-zinc Turbine O
7、ilsby Linear Sweep Voltammetry3. Summary of Test Method3.1 Ameasured quantity of sample is dispensed into a vial containing a measured quantity of alcohol-based electrolyte solutionand containing a layer of sand.When the vial is shaken, the hindered phenol antioxidants and other solution soluble oil
8、 componentspresent in the sample are extracted into the solution and the remaining droplets suspended in the solution are agglomerated by thesand. The sand/droplet suspension is allowed to settle out and the hindered phenol antioxidants dissolved in the solution arequantified by voltammetric analysi
9、s. The results are calculated and reported as weight percent of antioxidant or as millimoles(mmol) of antioxidant per litre of sample for prepared and fresh oils and as a percent remaining antioxidant for used oils.3.2 Voltammetric analysis is a technique that applies electro-analytic methods when a
10、 sample to be analyzed is mixed with anelectrolyte and a solvent and placed within an electrolytic cell. Data is obtained by measuring the current passing through the cellas a function of the potential applied, and test results are based upon current, voltage and time relationships at the cell elect
11、rodes.The cell consists of a fluid container into which is mounted a small, easily polarized working electrode, and a large nonpolarizablereference electrode. The reference electrode should be massive relative to the working electrode so that its behavior remainsessentially constant with the passage
12、 of small current; that is, it remains unpolarized during the analysis period. Additionalelectrodes, auxiliary electrodes, can be added to the electrode system to eliminate the effects of resistive drop for high resistancesolutions. In performing a voltammetric analysis, the potential across the ele
13、ctrodes is varied linearly with time, and the resultingcurrent is recorded as a function of the potential. As the increasing voltage is applied to the prepared sample within the cell, thevarious additive species under investigation within the oil are caused to electrochemically oxidize. The data rec
14、orded during this1 This test method is under the jurisdiction of ASTM Committee D02 on Petroleum Products and Lubricants and is the direct responsibility of Subcommittee D02.09.0Con Oxidation of Turbine Oils.Current edition approved July 1, 2007May 1, 2013. Published August 2007May 2013. Originally
15、approved in 2002. Last previous edition approved in 20022007 asD6810-02.-07. DOI: 10.1520/D6810-07.10.1520/D6810-13.2 For referencedASTM standards, visit theASTM website, www.astm.org, or contactASTM Customer Service at serviceastm.org. For Annual Book of ASTM Standardsvolume information, refer to t
16、he standards Document Summary page on the ASTM website.This document is not an ASTM standard and is intended only to provide the user of an ASTM standard an indication of what changes have been made to the previous version. Becauseit may not be technically possible to adequately depict all changes a
17、ccurately, ASTM recommends that users consult prior editions as appropriate. In all cases only the current versionof the standard as published by ASTM is to be considered the official document.*A Summary of Changes section appears at the end of this standardCopyright ASTM International, 100 Barr Har
18、bor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1oxidation reaction can then be used to determine the remaining useful life of the oil type.Atypical current-potential curve producedduring the practice of the voltammetric test can be seen by reference to Fig. 1. Initially, the
19、applied potential produces anelectrochemical reaction having a rate so slow that virtually no current flows through the cell.As the voltage is increased, as shownin Fig. 1, the electro-active species (for example, substituted phenols) begin to oxidize at the working electrode surface, producingan an
20、odic rise in the current. As the potential is further increased, the decrease in the electro-active species concentration at theelectrode surface and the exponential increase of the oxidation rate lead to a maximum in the current-potential curve shown in Fig.1.4. Significance and Use4.1 The quantita
21、tive determination of hindered phenol antioxidants in a new turbine oil measures the amount of this materialthat has been added to the oil as protection against oxidation. Beside phenols, turbine oils can be formulated with other antioxidantssuch as amines which can extend the oil life. In used oil,
22、 the determination measures the amount of original (phenolic) antioxidantremaining after oxidation have reduced its initial concentration. This test method is not designed or intended to detect all of theantioxidant intermediates formed during the thermal and oxidative stressing of the oils, which a
23、re recognized as having somecontribution to the remaining useful life of the used or in-service oil. Nor does it measure the overall stability of an oil, which isdetermined by the total contribution of all species present. Before making final judgment on the remaining useful life of the usedoil, whi
24、ch might result in the replacement of the oil reservoir, it is advised to perform additional analytical techniques (inaccordance with Practices D6224 and D4378), having the capability of measuring remaining oxidative life of the used oil.4.1.1 This test method is applicable to non-zinc turbine oils.
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