ASTM G3-2014 Standard Practice for Conventions Applicable to Electrochemical Measurements in Corrosion Testing《腐蚀检验中使用的电化学测量适用常规的标准实践规程》.pdf
《ASTM G3-2014 Standard Practice for Conventions Applicable to Electrochemical Measurements in Corrosion Testing《腐蚀检验中使用的电化学测量适用常规的标准实践规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM G3-2014 Standard Practice for Conventions Applicable to Electrochemical Measurements in Corrosion Testing《腐蚀检验中使用的电化学测量适用常规的标准实践规程》.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: G3 14Standard Practice forConventions Applicable to Electrochemical Measurementsin Corrosion Testing1This standard is issued under the fixed designation G3; the number immediately following the designation indicates the year of originaladoption or, in the case of revision, the year of l
2、ast revision.Anumber in parentheses indicates the year of last reapproval.Asuperscriptepsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice covers conventions for reporting anddisplaying electrochemical corrosion data. Conventions forpotential, curr
3、ent density, electrochemical impedance andadmittance, as well as conventions for graphical presentationof such data are included.1.2 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard. See also 7.4.1.3 This standard does not purpor
4、t to address all of thesafety concerns, if any, 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:2IEEE/
5、ASTM SI 10 Standard for Use of the InternationalSystem of Units (SI) (the Modern Metric System)3. Significance and Use3.1 This practice provides guidance for reporting,displaying, and plotting electrochemical corrosion data andincludes recommendations on signs and conventions. Use ofthis practice wi
6、ll result in the reporting of electrochemicalcorrosion data in a standard format, facilitating comparisonbetween data developed at different laboratories or at differenttimes. The recommendations outlined in this standard may beutilized when recording and reporting corrosion data obtainedfrom electr
7、ochemical tests such as potentiostatic and potentio-dynamic polarization, polarization resistance, electrochemicalimpedance and admittance measurements, galvanic corrosion,and open circuit potential measurements.4. Sign Convention for Electrode Potential4.1 The Stockholm sign invariant convention is
8、 recom-mended for use in reporting the results of specimen potentialmeasurements in corrosion testing. In this convention, thepositive direction of electrode potential implies an increasinglyoxidizing condition at the electrode in question. The positivedirection has also been denoted as the noble di
9、rection becausethe corrosion potentials of most noble metals, such as gold, aremore positive than the nonpassive base metals. On the otherhand, the negative direction, often called the active direction, isassociated with reduction and consequently the corrosionpotentials of active metals, such as ma
10、gnesium. This conven-tion was adopted unanimously by the 1953 International Unionof Pure and Applied Chemistry as the standard for electrodepotential (1).34.2 In the context of a specimen electrode of unknownpotential in an aqueous electrolyte, consider the circuit shownin Fig. 1 with a reference el
11、ectrode connected to the groundterminal of an electrometer. If the electrometer reads on scalewhen the polarity switch is negative, the specimen electrodepotential is negative (relative to the reference electrode).Conversely, if the electrometer reads on scale when polarity ispositive, the specimen
12、potential is positive. On the other hand,if the specimen electrode is connected to the ground terminal,the potential will be positive if the meter is on scale when thepolarity switch is negative, and vice versa.NOTE 1In cases where the polarity of a measuring instrument is indoubt, a simple verifica
13、tion test can be performed as follows: connect themeasuring instrument to a dry cell with the lead previously on thereference electrode to the negative battery terminal and the lead previouslyon the specimen electrode to the positive battery terminal. Set the rangeswitch to accommodate the dry cell
14、voltage. The meter deflection will nowshow the direction of positive potential.Also, the corrosion potential of magnesium or zinc should be negativeina1N NaCl solution if measured against a saturated standard calomelelectrode (SCE).1This practice is under the jurisdiction of ASTM Committee G01 on Co
15、rrosionof Metals and is the direct responsibility of Subcommittee G01.11 on Electrochemi-cal Measurements in Corrosion Testing.Current edition approved Dec. 15, 2014. Published December 2014. Originallyapproved in 1968. Last previous edition approved in 2013 as G313. DOI:10.1520/G0003-14.2For refere
16、nced ASTM standards, visit the ASTM website, www.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.3The boldface numbers in parentheses refer to a list of references at th
17、e end ofthis standard.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States15. Sign Convention for Electrode Potential TemperatureCoefficients5.1 There are two types of temperature coefficients ofelectrode potential: isothermal temperature
18、coefficients and thethermal coefficients. The sign convention recommended forboth types of temperature coefficients is that the temperaturecoefficient is positive when an increase in temperature pro-duces an increase (that is, it becomes more positive) in theelectrode potential. Likewise, the second
19、 temperature coeffi-cient is positive when an increase in temperature produces anincrease (that is, it becomes more positive) in the first tem-perature coefficient.6. Sign Convention for Current and Current Density6.1 The sign convention in which anodic currents andcurrent densities are considered p
20、ositive and cathodic currentsand current densities are negative is recommended. When thepotential is plotted against the logarithm of the current density,only the absolute values of the current density can be plotted.In such plots, the values which are cathodic should be clearlydifferentiated from t
21、he anodic values if both are present.7. Conventions for Displaying Polarization Data7.1 Sign ConventionsThe standard mathematical practicefor plotting graphs is recommended for displaying electro-chemical corrosion data. In this practice, positive values areplotted above the origin on the ordinate a
22、xis and to the right ofthe origin on the abscissa axis. In logarithmic plots, theabscissa value increases from left to right and the ordinatevalue increases from bottom to top.7.2 Current Density-Potential PlotsA uniform conventionis recommended for plotting current density-potential data,namely, pl
23、ot current density along the abscissa and potentialalong the ordinate. In current density potential plots, thecurrent density may be plotted on linear or logarithmic axes. Ingeneral, logarithmic plots are better suited to incorporation ofwide ranges of current density data and for demonstrating Tafe
24、lrelationships. Linear plots are recommended for studies inwhich the current density or potential range is small, or in caseswhere the region in which the current density changes fromanodic to cathodic is important. Linear plots are also used forthe determination of the polarization resistance Rp, w
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