ASTM G82-1998(2009) Standard Guide for Development and Use of a Galvanic Series for Predicting Galvanic Corrosion Performance《预测电流腐蚀特性用电流系列的制定和使用的标准指南》.pdf
《ASTM G82-1998(2009) Standard Guide for Development and Use of a Galvanic Series for Predicting Galvanic Corrosion Performance《预测电流腐蚀特性用电流系列的制定和使用的标准指南》.pdf》由会员分享,可在线阅读,更多相关《ASTM G82-1998(2009) Standard Guide for Development and Use of a Galvanic Series for Predicting Galvanic Corrosion Performance《预测电流腐蚀特性用电流系列的制定和使用的标准指南》.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: G 82 98 (Reapproved 2009)Standard Guide forDevelopment and Use of a Galvanic Series for PredictingGalvanic Corrosion Performance1This standard is issued under the fixed designation G 82; the number immediately following the designation indicates the year of originaladoption or, in the c
2、ase of revision, the year of last 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 guide covers the development of a galvanic seriesand its subsequent use as a method of p
3、redicting the effect thatone metal can have upon another metal can when they are inelectrical contact while immersed in an electrolyte. Sugges-tions for avoiding known pitfalls are included.1.2 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in
4、 thisstandard.1.3 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 appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.
5、Specific precau-tionary statements are given in Section 5.2. Referenced Documents2.1 ASTM Standards:2G3 Practice for ConventionsApplicable to ElectrochemicalMeasurements in Corrosion TestingG15 Terminology Relating to Corrosion and CorrosionTestingG16 Guide forApplying Statistics toAnalysis of Corro
6、sionDataG71 Guide for Conducting and Evaluating Galvanic Cor-rosion Tests in Electrolytes3. Terminology3.1 Definitions of terms used in this guide are from Termi-nology G15.3.2 activethe negative (decreasingly oxidizing) directionof electrode potential.3.3 corrosion potentialthe potential of a corro
7、ding surfacein an electrolyte relative to a reference electrode measuredunder open-circuit conditions.3.4 galvanic corrosionaccelerated corrosion of a metalbecause of an electrical contact with a more noble metal ornonmetallic conductor in a corrosive electrolyte.3.5 galvanic seriesa list of metals
8、and alloys arrangedaccording to their relative corrosion potentials in a givenenvironment.3.6 noblethe positive (increasingly oxidizing) direction ofelectrode potential.3.7 passivethe state of the metal surface characterized bylow corrosion rates in a potential region that is stronglyoxidizing for t
9、he metal.3.8 polarizationthe change from the open-circuit elec-trode potential as the result of the passage of current.4. Significance and Use4.1 When two dissimilar metals in electrical contact areexposed to a common electrolyte, one of the metals canundergo increased corrosion while the other can
10、show de-creased corrosion.This type of accelerated corrosion is referredto as galvanic corrosion. Because galvanic corrosion can occurat a high rate, it is important that a means be available to alertthe user of products or equipment that involve the use ofdissimilar metal combinations in an electro
11、lyte of the possibleeffects of galvanic corrosion.4.2 One method that is used to predict the effects of galvaniccorrosion is to develop a galvanic series by arranging a list ofthe materials of interest in order of observed corrosion poten-tials in the environment and conditions of interest. The meta
12、lthat will suffer increased corrosion in a galvanic couple in thatenvironment can then be predicted from the relative position ofthe two metals in the series.4.3 Types of Galvanic Series:4.3.1 One type of Galvanic Series lists the metals of interestin order of their corrosion potentials, starting wi
13、th the mostactive (electronegative) and proceeding in order to the mostnoble (electropositive). The potentials themselves (versus anappropriate reference half-cell) are listed so that the potentialdifference between metals in the series can be determined. Thistype of Galvanic Series has been put in
14、graphical form as a1This guide is under the jurisdiction of ASTM Committee G01 on Corrosion ofMetals and is the direct responsibility of Subcommittee G01.11 on ElectrochemicalMeasurements in Corrosion Testing.Current edition approved May 1, 2009. Published May 2009. Originallyapproved in 1983. Last
15、previous edition approved in 2003 as G 8298(2003).2For referenced 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.1Copyright
16、ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.series of bars displaying the range of potentials exhibited bythe metal listed opposite each bar. Such a series is illustrated inFig. 1.4.3.2 The second type of galvanic series is similar to the f
17、irstin that it lists the metals of interest in order of their corrosionpotentials. The actual potentials themselves are not specified,however. Thus, only the relative position of materials in theseries is known and not the magnitude of their potentialdifference. Such a series is shown in Fig. 2.4.4
18、Use of a Galvanic Series:NOTEDark boxes indicate active behavior of active-passive alloys.FIG. 1 Galvanic Series of Various Metals in Flowing Seawater at 2.4 to 4.0 m/s for 5 to 15 Days at 5 to 30C (Redrawn from Original)(see Footnote 5)G 82 98 (2009)24.4.1 Generally, upon coupling two metals in the
19、 GalvanicSeries, the more active (electronegative) metal will have atendency to undergo increased corrosion while the more noble(electropositive) metal will have a tendency to undergo re-duced corrosion.4.4.2 Usually, the further apart two metals are in the series,and thus the greater the potential
20、difference between them, thegreater is the driving force for galvanic corrosion. All otherfactors being equal, and subject to the precautions in Section 5,this increased driving force frequently, although not always,results in a greater degree of galvanic corrosion.5. Precautions in the Use of a Gal
21、vanic Series5.1 The galvanic series should not be confused with theelectromotive force series, which, although of a similar appear-ance to the galvanic series, is based on standard electrodepo-tentials of elements and not on corrosion potentials of metals.The electromotive force series should not be
22、 used for galvaniccorrosion prediction.5.2 Each series is specific to the environment for which itwas compiled. For example, a series developed in a flowingambient temperature seawater should not be used to predict theperformance of galvanic couples in fresh water or in heatedseawater.5.3 Corrosion
23、potentials can change with time and theenvironment. These changes can affect the potential differencebetween the metals of interest and, in some cases, can reverserelative positions. It is thus imperative that the series used forthe prediction be obtained under similar conditions of exposureduration
24、 and electrolyte composition as the situation beingpredicted.5.4 Galvanic corrosion can occur between two identicalmaterials in different environments. The galvanic series gen-erated herein cannot be applied to this situation.5.5 Use of a galvanic series provides qualitative predictionof galvanic co
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