ASTM G106-1989(2015) Standard Practice for Verification of Algorithm and Equipment for Electrochemical Impedance Measurements《电化学阻抗测量用算法和设备验证的标准实施规程》.pdf
《ASTM G106-1989(2015) Standard Practice for Verification of Algorithm and Equipment for Electrochemical Impedance Measurements《电化学阻抗测量用算法和设备验证的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM G106-1989(2015) Standard Practice for Verification of Algorithm and Equipment for Electrochemical Impedance Measurements《电化学阻抗测量用算法和设备验证的标准实施规程》.pdf(11页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: G106 89 (Reapproved 2015)Standard Practice forVerification of Algorithm and Equipment for ElectrochemicalImpedance Measurements1This standard is issued under the fixed designation G106; the number immediately following the designation indicates the year oforiginal adoption or, in the ca
2、se 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. Scope1.1 This practice covers an experimental procedure whichcan be used to check ones instrumentat
3、ion and technique forcollecting and presenting electrochemical impedance data. Iffollowed, this practice provides a standard material,electrolyte, and procedure for collecting electrochemical im-pedance data at the open circuit or corrosion potential thatshould reproduce data determined by others at
4、 different timesand in different laboratories. This practice may not be appro-priate for collecting impedance information for all materials orin all environments.1.2 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.3 This stand
5、ard 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.2. Referenced Documents2.1 AS
6、TM Standards:2D1193 Specification for Reagent WaterG3 Practice for Conventions Applicable to ElectrochemicalMeasurements in Corrosion TestingG5 Reference Test Method for Making PotentiodynamicAnodic Polarization MeasurementsG15 Terminology Relating to Corrosion and Corrosion Test-ing (Withdrawn 2010
7、)3G59 Test Method for Conducting Potentiodynamic Polariza-tion Resistance Measurements3. Terminology3.1 DefinitionsFor definitions of corrosion related terms,see Terminology G15.3.2 Symbols:C = capacitance (farad-cm2)E = real component of voltage (volts)E“ = imaginary component of voltage (volts)E =
8、 complex voltage (volts)f = frequency (s1)I = real component of current (amp-cm2)I“ = imaginary component of current (amp-cm2)I = complex current (amp-cm2)j =21L = inductance (henry cm2)Rs= solution resistance (ohm-cm2)Rp= polarization resistance (ohm-cm2)Rt= charge transfer resistance (ohm-cm2)Z =
9、real component of impedance (ohm-cm2)Z“ = imaginary component of impedance (ohm-cm2)Z = complex impedance (ohm-cm2) = phenomenological coefficients caused by depressionof the Nyquist plot below the real axis, is theexponent and is the time constant(s). = phase angle (deg) = frequency (radians-s1)3.3
10、 Subscripts:x = in-phase componenty = out-of-phase component4. Summary of Practice4.1 Reference impedance plots in both Nyquist and Bodeformat are included. These reference plots are derived from theresults from nine different laboratories that used a standarddummy cell and followed the standard pro
11、cedure using a1This practice is under the jurisdiction of ASTM Committee G01 on Corrosionof Metals and is the direct responsibility of Subcommittee G01.11 on Electrochemi-cal Measurements in Corrosion Testing.Current edition approved Nov. 1, 2015. Published December 2015. Originallyapproved in 1989.
12、 Last previous edition approved in 2010 as G10689(2010). DOI:10.1520/G0106-89R15.2For 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
13、 onthe ASTM website.3The last approved version of this historical standard is referenced onwww.astm.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1specific ferritic type alloy UNS-S430004in 0.005 M H2SO4and 0.495 M Na2SO4. The pl
14、ots for the reference material arepresented as an envelope that surrounds all of the data with andwithout inclusion of the uncompensated resistance. Plots forone data set from one laboratory are presented as well. Sincethe results from the dummy cell are independent of laboratory,only one set of res
15、ults is presented.4.2 A discussion of the electrochemical impedancetechnique, the physics that underlies it, and some methods ofinterpreting the data are given in the Appendix X1 AppendixX6. These sections are included to aid the individual inunderstanding the electrochemical impedance technique and
16、some of its capabilities. The information is not intended to beall inclusive.5. Significance and Use5.1 The availability of a standard procedure, standardmaterial, and standard plots should allow the investigator tocheck his laboratory technique. This practice should lead toelectrochemical impedance
17、 curves in the literature which canbe compared easily and with confidence.5.2 Samples of a standard ferritic type 430 stainless steel(UNS 430000) used to obtain the reference plots are availablefor those who wish to check their equipment. Suitable resistorsand capacitors can be obtained from electro
18、nics supply houses.5.3 This test method may not be appropriate for electro-chemical impedance measurements of all materials or in allenvironments.6. Apparatus6.1 Dummy CellThe dummy cell used to check theequipment and method for generating electrochemical imped-ance data is composed of a 10 precisio
19、n resistor placed inseries with a circuit element composed of a 100 precisionresistor in parallel with a 100 F capacitor. The resistors shouldhave a stated precision of 60.1 %. The capacitor can have aprecision of 620 %. The cell can be constructed from readilyavailable circuit elements by following
20、 the circuit diagramshown in Fig. 1.6.2 Test CellThe test cell should be constructed to allowthe following items to be inserted into the solution chamber:the test electrode, two counter electrodes or a symmetricallyarranged counter electrode around the working electrode, aLuggin-Haber capillary with
21、 salt bridge connection to thereference electrode, an inlet and an outlet for an inert gas, anda thermometer or thermocouple holder. The test cell must beconstructed of materials that will not corrode, deteriorate, orotherwise contaminate the solution.6.2.1 One type of suitable cell is described in
22、ReferenceTestMethod G5. Cells are not limited to that design. For example,a 1-L round-bottom flask can be modified for the addition ofvarious necks to permit the introduction of electrodes, gas inletand outlet tubes, and the thermometer holder. A Luggin-Habercapillary probe could be used to separate
23、 the bulk solution fromthe saturated calomel electrode. The capillary tip can be easilyadjusted to bring it into close proximity to the workingelectrode. The minimum distance should be no less than twocapillary diameters from the working electrode.6.3 Electrode HolderThe auxiliary and working elec-t
24、rodes can be mounted in the manner shown in Reference TestMethod G5. Precautions described in Reference Test MethodG5 about assembly should be followed.6.4 PotentiostatThe potentiostat must be of the kind thatallows for the application of a potential sweep as described inReference Test Method G5 and
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