ASTM A1033-2004 Standard Practice for Quantitative Measurement and Reporting of Hypoeutectoid Carbon and Low-Alloy Steel Phase Transformations《亚共析碳钢和低合金钢相位变换的定量测量和报告的标准规程》.pdf
《ASTM A1033-2004 Standard Practice for Quantitative Measurement and Reporting of Hypoeutectoid Carbon and Low-Alloy Steel Phase Transformations《亚共析碳钢和低合金钢相位变换的定量测量和报告的标准规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM A1033-2004 Standard Practice for Quantitative Measurement and Reporting of Hypoeutectoid Carbon and Low-Alloy Steel Phase Transformations《亚共析碳钢和低合金钢相位变换的定量测量和报告的标准规程》.pdf(14页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: A 1033 04Standard Practice forQuantitative Measurement and Reporting of HypoeutectoidCarbon and Low-Alloy Steel Phase Transformations1This standard is issued under the fixed designation A 1033; the number immediately following the designation indicates the year oforiginal adoption or, i
2、n 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. Scope1.1 This practice covers the determination of hypoeutectoidsteel phase transformation
3、 behavior by using high-speeddilatometry techniques for measuring linear dimensionalchange as a function of time and temperature, and reporting theresults as linear strain in either a numerical or graphical format.1.2 The practice is applicable to high-speed dilatometryequipment capable of programma
4、ble thermal profiles and withdigital data storage and output capability.1.3 This practice is applicable to the determination of steelphase transformation behavior under both isothermal andcontinuous cooling conditions.1.4 This practice includes requirements for obtaining met-allographic information
5、to be used as a supplement to thedilatometry measurements.1.5 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-bil
6、ity of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E 3 Practice for Preparation of Metallographic SpecimensE 112 Test Methods for Determining Average Grain SizeE 407 Practice for Microetching Metals and Alloys3. Terminology3.1 Definitions of Terms Specific to This
7、Standard:3.1.1 diametrical linear engineering strainthe strain, ei-ther thermal or resulting from phase transformation, that isdetermined from a change in diameter as a result of a changein temperature, or over a period of time, and which is expressedas follows:eD5Dd/d05 d12 d0!/d03.1.2 hypoeutectoi
8、d steela term used to describe a groupof carbon steels with a carbon content less than the eutectoidcomposition (0.8 % by weight).3.1.3 longitudinal linear engineering strainthe strain, ei-ther thermal or resulting from phase transformation, that isdetermined from a change in length as a result of a
9、 change intemperature, or over a period of time, and which is expressedas follows:eL5Dl/L05 l12 l0!/l03.1.4 steel phase transformationduring heating, the crys-tallographic transformation from ferrite, pearlite, bainite, mar-tensite or combinations of these constituents to austenite.During cooling, t
10、he crystallographic transformation from aus-tenite to ferrite, pearlite, bainite, or martensite or a combinationthereof.3.1.5 volumetric engineering strainthe strain, either ther-mal or resulting from phase transformation, that is determinedfrom a change in volume as a result of a change in temperat
11、ure,or over a period of time, and which is expressed as follows:eV5Dv/v05 v12 v0!/v0eV 3eL 3eD3.2 Symbols:eL= longitudinal linear engineering straineD= diametrical linear engineering straineV= volumetric engineering strainDl = change in test specimen lengthl1= test specimen length at specific temper
12、ature or time, orbothl0= initial test specimen lengthDd = change in test specimen diameterd1= test specimen diameter at specific temperature or time,or bothd0= initial test specimen diameterDv = change in test specimen volumev1= test specimen volume at a specific temperature or time,or bothv0= initi
13、al test specimen volumeAc1= the temperature at which austenite begins to form onheating1This practice is under the jurisdiction of ASTM Committee A01 on Steel,Stainless Steel and Related Alloys and is the direct responsibility of SubcommitteeA01.13 on Mechanical and Chemical Testing and Processing M
14、ethods of SteelProducts and Processes.Current edition approved March 1, 2004. Published March 2004.2For 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 Doc
15、ument Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.Ac3= the temperature at which the transformation of ferriteto austenite is complete on heatingMs= the temperature at which the transformation of au
16、ste-nite to martensite starts during cooling4. Summary of Practice4.1 This practice is based upon the principle that, duringheating and cooling of steels, dimensional changes occur as aresult of both thermal expansion associated with temperaturechange and phase transformation. In this practice, sens
17、itivehigh-speed dilatometer equipment is used to detect and mea-sure the changes in dimension that occur as functions of bothtime and temperature during defined thermal cycles. Theresulting data are converted to discrete values of strain forspecific values of time and temperature during the thermalc
18、ycle. Strain as a function of time or temperature, or both, canthen be used to determine the beginning and completion of oneor more phase transformations.5. Significance and Use5.1 This practice is used to provide steel phase transforma-tion data required for use in numerical models for the predic-t
19、ion of microstructures, properties, and distortion during steelmanufacturing, forging, casting, heat treatment, and welding.Alternatively, the practice provides end users of steel andfabricated steel products the phase transformation data requiredfor selecting steel grades for a given application by
20、 determin-ing the microstructure resulting from a prescribed thermalcycle.5.1.1 There are available several computer models designedto predict the microstructures, mechanical properties, anddistortion of steels as a function of thermal processing cycle.Their use is predicated on the availability of
21、accurate andconsistent thermal and transformation strain data. Strain, boththermal and transformation, developed during thermal cyclingis the parameter used in predicting both microstructure andproperties, and for estimating distortion. It should be noted thatthese models are undergoing continued de
22、velopment. Thisprocess is aimed, among other things, at establishing a directlink between discrete values of strain and specific microstruc-ture constituents in steels. This practice describes a standard-ized method for measuring strain during a defined thermalcycle.5.1.2 This practice is suitable f
23、or providing data for com-puter models used in the control of steel manufacturing,forging, casting, heat-treating, and welding processes. It is alsouseful in providing data for the prediction of microstructuresand properties to assist in steel alloy selection for end-useapplications.5.1.3 This pract
24、ice is suitable for providing the data neededfor the construction of transformation diagrams that depict themicrostructures developed during the thermal processing ofsteels as functions of time and temperature. Such diagramsprovide a qualitative assessment of the effects of changes inthermal cycle o
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