ASTM E9-2009 6875 Standard Test Methods of Compression Testing of Metallic Materials at Room Temperature《室温下金属材料压缩试验的标准试验方法》.pdf
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1、Designation: E9 09Standard Test Methods ofCompression Testing of Metallic Materials at RoomTemperature1This standard is issued under the fixed designation E9; the number immediately following the designation indicates the year of originaladoption or, in the case of revision, the year of last revisio
2、n. A number in parentheses indicates the year of last reapproval. A superscriptepsilon () indicates an editorial change since the last revision or reapproval.This standard has been approved for use by agencies of the Department of Defense.1. Scope1.1 These test methods cover the apparatus, specimens
3、, andprocedure for axial-load compression testing of metallic mate-rials at room temperature (Note 1). For additional requirementspertaining to cemented carbides, see Annex A1.NOTE 1For compression tests at elevated temperatures, see PracticeE209.1.2 The values stated in inch-pound units are to be r
4、egardedas standard. The values given in parentheses are mathematicalconversions to SI units that are provided for information onlyand are not considered standard.1.3 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the u
5、ser 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:2B557 Test Methods for Tension Testing Wrought and CastAluminum- and Magnesium-Alloy ProductsE4 Practices for F
6、orce Verification of Testing MachinesE6 Terminology Relating to Methods of Mechanical TestingE83 Practice for Verification and Classification of Exten-someter SystemsE111 Test Method for Youngs Modulus, Tangent Modulus,and Chord ModulusE171 Specification for Atmospheres for Conditioning andTesting F
7、lexible Barrier MaterialsE177 Practice for Use of the Terms Precision and Bias inASTM Test MethodsE209 Practice for Compression Tests of Metallic Materialsat Elevated Temperatures with Conventional or RapidHeating Rates and Strain RatesE251 Test Methods for Performance Characteristics of Me-tallic B
8、onded Resistance Strain GaugesE691 Practice for Conducting an Interlaboratory Study toDetermine the Precision of a Test Method3. Terminology3.1 Definitions: The definitions of terms relating to com-pression testing and room temperature in Terminology E6 andSpecification E171, respectively, shall app
9、ly to these testmethods.3.2 Definitions of Terms Specific to This Standard:3.2.1 bucklingIn addition to compressive failure bycrushing of the material, compressive failure may occur by ( 1)elastic instability over the length of a column specimen due tononaxiality of loading, (2) inelastic instabilit
10、y over the lengthof a column specimen, (3) a local instability, either elastic orinelastic, over a small portion of the gage length, or (4)atwisting or torsional failure in which cross sections rotate overeach other about the longitudinal specimen axis. These types offailures are all termed buckling
11、.3.2.2 columna compression member that is axially loadedand that may fail by buckling.3.2.3 radius of gyrationthe square root of the ratio of themoment of inertia of the cross section about the centroidal axisto the cross-sectional area:r5I/A!1/2(1)1These test methods are under the jurisdiction of A
12、STM Committee E28 onMechanical Testing and are the direct responsibility of Subcommittee E28.04 onUniaxial Testing.Current edition approved Nov. 1, 2009. Published December 2009. Originallypublished in 1924. Last previous edition approved in 2000 as E9 -89a(2000) whichwas withdrawn March 2009 and re
13、instated in November 2009. DOI: 10.1520/E0009-09.2For 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 (
14、C) ASTM International. 100 Barr Harbour Drive PO Box C-700 West Conshohocken, Pennsylvania 19428-2959, United StatesCopyright by ASTM Intl (all rights reserved); Tue Jul 20 03:47:12 EDT 2010Downloaded/printed byGuo Dehua (CNIS) pursuant to License Agreement. No further reproductions authorized.where
15、:r = radius of gyration,I = moment of inertia of the cross section about centroidalaxis (for specimens without lateral support, the smallervalue of I is the critical value), andA = cross-sectional area.3.2.4 critical stressthe axial uniform stress that causes acolumn to be on the verge of buckling.
16、The critical load iscalculated by multiplying the critical stress by the cross-sectionarea.3.2.5 buckling equationsIf the buckling stress is less thanor equal to the proportional limit of the material its value maybe calculated using the Euler equation:Scr5 Cp2E/L/r!2(2)If the buckling stress is gre
17、ater than the proportional limit ofthe material its value may be calculated from the modifiedEuler equation:Scr5 Cp2Et/L/r!2(3)where:Scr= critical buckling stress,E = Youngs modulus,Et= tangent modulus at the buckling stress,L = column length, andC = end-fixity coefficient.Methods of calculating the
18、 critical stress using Eq 3 aregiven in Ref (1).33.2.6 end-fixity coeffcientThere are certain ideal speci-men end-fixity conditions for which theory will define thevalue of the constant C (see Fig. 1). These values are:Freely rotating ends (pinned or hinged) C =1(a)One end fixed, the other free to r
19、otate C =2(b)Both ends fixed C =4(c)NOTE 2For flat-end specimens tested between flat rigid anvils, it wasshown in Ref (1) that a value of C = 3.75 is appropriate.3.2.7 barrelingrestricted deformation of the end regionsof a test specimen under compressive load due to friction at thespecimen end secti
20、ons and the resulting nonuniform transversedeformation as shown schematically and in the photograph inFig. 2. Additional theoretical and experimental information onbarreling as illustrated in Fig. 2 is given in Ref (2).4. Summary of Test Methods4.1 The specimen is subjected to an increasing axial co
21、m-pressive load; both load and strain may be monitored eithercontinuously or in finite increments, and the mechanicalproperties in compression determined.5. Significance and Use5.1 SignificanceThe data obtained from a compressiontest may include the yield strength, the yield point, Youngsmodulus, th
22、e stress-strain curve, and the compressive strength(see Terminology E6). In the case of a material that does notfail in compression by a shattering fracture, compressivestrength is a value that is dependent on total strain andspecimen geometry.5.2 UseCompressive properties are of interest in theanal
23、yses of structures subject to compressive or bending loadsor both and in the analyses of metal working and fabricationprocesses that involve large compressive deformation such asforging and rolling. For brittle or nonductile metals thatfracture in tension at stresses below the yield strength, com-pr
24、ession tests offer the possibility of extending the strain rangeof the stress-strain data. While the compression test is notcomplicated by necking as is the tension test for certainmetallic materials, buckling and barreling (see Section 3) cancomplicate results and should be minimized.6. Apparatus6.
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