ASTM D7012-2014e1 3125 Standard Test Methods for Compressive Strength and Elastic Moduli of Intact Rock Core Specimens under Varying States of Stress and Temperatures《在应力和温度变化条件下完整.pdf
《ASTM D7012-2014e1 3125 Standard Test Methods for Compressive Strength and Elastic Moduli of Intact Rock Core Specimens under Varying States of Stress and Temperatures《在应力和温度变化条件下完整.pdf》由会员分享,可在线阅读,更多相关《ASTM D7012-2014e1 3125 Standard Test Methods for Compressive Strength and Elastic Moduli of Intact Rock Core Specimens under Varying States of Stress and Temperatures《在应力和温度变化条件下完整.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D7012 141Standard Test Methods forCompressive Strength and Elastic Moduli of Intact RockCore Specimens under Varying States of Stress andTemperatures1This standard is issued under the fixed designation D7012; the number immediately following the designation indicates the year oforiginal
2、 adoption or, in the case 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.1NOTEEditorially corrected legend for Eq 3 in August 2017.1. Scope1.1 These fou
3、r test methods cover the determination of thestrength of intact rock core specimens in uniaxial and triaxialcompression. MethodsAand B determine the triaxial compres-sive strength at different pressures and Methods C and Ddetermine the unconfined, uniaxial strength.1.2 Methods A and B can be used to
4、 determine the angle ofinternal friction, angle of shearing resistance, and cohesionintercept.1.3 Methods B and D specify the apparatus,instrumentation, and procedures for determining the stress-axial strain and the stress-lateral strain curves, as well asYoungs modulus, E, and Poissons ratio, . The
5、se methodsmake no provision for pore pressure measurements and speci-mens are undrained (platens are not vented). Thus, the strengthvalues determined are in terms of total stress and are notcorrected for pore pressures. These test methods do not includethe procedures necessary to obtain a stress-str
6、ain curve beyondthe ultimate strength.1.4 OptionAallows for testing at different temperatures andcan be applied to any of the test methods, if requested.1.5 This standard replaces and combines the followingStandard Test Methods: D2664 Triaxial Compressive Strengthof Undrained Rock Core Specimens Wit
7、hout Pore PressureMeasurements; D5407 Elastic Moduli of Undrained Rock CoreSpecimens in Triaxial Compression Without Pore PressureMeasurements; D2938 Unconfined Compressive Strength ofIntact Rock Core Specimens; and D3148 Elastic Moduli ofIntact Rock Core Specimens in Uniaxial Compression. Theorigin
8、al four standards are now referred to as Methods in thisstandard.1.5.1 Method A: Triaxial Compressive Strength ofUndrained Rock Core Specimens Without Pore Pressure Mea-surements.1.5.1.1 Method A is used for obtaining strength determina-tions. Strain is not typically measured; therefore a stress-str
9、aincurve is not produced.1.5.2 Method B: Elastic Moduli of Undrained Rock CoreSpecimens in Triaxial Compression Without Pore PressureMeasurements.1.5.3 Method C: Uniaxial Compressive Strength of IntactRock Core Specimens.1.5.3.1 Method C is used for obtaining strength determina-tions. Strain is not
10、typically measured; therefore a stress-straincurve is not produced.1.5.4 Method D: Elastic Moduli of Intact Rock Core Speci-mens in Uniaxial Compression.1.5.5 Option A: Temperature VariationApplies to any ofthe methods and allows for testing at temperatures above orbelow room temperature.1.6 For an
11、isotropic material in Test Methods B and D, therelation between the shear and bulk moduli and Youngsmodulus and Poissons ratio are:G 5E211!(1)K 5E31 2 2!(2)where:G = shear modulus,K = bulk modulus,E = Youngs modulus, and = Poissons ratio.1.6.1 The engineering applicability of these equations de-crea
12、ses with increasing anisotropy of the rock. It is desirable toconduct tests in the plane of foliation, cleavage or bedding andat right angles to it to determine the degree of anisotropy. It isnoted that equations developed for isotropic materials may give1These test methods are under the jurisdictio
13、n ofASTM Committee D18 on Soiland Rock and is the direct responsibility of Subcommittee D18.12 on RockMechanics.Current edition approved May 1, 2014. Published June 2014. Originallyapproved in 2004. Last previous edition approved in 2013 as D7012 13. DOI:10.1520/D7012-14E01.*A Summary of Changes sec
14、tion appears at the end of this standardCopyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United StatesThis international standard was developed in accordance with internationally recognized principles on standardization established in the Decision o
15、n Principles for theDevelopment of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.1only approximate calculated results if the difference in elasticmoduli in two orthogonal directions is greater than 10 % for agiv
16、en stress level.NOTE 1Elastic moduli measured by sonic methods (Test MethodD2845) may often be employed as a preliminary measure of anisotropy.1.7 Test Methods B and D for determining the elasticconstants do not apply to rocks that undergo significantinelastic strains during the test, such as potash
17、 and salt. Theelastic moduli for such rocks should be determined fromunload-reload cycles that are not covered by these test meth-ods.1.8 The values stated in SI units are to be regarded asstandard. No other units of measurement are included in thisstandard.1.9 All observed and calculated values sha
18、ll conform to theguidelines for significant digits and rounding established inPractice D6026.1.9.1 The procedures used to specify how data are collected/recorded or calculated, in this standard are regarded as theindustry standard. In addition, they are representative of thesignificant digits that g
19、enerally should be retained. The proce-dures used do not consider material variation, purpose forobtaining the data, special purpose studies, or any consider-ations for the users objectives; and it is common practice toincrease or reduce significant digits of reported data to becommensurate with the
20、se considerations. It is beyond the scopeof this standard to consider significant digits used in analyticalmethods for engineering design.1.10 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
21、 establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.1.11 This international standard was developed in accor-dance with internationally recognized principles on standard-ization established in the Decision on Principles for theDe
22、velopment of International Standards, Guides and Recom-mendations issued by the World Trade Organization TechnicalBarriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:2D653 Terminology Relating to Soil, Rock, and ContainedFluidsD2216 Test Methods for Laboratory Determination o
23、f Water(Moisture) Content of Soil and Rock by MassD2845 Test Method for Laboratory Determination of PulseVelocities and Ultrasonic Elastic Constants of Rock(Withdrawn 2017)3D3740 Practice for Minimum Requirements for AgenciesEngaged in Testing and/or Inspection of Soil and Rock asUsed in Engineering
24、 Design and ConstructionD4543 Practices for Preparing Rock Core as Cylindrical TestSpecimens and Verifying Conformance to Dimensionaland Shape Tolerances (Withdrawn 2017)3D6026 Practice for Using Significant Digits in GeotechnicalDataE4 Practices for Force Verification of Testing MachinesE122 Practi
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