ASTM C1291-2000a(2005) Standard Test Method for Elevated Temperature Tensile Creep Strain Creep Strain Rate and Creep Time-to-Failure for Advanced Monolithic Ceramics《高级单片陶瓷的高温抗拉蠕变.pdf
《ASTM C1291-2000a(2005) Standard Test Method for Elevated Temperature Tensile Creep Strain Creep Strain Rate and Creep Time-to-Failure for Advanced Monolithic Ceramics《高级单片陶瓷的高温抗拉蠕变.pdf》由会员分享,可在线阅读,更多相关《ASTM C1291-2000a(2005) Standard Test Method for Elevated Temperature Tensile Creep Strain Creep Strain Rate and Creep Time-to-Failure for Advanced Monolithic Ceramics《高级单片陶瓷的高温抗拉蠕变.pdf(15页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C 1291 00a (Reapproved 2005)Standard Test Method forElevated Temperature Tensile Creep Strain, Creep StrainRate, and Creep Time-to-Failure for Advanced MonolithicCeramics1This standard is issued under the fixed designation C 1291; the number immediately following the designation indicat
2、es the year oforiginal adoption or, in 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 test method covers the determination of
3、 tensilecreep strain, creep strain rate, and creep time-to-failure foradvanced monolithic ceramics at elevated temperatures, typi-cally between 1073 and 2073 K. A variety of specimengeometries are included. The creep strain at a fixed temperatureis evaluated from direct measurements of the gage leng
4、thextension over the time of the test. The minimum creep strainrate, which may be invariant with time, is evaluated as afunction of temperature and applied stress. Creep time-to-failure is also included in this test method.1.2 This test method is for use with advanced ceramics thatbehave as macrosco
5、pically isotropic, homogeneous, continu-ous materials. While this test method is intended for use onmonolithic ceramics, whisker- or particle-reinforced compositeceramics as well as low-volume-fraction discontinuous fiber-reinforced composite ceramics may also meet these macro-scopic behavior assump
6、tions. Continuous fiber-reinforced ce-ramic composites (CFCCs) do not behave as macroscopicallyisotropic, homogeneous, continuous materials, and applicationof this test method to these materials is not recommended.1.3 The values in SI units are to be regarded as the standard(see IEEE/ASTM SI 10).1.4
7、 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.2. Referenced Docu
8、ments2.1 ASTM Standards:2E4 Practices for Force Verification of Testing MachinesE6 Terminology Relating to Methods of Mechanical Test-ingE83 Practice for Verification and Classification of Exten-someter SystemE 139 Test Methods for Conducting Creep, Creep-Rupture,and Stress-Rupture Tests of Metallic
9、 MaterialsE 177 Practice for Use of the Terms Precision and Bias inASTM Test MethodsE 220 Test Method for Calibration of Thermocouples byComparison TechniquesE 230 Specification and Temperature-Electromotive Force(EMF) Tables for Standardized ThermocouplesE 639 Test Method for Measuring Total-Radian
10、ce Tempera-ture of Heated Surfaces Using a Radiation PyrometerE 691 Practice for Conducting an Interlaboratory Study toDetermine the Precision of a Test MethodE 1012 Practice for Verification of Specimen AlignmentUnder Tensile LoadingIEEE/ASTM SI 10 American National Standard for Use ofthe Internati
11、onal System of Units (SI): The Modern MetricSystem3. Terminology3.1 DefinitionsThe definitions of terms relating to creeptesting, which appear in Section E of Terminology E6shallapply to the terms used in this test method. For the purpose ofthis test method only, some of the more general terms are u
12、sedwith the restricted meanings given as follows.3.2 Definitions of Terms Specific to This Standard:3.2.1 axial strain, ea, nd, naverage of the strain mea-sured on diametrically opposed sides and equally distant fromthe specimen axis.3.2.2 bending strain, ebnd, ndifference between thestrain at the s
13、urface and the axial strain.3.2.2.1 DiscussionIn general, it varies from point to pointaround and along the gage length of the specimen. E 10123.2.3 creep-rupture test, ntest in which progressive speci-men deformation and the time-to-failure are measured. Ingeneral, deformation is greater than that
14、developed during acreep test.1This test method is under the jurisdiction of ASTM Committee C28 onAdvanced Ceramics and is the direct responsibility of Subcommittee C28.01 onMechanical Properties and Performance.Current edition approved June 1, 2005. Published June 2005. Originallyapproved in 1995. L
15、ast previous edition approved in 2000 as C 1291 00a.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.1Copyrigh
16、t ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.2.4 creep strain, e, nd, ntime dependent strain thatoccurs after the application of load which is thereafter main-tained constant. Also known as engineering creep strain.3.2.5 creep test, ntes
17、t that has as its objective the mea-surement of creep and creep rates occurring at stresses usuallywell below those that would result in fast fracture.3.2.5.1 DiscussionSince the maximum deformation isonly a few percent, a sensitive extensometer is required.3.2.6 creep time-to-failure, tf, s, ntime
18、required for aspecimen to fracture under constant load as a result of creep.3.2.6.1 DiscussionThis is also known as creep rupturetime.3.2.7 gage length, l, m, noriginal distance betweenfiducial markers on or attached to the specimen for determiningelongation.3.2.8 maximum bending strain, ebmax, nd,
19、nlargestvalue of bending strain along the gage length. It can becalculated from measurements of strain at three circumferentialpositions at each of two different longitudinal positions.3.2.9 minimum creep strain rate, emin,s1, nminimumvalue of the strain rate prior to specimen failure as measuredfro
20、m the strain-time curve. The minimum creep strain rate maynot necessarily correspond to the steady-state creep strain rate.3.2.10 slow crack growth, n, m/s, nsubcritical crackgrowth (extension) which may result from, but is not restrictedto, such mechanisms as environmentally assisted stress corro-s
21、ion, diffusive crack growth, or other mechanisms.3.2.11 steady-state creep, ess, nd, nstage of creepwherein the creep rate is constant with time.3.2.11.1 DiscussionAlso known as secondary creep.3.2.12 stress corrosion, nenvironmentally induced degra-dation that initiates from the exposed surface.3.2
22、.12.1 DiscussionSuch environmental effects com-monly include the action of moisture, as well as other corrosivespecies, often with a strong temperature dependence.3.2.13 tensile creep strain, et, nd, ncreep strain thatoccurs as a result of a uniaxial tensile-applied stress.4. Significance and Use4.1
23、 Creep tests measure the time-dependent deformationunder load at a given temperature, and, by implication, theload-carrying capability of the material for limited deforma-tions. Creep-rupture tests, properly interpreted, provide ameasure of the load-carrying capability of the material as afunction o
24、f time and temperature. The two tests complimenteach other in defining the load-carrying capability of a materialfor a given period of time. In selecting materials and designingparts for service at elevated temperatures, the type of test dataused will depend on the criteria for load-carrying capabil
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