ASTM C1424-2010 Standard Test Method for Monotonic Compressive Strength of Advanced Ceramics at Ambient Temperature《环境温度下高级陶瓷单一压强的标准试验方法》.pdf
《ASTM C1424-2010 Standard Test Method for Monotonic Compressive Strength of Advanced Ceramics at Ambient Temperature《环境温度下高级陶瓷单一压强的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM C1424-2010 Standard Test Method for Monotonic Compressive Strength of Advanced Ceramics at Ambient Temperature《环境温度下高级陶瓷单一压强的标准试验方法》.pdf(13页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: C1424 10Standard Test Method forMonotonic Compressive Strength of Advanced Ceramics atAmbient Temperature1This standard is issued under the fixed designation C1424; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the y
2、ear 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 test method covers the determination of compres-sive strength including stress-strain behavior, under mono
3、tonicuniaxial loading of advanced ceramics at ambient temperature.This test method is restricted to specific test specimen geom-etries. In addition, test specimen fabrication methods, testingmodes (load or displacement), testing rates (load rate, stressrate, displacement rate, or strain rate), allow
4、able bending, anddata collection and reporting procedures are addressed. Com-pressive strength as used in this test method refers to thecompressive strength obtained under monotonic uniaxial load-ing. Monotonic loading refers to a test conducted at a constantrate in a continuous fashion, with no rev
5、ersals from testinitiation to final fracture.1.2 This test method is intended primarily for use withadvanced ceramics that macroscopically exhibit isotropic,homogeneous, continuous behavior. While this test method isintended for use on monolithic advanced ceramics, certainwhisker- or particle-reinfo
6、rced composite ceramics as well ascertain discontinuous fiber-reinforced composite ceramics mayalso meet these macroscopic behavior assumptions. Generally,continuous fiber ceramic composites (CFCCs) do not macro-scopically exhibit isotropic, homogeneous, continuous behav-ior and, application of this
7、 test method to these materials is notrecommended.1.3 Values expressed in this test method are in accordancewith the International System of Units (SI) and IEEE/ASTM SI10.1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility
8、 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 ASTM Standards:2C773 Test Method for Compressive (Crushing) Strength ofFired Whiteware MaterialsC1145 Terminology of
9、Advanced CeramicsD695 Test Method for Compressive Properties of RigidPlasticsE4 Practices for Force Verification of Testing MachinesE6 Terminology Relating to Methods of MechanicalTestingE83 Practice for Verification and Classification of Exten-someter SystemsE337 Test Method for Measuring Humidity
10、with a Psy-chrometer (the Measurement of Wet- and Dry-Bulb Tem-peratures)E1012 Practice for Verification of Test Frame and SpecimenAlignment Under Tensile and Compressive Axial ForceApplicationIEEE/ASTM SI 10 Standard for Use of the InternationalSystem of Units (SI) (The Modern Metric System3. Termi
11、nology3.1 DefinitionsThe definitions of terms relating to com-pressive testing appearing in Terminology E6, Test MethodD695, and Terminology C1145 may apply to the terms used inthis test method. Pertinent definitions as listed in PracticeE1012, Terminology C1145, and Terminology E6 are shown inthe f
12、ollowing with the appropriate source given in parentheses.Additional terms used in conjunction with this test method aredefined in the following.3.1.1 advanced ceramic, na highly engineered, high-performance predominately nonmetallic, inorganic, ceramicmaterial having specific functional attributes.
13、 (C1145)3.1.2 axial strain, n L/Lthe average longitudinal strainsmeasured at the surface on opposite sides of the longitudinalaxis of symmetry of the specimen by two strain-sensing1This test method is under the jurisdiction of ASTM Committee C28 onAdvanced Ceramics and is the direct responsibility o
14、f Subcommittee C28.01 onMechanical Properties and Performance.Current edition approved Dec. 1, 2010. Published January 2011. Originallypublished in 1999. Last previous edition approved in 2004 as C1424 04. DOI:10.1520/C1424-10.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orc
15、ontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.devices located at
16、the mid length of the reduced section.(E1012)3.1.3 bending strain, n L/Lthe difference between thestrain at the surface and the axial strain. In general, the bendingstrain varies from point to point around and along the reducedsection of the test specimen. (E1012)3.1.4 breaking load, n Fthe load at
17、which fractureoccurs. (E6)3.1.5 compressive strength, n F/L2the maximum com-pressive stress which a material is capable of sustaining.Compressive strength is calculated from the maximum loadduring a compression test carried to rupture and the originalcross-sectional area of the specimen. (E6)3.1.6 g
18、age length, n Lthe original length of that portionof the specimen over which strain or change of length isdetermined. (E6)3.1.7 modulus of elasticity, n F/L2the ratio of stress tocorresponding strain below the proportional limit. (E6)3.1.8 percent bending, nthe bending strain times 100divided by the
19、 axial strain. (E1012)4. Significance and Use4.1 This test method may be used for material development,material comparison, quality assurance, characterization, anddesign data generation.4.2 Generally, resistance to compression is the measure ofthe greatest strength of a monolithic advanced ceramic.
20、 Ideally,ceramics should be compressively stressed in use, althoughengineering applications may frequently introduce tensilestresses in the component. Nonetheless, compressive behavioris an important aspect of mechanical properties and perfor-mance. Although tensile strength distributions of ceramic
21、s areprobabilistic and can be described by a weakest link failuretheory, such descriptions have been shown to be inapplicable tocompressive strength distributions in at least one study (1).3However, the need to test a statistically significant number ofcompressive test specimens is not obviated. The
22、refore, asufficient number of test specimens at each testing condition isrequired for statistical analysis and design.4.3 Compression tests provide information on the strengthand deformation of materials under uniaxial compressivestresses. Uniform stress states are required to effectivelyevaluate an
23、y nonlinear stress-strain behavior which may de-velop as the result of cumulative damage processes (forexample, microcracking) which may be influenced by testingmode, testing rate, processing or compositional effects, micro-structure, or environmental influences.4.4 The results of compression tests
24、of test specimensfabricated to standardized dimensions from a particular mate-rial or selected portions of a part, or both, may not totallyrepresent the strength and deformation properties in the entire,full-size product or its in-service behavior in different environ-ments.4.5 For quality control p
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