ASTM C1368-2018 Standard Test Method for Determination of Slow Crack Growth Parameters of Advanced Ceramics by Constant Stress Rate Strength Testing at Ambient Temperature《通过室温恒压力强.pdf
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1、Designation: C1368 10 (Reapproved 2017)C1368 18Standard Test Method forDetermination of Slow Crack Growth Parameters ofAdvanced Ceramics by Constant Stress-Rate Stress RateStrength Testing at Ambient Temperature1This standard is issued under the fixed designation C1368; the number immediately follow
2、ing the designation indicates 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 () indicates an editorial change since the last revision or reapproval.1. Scope*Scope1.1 This test me
3、thod covers the determination of slow crack growth (SCG) parameters of advanced ceramics by using constantstress-rate stress rate rectangular beam flexural testing, or ring-on-ring biaxial disk flexural testing, or direct tensile strength, inwhich strength is determined as a function of applied stre
4、ss rate in a given environment at ambient temperature. The strengthdegradation exhibited with decreasing applied stress rate in a specified environment is the basis of this test method which enablesthe evaluation of slow crack growth parameters of a material.NOTE 1This test method is frequently refe
5、rred to as “dynamic fatigue” testing (1-3)2 in which the term “fatigue” is used interchangeably with theterm “slow crack growth.” To avoid possible confusion with the “fatigue” phenomenon of a material which occurs exclusively under cyclic loading, asdefined in Terminology E1823, this test method us
6、es the term “constant stress-rate stress rate testing” rather than “dynamic fatigue” testing.NOTE 2In glass and ceramics technology, static tests of considerable duration are called “static fatigue” tests, a type of test designated as stress-rupturestress rupture (See Terminology E1823).1.2 Values e
7、xpressed in this test method are in accordance with the International System of Units (SI) and IEEE/ASTM SI 10.1.3 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safe
8、ty safety, health, and healthenvironmental practices and determine theapplicability of regulatory limitations prior to use.1.4 This international standard was developed in accordance with internationally recognized principles on standardizationestablished in the Decision on Principles for the Develo
9、pment of International Standards, Guides and Recommendations issuedby the World Trade Organization Technical Barriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:3C1145 Terminology of Advanced CeramicsC1161 Test Method for Flexural Strength of Advanced Ceramics at Ambient Temp
10、eratureC1239 Practice for Reporting Uniaxial Strength Data and Estimating Weibull Distribution Parameters for Advanced CeramicsC1273 Test Method for Tensile Strength of Monolithic Advanced Ceramics at Ambient TemperaturesC1322 Practice for Fractography and Characterization of Fracture Origins in Adv
11、anced CeramicsC1499 Test Method for Monotonic Equibiaxial Flexural Strength of Advanced Ceramics at Ambient TemperatureE4 Practices for Force Verification of Testing MachinesE6 Terminology Relating to Methods of Mechanical TestingE337 Test Method for Measuring Humidity with a Psychrometer (the Measu
12、rement of Wet- and Dry-Bulb Temperatures)E1823 Terminology Relating to Fatigue and Fracture TestingIEEE/ASTM SI 10 American National Standard for Use of the International System of Units (SI): The Modern Metric System3. Terminology3.1 Definitions:1 This test method is under the jurisdiction of ASTM
13、Committee C28 on Advanced Ceramics and is the direct responsibility of Subcommittee C28.01 on MechanicalProperties and Performance.Current edition approved Feb. 1, 2017Jan. 1, 2018. Published February 2017January 2018. Originally approved in 1997. Last previous edition approved in 20102017 asC1368 1
14、0.C1368 10 (2017). DOI: 10.1520/C1368-10R17.10.1520/C1368-18.2 The boldface numbers in parentheses refer to the list of references at the end of this standard.3 For referencedASTM standards, visit theASTM website, www.astm.org, or contactASTM Customer Service at serviceastm.org. For Annual Book of A
15、STM Standardsvolume information, refer to the standards Document Summary page on the ASTM website.This document is not an ASTM standard and is intended only to provide the user of an ASTM standard an indication of what changes have been made to the previous version. Becauseit may not be technically
16、possible to adequately depict all changes accurately, ASTM recommends that users consult prior editions as appropriate. In all cases only the current versionof the standard as published by ASTM is to be considered the official document.*A Summary of Changes section appears at the end of this standar
17、dCopyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States13.1.1 The terms described in Terminologies C1145, E6, and E1823 are applicable to this test method. Specific terms relevantto this test method are as follows:3.1.2 advanced ceramic, na
18、highly engineered, high-performance, predominately nonmetallic, inorganic, ceramic materialhaving specific functional attributes. (C1145)3.1.3 constant stress rate, , na constant rate of maximum stress applied to a specified beam by using either a constantloading or constant displacement rate of a t
19、esting machine.3.1.4 environment, nthe aggregate of chemical species and energy that surrounds a test specimen. (E1823)3.1.5 environmental chamber, nthe container of bulk volume surrounding a test specimen. (E1823)3.1.6 equibiaxial flexural strength, F/L2, nthe maximum stress that a material is capa
20、ble of sustaining when subjected toflexure between two concentric rings.3.1.6.1 DiscussionThis mode of flexure is a cupping of the circular plate caused by loading at the inner load ring and outer support ring. Theequibiaxial flexural strength is calculated from the maximum-load maximum load of a bi
21、axial test carried to rupture, the originaldimensions of the test specimen, and Poissons ratio. (C1499)3.1.7 flexural strength, f, FL2, na measure of the strength of a specified beam specimen in bending determined at a givenstress rate in a particular environment.3.1.8 fracture toughness, na generic
22、 term for measures of resistance to extension of a crack. (E1823)3.1.9 inert strength, FL2, na measure of the strength of a specified strength test specimen as determined in an appropriateinert condition whereby no slow crack growth occurs.3.1.9.1 DiscussionAn inert condition may be obtained by usin
23、g vacuum, low temperatures, very fast test rates, or any inert mediums.3.1.10 slow crack growth (SCG), nsubcritical crack growth (extension) which may result from, but is not restricted to, suchmechanisms as environmentally assisted stress corrosion or diffusive crack growth.3.1.11 strength-stress r
24、ate curve, na curve fitted to the values of strength at each of several stress rates, based on therelationship between strength and stress rate: log f = 1/(n + 1) log + log D. (See Appendix X1.)3.1.11.1 DiscussionIn the ceramics literature, this is often called a dynamic fatigue curve.3.1.12 strengt
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