ASTM E1221-2006 Standard Test Method for Determining Plane-Strain Crack-Arrest Fracture Toughness KIa of Ferritic Steels《测定K铁素体钢平面应变、断裂抑制、破裂韧性的标准试验方法》.pdf
《ASTM E1221-2006 Standard Test Method for Determining Plane-Strain Crack-Arrest Fracture Toughness KIa of Ferritic Steels《测定K铁素体钢平面应变、断裂抑制、破裂韧性的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1221-2006 Standard Test Method for Determining Plane-Strain Crack-Arrest Fracture Toughness KIa of Ferritic Steels《测定K铁素体钢平面应变、断裂抑制、破裂韧性的标准试验方法》.pdf(19页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 1221 06Standard Test Method forDetermining Plane-Strain Crack-Arrest Fracture Toughness,KIa, of Ferritic Steels1This standard is issued under the fixed designation E 1221; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revisi
2、on, 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 employs a side-grooved, crack-line-wedge-loaded specimen to obtain a rapid run-arres
3、t segment offlat-tensile separation with a nearly straight crack front. Thistest method provides a static analysis determination of thestress intensity factor at a short time after crack arrest. Theestimate is denoted Ka. When certain size requirements aremet, the test result provides an estimate, t
4、ermed KIa,oftheplane-strain crack-arrest toughness of the material.1.2 The specimen size requirements, discussed later, pro-vide for in-plane dimensions large enough to allow the speci-men to be modeled by linear elastic analysis. For conditions ofplane-strain, a minimum specimen thickness is also r
5、equired.Both requirements depend upon the crack arrest toughness andthe yield strength of the material. A range of specimen sizesmay therefore be needed, as specified in this test method.1.3 If the specimen does not exhibit rapid crack propagationand arrest, Kacannot be determined.1.4 The values sta
6、ted in SI units are to be regarded as thestandards. The values given in parentheses are provided forinformation only.1.5 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-priat
7、e safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E8 Test Methods for Tension Testing of Metallic MaterialsE23 Test Methods for Notched Bar Impact Testing ofMetallic MaterialsE 208 Test Method for Conducti
8、ng Drop-Weight Test toDetermine Nil-Ductility Transition Temperature of FerriticSteelsE 399 Test Method for Linear-Elastic Plane-Strain FractureToughness KIcof Metallic MaterialsE 616 Terminology Relating to Fracture Testing (Discontin-ued 1996)3E 1304 Test Method for Plane-Strain (Chevron-Notch)Fra
9、cture Toughness of Metallic MaterialsE 1823 Terminology Relating to Fatigue and Fracture Test-ing3. Terminology3.1 Definitions:3.1.1 Definitions in Terminology E 1823 are applicable tothis test method.3.2 Definitions of Terms Specific to This Standard:3.2.1 conditional value of the plane-strain crac
10、k-arrestfracture toughness, KQa(FL3/2)the conditional value of KIacalculated from the test results and subject to the validitycriteria specified in this test method.3.2.1.1 DiscussionIn this test method, side-groovedspecimens are used. The calculation of KQais based uponmeasurements of both the arre
11、sted crack size and of thecrack-mouth opening displacement prior to initiation of afast-running crack and shortly after crack arrest.3.2.2 crack-arrest fracture toughness, KA(FL3/2)thevalue of the stress intensity factor shortly after crack arrest asdetermined from dynamic methods of analysis.3.2.2.
12、1 DiscussionThe in-plane specimen dimensionsmust be large enough for adequate enclosure of the crack-tipplastic zone by a linear-elastic stress field.3.2.3 crack-arrest fracture toughness, Ka(FL3/2)thevalue of the stress intensity factor shortly after crack arrest, asdetermined from static methods o
13、f analysis.3.2.3.1 DiscussionThe in-plane specimen dimensionsmust be large enough for adequate enclosure of the crack-tipplastic zone by a linear-elastic stress field.3.2.4 plane-strain crack-arrest fracture toughness, KIa(FL3/2)the value of crack-arrest fracture toughness, Ka, fora crack that arres
14、ts under conditions of crack-front plane-strain.1This test method is under the jurisdiction ofASTM Committee E08 on FractureTesting and is the direct responsibility of Subcommittee E08.07 on Linear-ElasticFracture.Current edition approved Jan. 15, 2006. Published February 2006. Originallyapproved in
15、 1988. Last previous edition approved in 2002 as E 1221 96 (2002).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 web
16、site.3Withdrawn.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.2.4.1 DiscussionThe requirements for attaining condi-tions of crack-front plane-strain are specified in the proceduresof this test method.3.2.5 stress intensity factor
17、 at crack initiation, Ko(FL3/2)the value of K at the onset of rapid fracturing.3.2.5.1 DiscussionIn this test method, only a nominalestimate of the initial driving force is needed. For this reason,Kois calculated on the basis of the original (machined) crack(or notch) size and the crack-mouth openin
18、g displacement atthe initiation of a fast-running crack.4. Summary of Test Method4.1 This test method estimates the value of the stressintensity factor, K, at which a fast running crack will arrest.This test method is made by forcing a wedge into a split-pin,which applies an opening force across the
19、 crack starter notch ina modified compact specimen, causing a run-arrest segment ofcrack extension. The rapid run-arrest event suggests need for adynamic analysis of test results. However, experimental obser-vations (1, 2)4indicate that, for this test method, an adjustedstatic analysis of test resul
20、ts provides a useful estimate of thevalue of the stress intensity factor at the time of crack arrest.4.2 Calculation of a nominal stress intensity at initiation, Ko,is based on measurements of the machined notch size and thecrack-mouth opening displacement at initiation. The value ofKais based on me
21、asurements of the arrested crack size and thecrack-mouth opening displacements prior to initiation andshortly after crack arrest.5. Significance and Use5.1 In structures containing gradients in either toughness orstress, a crack may initiate in a region of either low toughnessor high stress, or both
22、, and arrest in another region of eitherhigher toughness or lower stress, or both. The value of thestress intensity factor during the short time interval in which afast-running crack arrests is a measure of the ability of thematerial to arrest such a crack. Values of the stress intensityfactor of th
23、is kind, which are determined using dynamicmethods of analysis, provide a value for the crack-arrestfracture toughness which will be termed KAin this discussion.Static methods of analysis, which are much less complex, canoften be used to determine K at a short time (1 to 2 ms) aftercrack arrest. The
24、 estimate of the crack-arrest fracture toughnessobtained in this fashion is termed Ka. When macroscopicdynamic effects are relatively small, the difference between KAand Kais also small (1-4). For cracks propagating underconditions of crack-front plane-strain, in situations where thedynamic effects
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