ASTM G36-1994(2013) Standard Practice for Evaluating Stress-Corrosion-Cracking Resistance of Metals and Alloys in a Boiling Magnesium Chloride Solution 《评估在沸腾的氯化镁溶液中金属及合金的抗应力-腐蚀-断裂.pdf
《ASTM G36-1994(2013) Standard Practice for Evaluating Stress-Corrosion-Cracking Resistance of Metals and Alloys in a Boiling Magnesium Chloride Solution 《评估在沸腾的氯化镁溶液中金属及合金的抗应力-腐蚀-断裂.pdf》由会员分享,可在线阅读,更多相关《ASTM G36-1994(2013) Standard Practice for Evaluating Stress-Corrosion-Cracking Resistance of Metals and Alloys in a Boiling Magnesium Chloride Solution 《评估在沸腾的氯化镁溶液中金属及合金的抗应力-腐蚀-断裂.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: G36 94 (Reapproved 2013)Standard Practice forEvaluating Stress-Corrosion-Cracking Resistance of Metalsand Alloys in a Boiling Magnesium Chloride Solution1This standard is issued under the fixed designation G36; the number immediately following the designation indicates the year of origi
2、naladoption or, in the case of revision, the year of last revision.Anumber in parentheses indicates the year of last reapproval.Asuperscriptepsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice describes a procedure for conductingstress-corrosion cr
3、acking tests in a boiling magnesium chloridesolution. Although this test may be performed using variousconcentrations of magnesium chloride, this procedure covers atest solution held at a constant boiling temperature of 155.0 61.0C (311.0 6 1.8F). The boiling points of aqueous magne-sium chloride so
4、lutions at one atmosphere pressure as afunction of concentration are shown graphically in Fig. 1.2Asuggested test apparatus capable of maintaining solution con-centration and temperature within the prescribed limits forextended periods of time is also described herein.31.2 The boiling magnesium chlo
5、ride test is applicable towrought, cast, and welded stainless steels and related alloys. Itis a method for detecting the effects of composition, heattreatment, surface finish, microstructure, and stress on thesusceptibility of these materials to chloride stress corrosioncracking.41.3 This practice i
6、s concerned primarily with the testsolution, which may be used with a variety of stress corrosiontest specimens, surface finishes, and methods of applyingstress.1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the us
7、er of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use. See Section 7 forspecific safety precautions.2. Referenced Documents2.1 ASTM Standards:5D1193 Specification for Reagent WaterG1 Practice for Preparing, C
8、leaning, and Evaluating Corro-sion Test SpecimensG15 Terminology Relating to Corrosion and Corrosion Test-ing (Withdrawn 2010)6G30 Practice for Making and Using U-Bend Stress-Corrosion Test Specimens3. Terminology3.1 DefinitionsFor definitions of terms used in this prac-tice see Terminology G15.4. S
9、ummary of Practice4.1 A predetermined quantity of reagent grade magnesiumchloride and some distilled water are added to a container. Thecontainer and contents, with thermometer and condenseraffixed, are placed on a source of heat. When the magnesiumchloride solution boils, it is adjusted to maintain
10、 the desiredconcentration and boiling point through the addition of smallquantities of either water or salt.4.2 After the solution has stabilized at the desired boilingpoint for the test, the stressed specimens are added. Dependingupon the intent of the test, the specimens should be givenperiodic in
11、spections. If the duration of test exceeds 7 days, thesolution should either be changed or the suggested or similartest apparatus used.5. Significance and Use5.1 For most applications, this environment provides anaccelerated method of ranking the relative degree of stress-corrosion cracking suscepti
12、bility for stainless steels and related1This practice is under the jurisdiction of ASTM Committee G01 on Corrosionof Metals and is the direct responsibility of Subcommittee G01.06 on Environmen-tally Assisted Cracking.Current edition approved May 1, 2013. Published July 2013. Originally approvedin 1
13、973. Last previous edition approved in 2006 as G36 94 (2006). DOI:10.1520/G0036-94R13.2Available data on the relationship of concentrations and boiling points ofmagnesium chloride solutions are critically reviewed and supplemented by I. B.Casale in “Boiling Points of Magnesium Chloride SolutionsThei
14、r Application inStress Corrosion Studies,” Corrosion , Vol 23, 1967, pp. 31417.3The apparatus and test procedures for maintaining constant boiling tempera-tures of magnesium chloride solutions for stress corrosion tests are described by M.A. Streicher and A. J. Sweet in Corrosion, Vol 25, 1969, pp.
15、16.4The use of concentrated magnesium chloride solutions for determining thesusceptibility to stress corrosion cracking of austenitic and ferritic stainless steelsand related nickel-base alloys was first described by M. A. Scheil, Symposium onStress Corrosion Cracking of Metals, ASTM STP 64, ASTM, 1
16、945, p. 395.(Although currently out of print, copies may be obtained from University Micro-films, Inc., 300 North Zeeb Rd., Ann Arbor, MI 48106.)5For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards
17、volume information, refer to the standards Document Summary page onthe ASTM website.6The last approved version of this historical standard is referenced onwww.astm.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1alloys in aqueous
18、chloride-containing environments. Materialsthat normally provide acceptable resistance in hot chlorideservice may crack in this test. The test may not be relevant tostress-corrosion cracking in polythionic acid or caustic envi-ronments.5.2 Resistance to stress-corrosion cracking in boiling mag-nesiu
19、m chloride (155.0C (311.0F) should, where possible,be correlated to resistance in service for the materials ofinterest. However, such correlations may not always be pos-sible.5.3 Boiling magnesium chloride may also cause pitting ofmany stainless alloys. This leads to the possibility of confusingstre
20、ss-corrosion failures with mechanical failures induced bycorrosion-reduced net cross sections. This danger is particu-larly great when small cross section samples, high appliedstress levels, long exposure periods, stress-corrosion resistantalloys, or a combination thereof are being used. Carefulexam
21、ination is recommended for correct diagnosis of the causeof failure.6. Apparatus6.1 Any inert, transparent apparatus with provisions for athermometer and water-cooled condenser can be used, pro-vided that it has been designed to contain the stressed specimenwhile maintaining a constant temperature a
22、nd concentration ofthe magnesium chloride solution by minimizing or preventinglosses of condensate and water vapor during prolonged periodsof test. Small losses of water from a solution of magnesiumchloride will lead to large increases in the boiling point of thesolution with a reduction in the time
23、 to failure of a specimen bystress corrosion cracking.Asuggested apparatus, shown in Fig.X1.1, meets these requirements. Design details of this appara-tus are given in Appendix X1.7. Reagents7.1 Purity of ReagentsReagent grade chemicals shall beused in all tests. Unless otherwise indicated, it is in
24、tended thatall reagents shall conform to the specifications of the Commit-tee on Analytical Reagents of the American Chemical Society,where such specifications are available.7Other grades may beused, provided it is first ascertained that the reagent is ofsufficiently high purity to permit its use wi
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