ASTM E415-1999a(2005) Standard Test Method for Optical Emission Vacuum Spectrometric Analysis of Carbon and Low-Alloy Steel《碳和低合金钢光辐射真空光谱测定分析的标准试验方法》.pdf
《ASTM E415-1999a(2005) Standard Test Method for Optical Emission Vacuum Spectrometric Analysis of Carbon and Low-Alloy Steel《碳和低合金钢光辐射真空光谱测定分析的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E415-1999a(2005) Standard Test Method for Optical Emission Vacuum Spectrometric Analysis of Carbon and Low-Alloy Steel《碳和低合金钢光辐射真空光谱测定分析的标准试验方法》.pdf(9页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 415 99a (Reapproved 2005)Standard Test Method forOptical Emission Vacuum Spectrometric Analysis of Carbonand Low-Alloy Steel1This standard is issued under the fixed designation E 415; the number immediately following the designation indicates the year oforiginal adoption or, in the ca
2、se 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 simultaneous determinationof 20 alloying and residual element
3、s in carbon and low-alloysteels in the concentration ranges shown (Note 1).Concentration Range, %Element Applicable Range, %AQuantitative Range, %BAluminum 0 to 0.075 0.02 to 0.075Arsenic 0 to 0.1 0.05 to 0.1Boron 0 to 0.007 0.002 to 0.007Calcium 0 to 0.003 0.001 to 0.003Carbon 0 to 1.1 0.08 to 1.1C
4、hromium 0 to 2.25 0.02 to 2.25Cobalt 0 to 0.18 0.008 to 0.18Copper 0 to 0.5 0.04 to 0.5Manganese 0 to 2.0 0.10 to 2.0Molybdenum 0 to 0.6 0.03 to 0.6Nickel 0 to 5.0 0.02 to 5.0Niobium 0 to 0.085 0.02 to 0.085Nitrogen 0 to 0.015 0.004 to 0.015Phosphorous 0 to 0.085 0.02 to 0.085Silicon 0 to 1.15 0.07
5、to 1.15Sulfur 0 to 0.055 0.01 to 0.055Tin 0 to 0.045 0.01 to 0.045Titanium 0 to 0.2 0.004 to 0.2Vanadium 0 to 0.3 0.004 to 0.3Zirconium 0 to 0.05 0.02 to 0.05AApplicable range in accordance with Guide E 1763 for results reported inaccordance with Practice E 1950.BQuantitative range in accordance wit
6、h Practice E 1601.NOTE 1The concentration ranges of the elements listed have beenestablished through cooperative testing2of reference materials. Included,in addition to the original data of Test Method E 415 71, are data fromcooperative testing of a broader range of reference materials to expand the
7、element concentration ranges.1.2 This test method covers analysis of specimens having adiameter adequate to overlap the bore of the spark standopening (to effect an argon seal). The specimen thicknessshould be between 10 and 38 mm.1.3 This test method covers the routine control analysis ofpreliminar
8、y and ladle tests from either basic oxygen, open-hearth, or electric furnaces and analysis of processed material.It is designed for either chill-cast or rolled and forged speci-mens. The reference materials and specimens should be ofsimilar metallurgical condition and composition.1.4 This standard d
9、oes 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 Documents2.1 ASTM St
10、andards:3E30 Test Methods for Chemical Analysis of Steel, CastIron, Open-Hearth Iron, and Wrought Iron4E 135 Terminology Relating to Analytical Chemistry forMetals, Ores, and Related MaterialsE 158 Practice for Fundamental Calculations to ConvertIntensities into Concentrations in Optical Emission Sp
11、ec-trochemical Analysis4E 305 Practice for Establishing and Controlling Spectro-chemical Analytical CurvesE 350 Test Methods for Chemical Analysis of Carbon Steel,Low-Alloy Steel, Silicon Electrical Steel, Ingot Iron, andWrought IronE 406 Practice for Using Controlled Atmospheres in Spec-trochemical
12、 AnalysisE 1019 Test Methods for Determination of Carbon, Sulfur,Nitrogen, and Oxygen in Steel and in Iron, Nickel, andCobalt AlloysE 1329 Practice for Verification and Use of Control Chartsin Spectrochemical AnalysisE 1601 Practice for Conducting an Interlaboratory Study toEvaluate the Performance
13、of an Analytical MethodE 1763 Guide for Interpretation and Use of Results fromInterlaboratory Testing of Chemical Analysis MethodsE 1806 Practice for Sampling Steel and Iron for Determi-nation of Chemical Composition1This test method is under the jurisdiction of ASTM Committee E01 onAnalytical Chemi
14、stry for Metals, Ores and Related Materials and is the directresponsibility of Subcommittee E01.01 on Iron, Steel, and Ferroalloys.Current edition approved Jan. 1, 2005. Published March 2005. Originallyapproved in 1971. Last previous edition approved in 1999 as E 415 99a.2Supporting data have been f
15、iled at ASTM International Headquarters and maybe obtained by requesting Research Report RR: E2-1004.3For 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 D
16、ocument Summary page onthe ASTM website.4Withdrawn.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.E 1950 Practice for Reporting Results from Methods ofChemical Analysis3. Terminology3.1 For definitions of terms used in this test met
17、hod, refer toTerminology E 135.4. Summary of Test Method4.1 The most sensitive lines of arsenic, boron, carbon,nitrogen, phosphorus, sulfur, and tin lie in the vacuum ultra-violet region. The absorption of the radiation by air in thisregion is overcome by evacuating the spectrometer and flush-ing th
18、e spark chamber with argon. A capacitor discharge isproduced between the flat, ground surface of the disk specimenand a conically shaped electrode. The discharge is terminatedat a predetermined intensity time integral of a selected ironline, or at a predetermined time, and the relative radiantenergi
19、es or concentrations of the analytical lines are recorded.5. Significance and Use5.1 This test method for the spectrometric analysis of metalsand alloys is primarily intended to test such materials forcompliance with compositional specifications. It is assumedthat all who use this test method will b
20、e analysts capable ofperforming common laboratory procedures skillfully andsafely. It is expected that work will be performed in a properlyequipped laboratory.6. Apparatus6.1 Sample Preparation Equipment:6.1.1 Sample Mold, capable of producing castings that arehomogeneous and free from voids and por
21、osity. Refer toPractice E 1806 for steel sampling procedures. The followingmold types have been found to produce acceptable samples:6.1.1.1 Cast Iron MoldA mold 70 mm (234 in.) deep, 64mm (212 in.) in diameter at the top of the mold, and 57 mm(214 in.) in diameter at the bottom of the mold. The wall
22、thickness of the mold is approximately 32 mm (114 in.).6.1.1.2 Refractory Mold RingA mold that has a minimuminside diameter of 32 mm (114 in.) and a minimum height of 25mm (1 in.). The ring is placed on a flat surface of a copper plateapproximately 50 mm (2 in.) thick.6.1.1.3 Book-Type Steel or Copp
23、er Mold, to produce achill-cast disk 64 mm (212 in.) in diameter and 13 mm (12 in.)thick.6.2 Excitation Source, capable of providing a triggeredcapacitor discharge having source parameters meeting therequirements of 11.1.6.3 Spark Chamber, automatically flushed with argon. Thespark chamber shall be
24、mounted directly on the spectrometer,and shall be provided with a spark stand to hold a flat specimenand a lower electrode of rod form.NOTE 2Clean the excitation chamber when the counter electrode isreplaced. Clean the lens or protective window after approximately 200 to300 excitations to minimize t
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