ASTM E1019-2003 Standard Test Methods for Determination of Carbon Sulfur Nitrogen and Oxygen in Steel and in Iron Nickel and Cobalt Alloys《钢、铁、镍和钴合金中碳、硫、氮和氧含量测定的标准试验方法》.pdf
《ASTM E1019-2003 Standard Test Methods for Determination of Carbon Sulfur Nitrogen and Oxygen in Steel and in Iron Nickel and Cobalt Alloys《钢、铁、镍和钴合金中碳、硫、氮和氧含量测定的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1019-2003 Standard Test Methods for Determination of Carbon Sulfur Nitrogen and Oxygen in Steel and in Iron Nickel and Cobalt Alloys《钢、铁、镍和钴合金中碳、硫、氮和氧含量测定的标准试验方法》.pdf(21页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 1019 03Standard Test Methods forDetermination of Carbon, Sulfur, Nitrogen, and Oxygen inSteel and in Iron, Nickel, and Cobalt Alloys1This standard is issued under the fixed designation E 1019; the number immediately following the designation indicates the year oforiginal adoption or,
2、in the case 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.This standard has been approved for use by agencies of the Department of Defense.1. Scope1.1
3、 These test methods2cover the determination of carbon,sulfur, nitrogen, and oxygen, in steel and in iron, nickel, andcobalt alloys having chemical compositions within the follow-ing limits:Element Concentration Range, %Aluminum 0.001 to 18.00Antimony 0.002 to 0.03Arsenic 0.0005 to 0.10Beryllium 0.00
4、1 to 0.05Bismuth 0.001 to 0.50Boron 0.0005 to 1.00Cadmium 0.001 to 0.005Calcium 0.001 to 0.05Carbon 0.001 to 4.50Cerium 0.005 to 0.05Chromium 0.005 to 35.00Cobalt 0.01 to 75.0Columbium 0.002 to 6.00Copper 0.005 to 10.00Hydrogen 0.0001 to 0.0030Iron 0.01 to 100.0Lead 0.001 to 0.50Magnesium 0.001 to 0
5、.05Manganese 0.01 to 20.0Molybdenum 0.002 to 30.00Nickel 0.005 to 84.00Nitrogen 0.0005 to 0.50Oxygen 0.0005 to 0.03Phosphorus 0.001 to 0.90Selenium 0.001 to 0.50Silicon 0.001 to 6.00Sulfur (Metal ReferenceMaterials)0.002 to 0.35Sulfur (Potassium Sulfate) 0.001 to 0.600Tantalum 0.001 to 10.00Telluriu
6、m 0.001 to 0.35Tin 0.002 to 0.35Titanium 0.002 to 5.00Tungsten 0.005 to 21.00Vanadium 0.005 to 5.50Zinc 0.005 to 0.20Zirconium 0.005 to 2.5001.2 The test methods appear in the following order:SectionsCarbon, Total, by the CombustionInstrumental MeasurementMethod 10-20Nitrogen by the Inert Gas Fusion
7、Thermal Conductivity Method 32-42Oxygen by the Inert Gas Fusion Method 43-54Sulfur by the Combustion-Infrared Absorption Method (Calibrationwith Metal Reference Materials) 55-65Sulfur by the CombustionInfrared Absorption Method (PotassiumSulfate Calibration) 21-311.3 This standard does not purport t
8、o 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. Specific hazardsstatements are given in Section 6.
9、2. Referenced Documents32.1 ASTM Standards:E29 Practice for Using Significant Digits in Test Data toDetermine Conformance with SpecificationsE50 Practices for Apparatus, Reagents, and Safety Precau-tions for Chemical Analysis of MetalsE 135 Terminology Relating to Analytical Chemistry forMetals, Ore
10、s, and Related MaterialsE 1601 Practice for Conducting an Interlaboratory Study toEvaluate the Performance of an Analytical MethodE 1806 Practice for Sampling Steel and Iron for Determi-nation of Chemical CompositionE 173 Practice for Conducting Interlaboratory Studies ofMethods for Chemical Analysi
11、s of Metals3. Terminology3.1 For definition of terms used in this test method, refer toTerminology E 135.1These test methods are under the jurisdiction of ASTM Committee E01 onAnalytical Chemistry for Metals, Ores and Related Materials and are the directresponsibility of Subcommittee E01.01 on Iron,
12、 Steel, and Ferroalloys.Current edition approved Oct. 1, 2003. Published November 2003. Originallyapproved in 1984. Last previous edition approved in 2002 as E 1019 02.2Some of these test methods represent revisions of test methods covered byASTM Methods E 350, E 351, E 352, E 353, and E 354 which a
13、ppear in the AnnualBook of ASTM Standards, Vol 03.05.3For 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 Document Summary page onthe ASTM website.1Copyrig
14、ht ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.4. Significance and Use4.1 These test methods for the chemical analysis of metalsand alloys are primarily intended to test such materials forcompliance with compositional specifications. It is
15、assumedthat all who use these test methods will be trained analysts,capable of performing common laboratory procedures skill-fully and safely. It is expected that work will be performed ina properly equipped laboratory.5. Apparatus and Reagents5.1 Apparatus and reagents required for each determinati
16、onare listed in separate sections preceding the procedure.6. Hazards6.1 For hazards to be observed in the use of certain reagentsin this test method, refer to Practices E50.6.2 Use care when handling hot crucibles and operatingfurnaces to avoid personal injury by either burn or electricalshock.7. Sa
17、mpling7.1 For procedures for sampling the materials, refer to thoseparts of Practice E 1806.8. Rounding Calculated Values8.1 Calculated values shall be rounded to the desired num-ber of places as directed in Practice E29.9. Interlaboratory Studies9.1 These test methods have been evaluated in accorda
18、ncewith Practice E 173 (discontinued 1997). The ReproducibilityR2of E 173 corresponds to the Reproducibility Index R ofE 1601. The Repeatability R1of E 173 corresponds to theRepeatability Index r of E 1601.TOTAL CARBON BY THE COMBUSTIONINSTRUMENTAL MEASUREMENT METHOD10. Scope10.1 This test method co
19、vers the determination of carbon inconcentrations from 0.005 % to 4.5 %.11. Summary of Test Method11.1 The carbon is converted to carbon dioxide by combus-tion in a stream of oxygen.11.1.1 Thermal Conductivity MethodThe carbon dioxideis absorbed on a suitable grade of zeolite, released by heatingthe
20、 zeolite, and swept by helium or oxygen into a chromato-graphic column. Upon elution, the amount of carbon dioxide ismeasured in a thermistor-type conductivity cell. Refer to Fig. 1.11.1.2 Infrared (IR) Absorption, Method A The amount ofcarbon dioxide is measured by infrared (IR) absorption. Car-bon
21、 dioxide (CO2) absorbs IR energy at a precise wavelengthwithin the IR spectrum. Energy of this wavelength is absorbedas the gas passes through a cell body in which the IR energy istransmitted. All other IR energy is eliminated from reachingthe detector by a precise wavelength filter. Thus, the absor
22、ptionof IR energy can be attributed to only CO2and its concentra-tion is measured as changes in energy at the detector. One cellis used as both a reference and a measure chamber. Totalcarbon, as CO2, is monitored and measured over a period oftime. Refer to Fig. 2.11.1.3 Infrared (IR) Absorption, Met
23、hod B The detectorconsists of an IR energy source, a separate measure chamberand reference chamber, and a diaphragm acting as one plate ofa parallel plate capacitor. During specimen combustion, theflow of CO2with its oxygen gas carrier is routed through themeasure chamber while oxygen alone passes t
24、hrough thereference chamber. Energy from the IR source passes throughboth chambers, simultaneously arriving at the diaphragm(capacitor plate). Part of the IR energy is absorbed by the CO2present in the measure chamber while none is absorbed passingthrough the reference chamber. This creates an IR en
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