ASTM E1172-1987(2011) Standard Practice for Describing and Specifying a Wavelength-Dispersive X-Ray Spectrometer 《波长扩散X射线分光仪的描述和规定的标准实施规程》.pdf
《ASTM E1172-1987(2011) Standard Practice for Describing and Specifying a Wavelength-Dispersive X-Ray Spectrometer 《波长扩散X射线分光仪的描述和规定的标准实施规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E1172-1987(2011) Standard Practice for Describing and Specifying a Wavelength-Dispersive X-Ray Spectrometer 《波长扩散X射线分光仪的描述和规定的标准实施规程》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E1172 87 (Reapproved 2011)Standard Practice forDescribing and Specifying a Wavelength-Dispersive X-RaySpectrometer1This standard is issued under the fixed designation E1172; 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 () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This practice covers the components of a wavelength-dispersive X-ray spectrometer that are basic to it
3、s operationand to the quality of its performance. It is not the intent of thispractice to specify component tolerances or performancecriteria, as these are unique for each instrument. The documentdoes, however, attempt to identify which of these are criticaland thus which should be specified.1.2 Thi
4、s 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-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use. Specific safetyhazard
5、 statements are given in 5.3.1.2 and 5.3.2.4, and inSection 7.1.3 There are several books and publications from theNational Institute of Standards and Technology2and the U.S.Government Printing Office3,4which deal with the subject ofX-ray safety. Refer also to Practice E416.52. Referenced Documents2
6、.1 ASTM Standards:5E135 Terminology Relating to Analytical Chemistry forMetals, Ores, and Related MaterialsE416 Practice for Planning and Safe Operation of a Spec-trochemical Laboratory6E876 Practice for Use of Statistics in the Evaluation ofSpectrometric Data63. Terminology3.1 For terminology relat
7、ing to X-ray spectrometry, refer toTerminology E135.4. Significance and Use4.1 This practice describes the essential components of awavelength-dispersive X-ray spectrometer. This description ispresented so that the user or potential user may gain a cursoryunderstanding of the structure of an X-ray s
8、pectrometer sys-tem. It also provides a means for comparing and evaluatingdifferent systems as well as understanding the capabilities andlimitations of each instrument.5. Description of Equipment5.1 Types of SpectrometersX-ray spectrometers can beclassified as sequential, simultaneous, or a combinat
9、ion ofthese two (hybrid).5.1.1 Sequential SpectrometersThe sequential spectrom-eter disperses and detects secondary X rays by means of anadjustable monochromator called a goniometer. In flat-crystalinstruments, secondary X rays are emitted from the specimenand nonparallel X rays are eliminated by me
10、ans of a Soller slit(collimator). The parallel beam of X rays strikes a flatanalyzing crystal which disperses the X rays according to theirwavelengths. The dispersed X rays are then measured bysuitable detectors. Adjusting the goniometer varies the anglebetween the specimen, crystal, and detector, p
11、ermitting themeasurement of different wavelengths and therefore differentelements. Sequential instruments containing curved-crystaloptics are less common. This design substitutes curved for flatcrystals and entrance and exit slits for collimators.5.1.2 Simultaneous SpectrometersSimultaneous spec-tro
12、meters use separate monochromators to measure each ele-ment. These instruments are for the most part of fixed1This practice is under the jurisdiction of ASTM Committee E01 on AnalyticalChemistry for Metals, Ores, and Related Materials and is the direct responsibility ofSubcommittee E01.20 on Fundame
13、ntal Practices.Current edition approved Nov. 15, 2011. Published June 2012. Originallyapproved in 1987. Last previous edition approved in 2003 as E1172 87(2003).DOI: 10.1520/E1172-87R11.2NBS Handbook, X-Ray Protection, HB76, and NBS Handbook 111, ANSIN43.2-1971, available from National Institute of
14、Standards and Technology,Gaithersburg, MD 20899.3Radiation Safety Recommendations for X-Ray Diffraction and SpectrographicEquipment, No. MORP 68-14, 1968, available from U.S. Department of Health,Education, and Welfare, Rockville, MD 20850.4U.S. Government Handbook 93, Safety Standards for Non-Medic
15、al X-Ray andSealed Gamma-Ray Sources, Part 1, General, Superintendent of Documents,available from U.S. Government Printing Office, Washington, DC 22025.5For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMSta
16、ndards volume information, refer to the standards Document Summary page onthe ASTM website.6Withdrawn. The last approved version of this historical standard is referencedon www.astm.org.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States
17、.configuration, although some simultaneous instruments have ascanning channel with limited function. A typical monochro-mator consists of an entrance slit, a curved (focusing) analyz-ing crystal, an exit slit, and a suitable detector. Secondary Xrays pass through the entrance slit and strike the ana
18、lyzingcrystal, which diffracts the wavelength of interest and focusesit through the exit slit where it is measured by the detector.Some simultaneous instruments use flat crystals, but this is lesscommon.5.1.3 Hybrid SpectrometersHybrid spectrometers com-bine features found in sequential and simultan
19、eous instru-ments. They have both fixed channels and one or more fullyfunctional goniometers.5.2 Spectrometer Environment:5.2.1 Temperature StabilizationA means for stabilizingthe temperature of the spectrometer shall be provided. Thedegree of temperature control shall be specified by the manu-factu
20、rer. Temperature stability directly affects instrument sta-bility.5.2.2 Optical Path:5.2.2.1 A vacuum path is generally preferred, especially forthe analysis of light elements (long wavelengths). Instrumentscapable of vacuum operation shall have a vacuum gage toindicate vacuum level. An airlock mech
21、anism shall also beprovided to pump down the specimen chamber before openingit to the spectrometer. Pump down time shall be specified bythe manufacturer.5.2.2.2 A helium path is recommended when light elementanalysis is required and the specimen (such as a liquid) wouldbe disturbed by a vacuum. Inst
22、ruments equipped for heliumoperation shall have an airlock for flushing the specimenchamber with helium before introducing the specimen into thespectrometer. Helium flushing time shall be specified by themanufacturer. The manufacturer shall also provide a means foraccurately controlling the pressure
23、 of the helium within thespectrometer.5.2.2.3 An air path is an option when the instrument is notequipped for vacuum or helium operation. Light elementanalysis and some lower detection limits are sacrificed whenoperating with an air optical path.5.3 ExcitationA specimen is excited by X rays generate
24、dby an X-ray tube which is powered by a high voltage generatorand is usually cooled by circulating water. The intensity of thevarious wavelengths of X rays striking the specimen is variedby changing the power settings to the tube or by inserting filtersinto the beam path.5.3.1 X-Ray TubeThe X-ray tu
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