ASTM E2056-2004 Standard Practice for Qualifying Spectrometers and Spectrophotometers for Use in Multivariate Analyses Calibrated Using Surrogate Mixtures《使用代用品混合物校正的多变量分析中使用的分光计和分.pdf
《ASTM E2056-2004 Standard Practice for Qualifying Spectrometers and Spectrophotometers for Use in Multivariate Analyses Calibrated Using Surrogate Mixtures《使用代用品混合物校正的多变量分析中使用的分光计和分.pdf》由会员分享,可在线阅读,更多相关《ASTM E2056-2004 Standard Practice for Qualifying Spectrometers and Spectrophotometers for Use in Multivariate Analyses Calibrated Using Surrogate Mixtures《使用代用品混合物校正的多变量分析中使用的分光计和分.pdf(10页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 2056 04Standard Practice forQualifying Spectrometers and Spectrophotometers for Usein Multivariate Analyses, Calibrated Using SurrogateMixtures1This standard is issued under the fixed designation E 2056; the number immediately following the designation indicates the year oforiginal ad
2、option or, 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.1. Scope1.1 This practice relates to the multivariate calibration ofspectrometers
3、 and spectrophotometers used in determining thephysical and chemical characteristics of materials. A detaileddescription of general multivariate analysis is given in PracticeE 1655. This standard refers only to those instances wheresurrogate mixtures can be used to establish a suitable calibra-tion
4、matrix. This practice specifies calibration and qualificationdata set requirements for interlaboratory studies (ILSs), that is,round robins, of standard test methods employing surrogatecalibration techniques that do not conform exactly to PracticesE 1655.NOTE 1For some multivariate spectroscopic ana
5、lyses, interferencesand matrix effects are sufficiently small that it is possible to calibrate usingmixtures that contain substantially fewer chemical components than thesamples that will ultimately be analyzed. While these surrogate methodsgenerally make use of the multivariate mathematics describe
6、d in PracticesE 1655, they do not conform to procedures described therein, specificallywith respect to the handling of outliers.1.2 This practice specifies how the ILS data is treated toestablish spectrometer/spectrophotometer performance qualifi-cation requirements to be incorporated into standard
7、testmethods.NOTE 2Spectrometer/spectrophotometer qualification procedures areintended to allow the user to determine if the performance of a specificspectrometer/spectrophotometer is adequate to conduct the analysis so asto obtain results consistent with the published test method precision.1.2.1 The
8、 spectroscopies used in the surrogate test methodswould include but not be limited to mid- and near-infrared,ultraviolet/visible, fluorescence and Raman spectroscopies.1.2.2 The surrogate calibrations covered in this practice are:multilinear regression (MLR), principal components regression(PCR) or
9、partial least squares (PLS) mathematics. Thesecalibration procedures are described in detail in PracticesE 1655.1.3 For surrogate test methods, this practice recommendslimitations that should be placed on calibration options that areallowed in the test method. Specifically, this practice recom-mends
10、 that the test method developer demonstrate that allcalibrations that are allowed in the test method producestatistically indistinguishable results.1.4 For surrogate test methods that reference spectrometer/spectrophotometer performance practices, such as PracticesE 275, E 387, E 388, E 579, E 925,
11、E 932, E 958, E 1421,E 1683, E 1866 or E 1944, this practice recommends thatinstrument performance data be collected as part of the ILS toestablish the relationship between spectrometer/spectrophotometer performance and test method precision.2. Referenced Documents2.1 ASTM Standards:2D 6277 Test Met
12、hod for Determination of Benzene inSpark-Ignition Engine Fuels Using Mid Infrared Spectros-copyD 6300 Practice for Determination of Precision and BiasData for Use in Test Methods for Petroleum Products andLubricantsE 131 Terminology Relating to Molecular SpectroscopyE 275 Practice for Describing and
13、 Measuring Performanceof Ultraviolet, Visible, and Near Infrared Spectrophotom-etersE 387 Test Method for Estimating Stray Radiant PowerRatio of Dispersive Spectrophotometers by the OpaqueFilter MethodE 388 Test Method for Spectral Bandwidth and WavelengthAccuracy of Fluorescence SpectrometersE 579
14、Test Method for Limit of Detection of Fluorescenceof Quinine Sulfate in SolutionE 691 Practice for Conducting an Inter-Laboratory Study toDetermine the Precision of a Test MethodE 925 Practice for Monitoring the Calibration of UltravioletVisible Spectrophotometers Whose Spectral Slit Width1This prac
15、tice is under the jurisdiction of ASTM Committee E13 on MolecularSpectroscopy and is the direct responsibility of Subcommittee E13.11 on Chemo-metrics.Current edition approved Nov. 1, 2004. Published December 2004. Originallyapproved in 1999. Last previous edition approved in 2000 as E 2056 00.2For
16、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.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700,
17、 West Conshohocken, PA 19428-2959, United States.Does Not Exceed 2nmE 932 Practice for Describing and Measuring Performanceof Dispersive Infrared SpectrometersE 958 Practice for Measuring Practical Spectral Bandwidthof Ultraviolet-Visible SpectrophotometersE 1421 Practice for Describing and Measurin
18、g Performanceof Fourier Transform Mid-Infrared (FT-MIR) Spectropho-tometers: Level Zero and Level One TestsE 1655 Practices for Infrared, Multivariate, QuantitativeAnalysisE 1683 Practice for Testing the Performance of ScanningRaman SpectrometersE 1866 Guide for Establishing Spectrophotometer Perfor
19、-mance TestsE 1944 Practice for Describing and Measuring Performanceof Laboratory Fourier Transform Near-Infrared (FT-MIR)Spectrometers: Level Zero and Level One Tests3. Terminology3.1 Definitions:3.1.1 For definitions of terms and symbols relating toinfrared, ultraviolet/visible and Raman spectrosc
20、opy, refer toTerminology E 131.3.1.2 For definitions of terms and symbols relating tomultivariate analysis, refer to Practices E 1655.3.2 Definitions of Terms Specific to This Standard:3.2.1 spectrometer/spectrophotometer qualification, ntheprocedures by which a user demonstrates that the performanc
21、eof a specific spectrometer/spectrophotometer is adequate toconduct a multivariate analysis so as to obtain precisionconsistent with that specified in the test method.3.2.2 surrogate calibration, na multivariate calibrationthat is developed using a calibration set which consists ofmixtures with pre-
22、specified and reproducible compositions thatcontain substantially fewer chemical components than thesamples that will ultimately be analyzed.3.2.3 surrogate test method, na standard test method thatis based on a surrogate calibration.4. Summary of Practice4.1 Asurrogate test method must specify the
23、composition oftwo sets of samples. One set is used to calibrate thespectrometers/spectrophotometers. The second set of samplesis used to qualify the spectrometer/spectrophotometer to per-form the analysis. The compositions of both sets are expressedin terms of weight or volume fraction depending on
24、whetherthe samples are prepared gravimetrically or volumetrically. Thecompositions of both sets should be specified in the surrogatetest method. If the surrogate test method is being used toestimate a physical property, then the test method shouldindicate what value of the property is to be assigned
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