ASTM E2152-2001(2006) Standard Practice for Computing the Colors of Fluorescent Objects from Bispectral Photometric Data《由双谱光度学数据得到的荧光物颜色计算的标准操作规程》.pdf
《ASTM E2152-2001(2006) Standard Practice for Computing the Colors of Fluorescent Objects from Bispectral Photometric Data《由双谱光度学数据得到的荧光物颜色计算的标准操作规程》.pdf》由会员分享,可在线阅读,更多相关《ASTM E2152-2001(2006) Standard Practice for Computing the Colors of Fluorescent Objects from Bispectral Photometric Data《由双谱光度学数据得到的荧光物颜色计算的标准操作规程》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E 2152 01 (Reapproved 2006)Standard Practice forComputing the Colors of Fluorescent Objects fromBispectral Photometric Data1This standard is issued under the fixed designation E 2152; the number immediately following the designation indicates the year oforiginal adoption or, in the case
2、 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.INTRODUCTIONThe fundamental procedure for evaluating the color of a fluorescent specimen is to obtain b
3、ispectralphotometric data for specified irradiating and viewing geometries, and from these data to computetristimulus values based on a CIE (International Commission on Illumination) standard observer anda CIE standard illuminant. Procedures for such computation are contained in this practice. Thisp
4、ractice also contains procedures for computing illuminant-specific spectral radiance factor valuesfrom illuminant-independent bispectral photometric data.1. Scope1.1 This practice provides the values and practical compu-tation procedures needed to obtain tristimulus values, desig-nated X, Y, Z and X
5、10,Y10,Z10for the CIE 1931 and 1964observers, respectively, from bispectral photometric data forthe specimen. Procedures for obtaining such bispectral photo-metric data are contained in Practice E 2153.1.2 Procedures for conversion of results to color spaces thatare part of the CIE system, such as C
6、IELAB and CIELUV arecontained in Practice E 308.1.3 This standard may involve hazardous materials, opera-tions, and equipment. This standard does not purport toaddress all of the safety concerns, if any, associated with itsuse. It is the responsibility of the user of this standard toestablish approp
7、riate safety and health practices and deter-mine the applicability of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E 284 Terminology of AppearanceE 308 Practice for Computing the Colors of Objects byUsing the CIE SystemE 2153 Practice for Obtaining Bispectral Photom
8、etric Datafor Evaluation of Fluorescent Color2.2 CIE Standards:CIE Publication 15.2, Colorimetry32.3 ISO Standards:ISO 11476 Paper and BoardDetermination of CIE-Whiteness, C/2 Degrees43. Terminology3.1 DefinitionsThe definitions contained in TerminologyE 284 are applicable to this practice.3.2 Defin
9、itions of Terms Specific to This Standard:3.2.1 bispectrometer, nan optical instrument equippedwith a source of irradiation, two monochromators, and adetection system, such that a specimen can be measured atindependently-controlled irradiation and viewing wavelengths.The bispectrometer is designed t
10、o allow for calibration toprovide quantitative determination of the bispectral radiation-transfer properties of the specimen.(5)NOTE 1Typically, a reference detection system monitors the radiationincident on the specimen. This reference detection system serves tocompensate for both temporal and spec
11、tral variations in the flux incidentupon the specimen, by normalization of readings from the instrumentsemission detection system.3.2.2 diagonal elements, nelements of a bispectral matrixfor which irradiation and viewing wavelengths are equal.3.2.3 fluorescence, nthis standard uses the term “fluores
12、-cence” as a general term, including both true fluorescence(with a luminescent decay time of less than 10-8s) and1This practice is under the jurisdiction of ASTM Committee E12 on Color andAppearance and is the direct responsibility of Subcommittee E12.05 on Fluores-cence.Current edition approved Dec
13、. 1, 2006. Published December 2006. Originallyapproved in 2001. Last previous edition approved in 2001 as E 2152 - 01.2For 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 t
14、o the standards Document Summary page onthe ASTM website.3Available from U.S. National Committee of the CIE (International Commissionon Illumination), C/o Thomas M. Lemons, TLA-Lighting Consultants, Inc., 7 PondSt., Salem, MA 01970, http:/www.cie-usnc.org.4Available from American National Standards
15、Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036, http:/www.ansi.org.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.phosphorescence with a delay time short enough to be indis-tinguishable from fluorescence for the purp
16、ose of colorimetry.3.2.4 off-diagonal element, nany element of a bispectralmatrix for which irradiation and viewing wavelengths are notequal.4. Summary of Practice4.1 ProceduresProcedures are given for computing frombispectral photometric measurements the CIE tristimulus val-ues X, Y, Z for the CIE
17、1931 standard observer and the CIE1964 supplementary standard observer. While recognizing theCIE recommendation of numerical integration at 1 nm intervals(in Publication 15.2) as the basic definition, this practice islimited in scope to measurements and calculations usingspectral intervals greater t
18、han or equal to 5 nm.4.2 CalculationsCIE tristimulus values X, Y, Z or X10,Y10,Z10are calculated by numerical summation of the prod-ucts of weighting factors for selected illuminants and observerswith the bispectral Donaldson radiance factor of the specimen.The tristimulus values so calculated may b
19、e converted tocoordinates in a more nearly uniform color space such asCIELAB or CIELUV.5. Significance and Use5.1 The bispectral or two-monochromator method is thedefinitive method for the determination of the generalradiation-transfer properties of fluorescent specimens (4).Inthis method, the measu
20、ring instrument is equipped with twoseparate monochromators. The first, the irradiation monochro-mator, irradiates the specimen with monochromatic light. Thesecond, the viewing monochromator, analyzes the radiationleaving the specimen. A two-dimensional array of bispectralphotometric values is obtai
21、ned by setting the irradiationmonochromator at a series of fixed wavelengths () in theultraviolet and visible range, and for each , using the viewingmonochromator to record readings for each wavelength (l) inthe visible range. The resulting array, once properly corrected,is known as the Donaldson ma
22、trix, and the value of eachelement (,l) of this array is here described as the Donaldsonradiance factor (D(,l). The Donaldson radiance factor is aninstrument- and illuminant-independent photometric propertyof the specimen, and can be used to calculate its color for anydesired illuminant and observer
23、. The advantage of this methodis that it provides a comprehensive characterization of thespecimens radiation-transfer properties, without the inaccura-cies associated with source simulation and various methods ofapproximation.6. Procedure6.1 Selecting Standard ObserverSelect standard observeraccordi
24、ng to the guidelines of Practice E 308.6.2 Selecting IlluminantsSelect illuminants that are simi-lar to the light under which the objects will be viewed or forwhich their colors will be specified or evaluated. In general,follow the recommendations of Practice E 308. For fluorescentsamples, however,
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