ASTM E2153-01(2017)
(Practice)Standard Practice for Obtaining Bispectral Photometric Data for Evaluation of Fluorescent Color
Standard Practice for Obtaining Bispectral Photometric Data for Evaluation of Fluorescent Color
SIGNIFICANCE AND USE
5.1 The bispectral or two-monochromator method is the definitive method for the determination of the general (illuminant-independent) radiation-transfer properties of fluorescent specimens (2). The Donaldson radiance factor is an instrument- and illuminant-independent photometric property of the specimen, and can be used to calculate its color for any desired illuminant and observer. The advantage of this method is that it provides a comprehensive characterization of the specimen’s radiation-transfer properties, without the inaccuracies associated with source simulation and various methods of approximation.
5.2 This practice provides a procedure for selecting the operating parameters of bispectrometers used for providing data of the desired precision. It also provides for instrument calibration by means of material standards, and for selection of suitable specimens for obtaining precision in the measurements.
SCOPE
1.1 This practice addresses the instrumental measurement requirements, calibration procedures, and material standards needed for obtaining precise bispectral photometric data for computing the colors of fluorescent specimens.
1.2 This practice lists the parameters that must be specified when bispectral photometric measurements are required in specific methods, practices, or specifications.
1.3 This practice applies specifically to bispectrometers, which produce photometrically quantitative bispectral data as output, useful for the characterization of appearance, as opposed to spectrofluorimeters, which produce instrument-dependent bispectral photometric data as output, useful for the purpose of chemical analysis.
1.4 The scope of this practice is limited to the discussion of object-color measurement under reflection geometries; it does not include provisions for the analogous characterization of specimens under transmission geometries.
1.5 This standard may involve hazardous materials, operations, and equipment. This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.
1.6 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
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Designation: E2153 − 01 (Reapproved 2017)
Standard Practice for
Obtaining Bispectral Photometric Data for Evaluation of
Fluorescent Color
This standard is issued under the fixed designation E2153; the number immediately following the designation indicates the year of
original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. A
superscript epsilon (´) indicates an editorial change since the last revision or reapproval.
INTRODUCTION
The fundamental procedure for evaluating the color of a fluorescent specimen is to obtain bispectral
photometric data for specified irradiating and viewing geometries, and from these data to compute
tristimulus values based on a CIE (International Commission on Illumination) standard observer and
a CIE standard illuminant. The considerations involved and the procedures used to obtain precise
bispectral photometric data are contained in this practice. Values and procedures for computing CIE
tristimulus values from bispectral photometric data are contained in Practice E2152. General
considerations regarding the selection of appropriate irradiating and viewing geometries are contained
in Guide E179; further specific considerations applicable to fluorescent specimens are contained in this
practice.
1. Scope establish appropriate safety, health, and environmental prac-
tices and determine the applicability of regulatory limitations
1.1 This practice addresses the instrumental measurement
prior to use.
requirements, calibration procedures, and material standards
1.6 This international standard was developed in accor-
needed for obtaining precise bispectral photometric data for
dance with internationally recognized principles on standard-
computing the colors of fluorescent specimens.
ization established in the Decision on Principles for the
1.2 This practice lists the parameters that must be specified
Development of International Standards, Guides and Recom-
when bispectral photometric measurements are required in
mendations issued by the World Trade Organization Technical
specific methods, practices, or specifications.
Barriers to Trade (TBT) Committee.
1.3 This practice applies specifically to bispectrometers,
2. Referenced Documents
which produce photometrically quantitative bispectral data as
output, useful for the characterization of appearance, as op- 2
2.1 ASTM Standards:
posed to spectrofluorimeters, which produce instrument-
E179 Guide for Selection of Geometric Conditions for
dependent bispectral photometric data as output, useful for the
Measurement of Reflection and Transmission Properties
purpose of chemical analysis.
of Materials
1.4 The scope of this practice is limited to the discussion of E284 Terminology of Appearance
E925 Practice for Monitoring the Calibration of Ultraviolet-
object-color measurement under reflection geometries; it does
not include provisions for the analogous characterization of Visible Spectrophotometers whose Spectral Bandwidth
does not Exceed 2 nm
specimens under transmission geometries.
E958 Practice for Estimation of the Spectral Bandwidth of
1.5 This standard may involve hazardous materials,
Ultraviolet-Visible Spectrophotometers
operations, and equipment. This standard does not purport to
E1164 Practice for Obtaining Spectrometric Data for Object-
address all of the safety concerns, if any, associated with its
Color Evaluation
use. It is the responsibility of the user of this standard to
E1341 Practice for Obtaining Spectroradiometric Data from
Radiant Sources for Colorimetry
This practice is under the jurisdiction of ASTM Committee E12 on Color and
Appearance and is the direct responsibility of Subcommittee E12.05 on Fluores-
cence. For referenced ASTM standards, visit the ASTM website, www.astm.org, or
Current edition approved Nov. 1, 2017. Published November 2017. Originally contact ASTM Customer Service at service@astm.org. For Annual Book of ASTM
approved in 2001. Last previous edition approved in 2011 as E2153 – 01 (2011). Standards volume information, refer to the standard’s Document Summary page on
DOI: 10.1520/E2153-01R17. the ASTM website.
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E2153 − 01 (2017)
E2152 Practice for Computing the Colors of Fluorescent 3.2.6 diagonal fluorescence, n—the contribution of fluores-
Objects from Bispectral Photometric Data cence to diagonal values of a bispectral radiance factor matrix,
due to the finite range of actual irradiation and viewing
2.2 NPL Publications:
wavelengths when nominal irradiation and viewing wave-
NPL Report MOM 12 Problems of spectrofluorimetric stan-
lengths are equal (µ = λ).
dards for reflection and colorimetric use
3.2.7 discrete bispectral radiance factor, B(µ,λ), n—the
2.3 CIE Publications:
matrix defined for specified irradiation and viewing bandpass
CIE No. 38-1977 Radiometric and Photometric Characteris-
functions, and viewing-wavelength sampling interval (Δλ) as
tics of Materials and Their Measurement
follows:
CIE 15 Colorimetry
CIE 182:2007: Calibration Methods and Photoluminescent
H
B~µ,λ









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