ASTM E 1655 : 2017 : R2024
Current
The latest, up-to-date edition.
Standard Practices for Infrared Multivariate Quantitative Analysis
Hardcopy , PDF
English
01-11-2024
Committee |
E 13
|
DocumentType |
Standard Practice
|
Pages |
30
|
PublisherName |
American Society for Testing and Materials
|
Status |
Current
|
Supersedes |
1.1These practices cover a guide for the multivariate calibration of infrared spectrometers used in determining the physical or chemical characteristics of materials. These practices are applicable to analyses conducted in the near infrared (NIR) spectral region (roughly 780 nm to 2500 nm) through the mid infrared (MIR) spectral region (roughly 4000 cm−1 to 400 cm−1).
Note 1:While the practices described herein deal specifically with mid- and near-infrared analysis, much of the mathematical and procedural detail contained herein is also applicable for multivariate quantitative analysis done using other forms of spectroscopy. The user is cautioned that typical and best practices for multivariate quantitative analysis using other forms of spectroscopy may differ from practices described herein for mid- and near-infrared spectroscopies.
1.2Procedures for collecting and treating data for developing IR calibrations are outlined. Definitions, terms, and calibration techniques are described. Criteria for validating the performance of the calibration model are described.
1.3The implementation of these practices require that the IR spectrometer has been installed in compliance with the manufacturer's specifications. In addition, it assumes that, at the times of calibration and of validation, the analyzer is operating at the conditions specified by the manufacturer.
1.4These practices cover techniques that are routinely applied in the near and mid infrared spectral regions for quantitative analysis. The practices outlined cover the general cases for coarse solids, fine ground solids, and liquids. All techniques covered require the use of a computer for data collection and analysis.
1.5These practices provide a questionnaire against which multivariate calibrations can be examined to determine if they conform to the requirements defined herein.
1.6For some multivariate spectroscopic analyses, interferences and matrix effects are sufficiently small that it is possible to calibrate using mixtures that contain substantially fewer chemical components than the samples that will ultimately be analyzed. While these surrogate methods generally make use of the multivariate mathematics described herein, they do not conform to procedures described herein, specifically with respect to the handling of outliers. Surrogate methods may indicate that they make use of the mathematics described herein, but they should not claim to follow the procedures described herein.
1.7The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard.
1.8This 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.
1.9This 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.
ASTM D 7806 : 2020 | Standard Test Method for Determination of Biodiesel (Fatty Acid Methyl Ester) and Triglyceride Content in Diesel Fuel Oil Using Mid-Infrared Spectroscopy (FTIR Transmission Method) |
ASTM D 8554 : 2024 : REV A | Standard Test Method for Determination of the Degree of Unsaturation of Butyl Rubber by FTIR and Multivariate Analysis |
ASTM D 6756 : 2017 | Standard Test Method for Determination of the Red Dye Concentration and Estimation of the ASTM Color of Diesel Fuel and Heating Oil Using a Portable Visible Spectrophotometer |
ASTM E 2891 : 2020 | Standard Guide for Multivariate Data Analysis in Pharmaceutical Development and Manufacturing Applications |
ASTM D 6277 : 2007 : R2022 | Standard Test Method for Determination of Benzene in Spark-Ignition Engine Fuels Using Mid Infrared Spectroscopy |
ASTM D 7889 : 2021 | Standard Test Method for Field Determination of In-Service Fluid Properties Using IR Spectroscopy |
ASTM D 6342 : 2022 | Standard Practice for Polyurethane Raw Materials: Determining Hydroxyl Number of Polyols by Near Infrared (NIR) Spectroscopy |
ASTM E 168 : 2016 : R2023 | Standard Practices for General Techniques of Infrared Quantitative Analysis |
ASTM D 7797 : 2023 | Standard Test Method for Determination of the Fatty Acid Methyl Esters Content of Aviation Turbine Fuel Using Flow Analysis by Fourier Transform Infrared Spectroscopy—Rapid Screening Method |
ASTM E 1865 : 1997 : R2021 | Standard Guide for Open-Path Fourier Transform Infrared (OP/FT-IR) Monitoring of Gases and Vapors in Air |
ASTM D 8321 : 2022 | Standard Practice for Development and Validation of Multivariate Analyses for Use in Predicting Properties of Petroleum Products, Liquid Fuels, and Lubricants based on Spectroscopic Measurements |
ASTM C 1307 : 2021 | Standard Test Method for Plutonium Assay by Plutonium (III) Diode Array Spectrophotometry |
ASTM D 7825 : 2024 | Standard Practice for Generating a Process Stream Property Value through Application of a Process Stream Analyzer |
ASTM D 7371 : 2014 : R2022 | Standard Test Method for Determination of Biodiesel (Fatty Acid Methyl Esters) Content in Diesel Fuel Oil Using Mid Infrared Spectroscopy (FTIR-ATR-PLS Method) |
ASTM D 7963 : 2022 | Standard Test Method for Determination of Contamination Level of Fatty Acid Methyl Esters in Middle Distillate and Residual Fuels Using Flow Analysis by Fourier Transform Infrared Spectroscopy—Rapid Screening Method |
ASTM E 1982 : 1998 : R2021 | Standard Practice for Open-Path Fourier Transform Infrared (OP/FT-IR) Monitoring of Gases and Vapors in Air |
ASTM D 6122 : 2023 | Standard Practice for Validation of the Performance of Multivariate Online, At-Line, Field and Laboratory Infrared Spectrophotometer, and Raman Spectrometer Based Analyzer Systems |
ASTM D 6621 : 2021 | Standard Practice for Performance Testing of Process Analyzers for Aromatic Hydrocarbon Materials |
ASTM E 2898 : 2020 : REV A | Standard Guide for Risk-Based Validation of Analytical Methods for PAT Applications |
ASTM D 7058 : 2019 | Standard Test Method for Determination of the Red Dye Concentration and Estimation of Saybolt Color of Aviation Turbine Fuels and Kerosine Using a Portable Visible Spectrophotometer |
ASTM E 1866 : 1997 : R2021 | Standard Guide for Establishing Spectrophotometer Performance Tests |
ASTM D 7235 : 2021 : REV A | Standard Guide for Establishing a Linear Correlation Relationship Between Analyzer and Primary Test Method Results Using Relevant ASTM Standard Practices |
Access your standards online with a subscription
Features
-
Simple online access to standards, technical information and regulations.
-
Critical updates of standards and customisable alerts and notifications.
-
Multi-user online standards collection: secure, flexible and cost effective.