ISO 9441:2026
(Main)Steel — Determination of niobium content — 4-(2-Pyridylazo)-resorcinol (PAR) spectrophotometric method
General Information
- Abstract
This document specifies a spectrophotometric method by using 4-(2-pyridylazo)-resorcinol (PAR) for the determination of niobium in steel. The method is applicable to all types of steel with niobium contents between 0,005 % (mass fraction) and 1,3 % (mass fraction).
- Status
- Published
- Publication Date
- 02-Aug-2026
- Technical Committee
- ISO/TC 17/SC 1 - Methods of determination of chemical composition
- Drafting Committee
- ISO/TC 17/SC 1 - Methods of determination of chemical composition
- Current Stage
- 6060 - International Standard published
- Start Date
- 03-Aug-2026
- Due Date
- 19-Oct-2026
- Completion Date
- 03-Aug-2026
Overview
ISO 9441:2026 specifies a standardized spectrophotometric method for the determination of niobium content in steel using 4-(2-pyridylazo)-resorcinol (PAR). Developed by the International Organization for Standardization (ISO), this method applies to all steel types with niobium concentrations ranging from 0.005% to 1.3% (mass fraction). By providing a precise analytical protocol, ISO 9441:2026 supports accurate niobium quantification for quality control, research, and production settings in the steel industry.
Key Topics
- Spectrophotometric Methodology: The method employs the formation of a colored complex between niobium and 4-(2-pyridylazo)-resorcinol (PAR) in a buffered medium, enabling measurement at a wavelength of approximately 550 nm.
- Applicable Niobium Range: Suitable for steel samples with niobium content between 0.005% and 1.3%, covering low alloy to high alloy and stainless steels.
- Precision and Reproducibility: Validated through international interlaboratory studies, the standard defines repeatability and reproducibility limits, allowing laboratories to benchmark their results confidently.
- Sample Preparation and Handling: Includes requirements for test portion handling, blank testing, reagent specifications, and apparatus in accordance with referenced ISO laboratory glassware standards.
- Calibration and Data Interpretation: Outlines detailed steps for calibration curve preparation using niobium standard solutions, ensuring consistent results across laboratories.
Applications
ISO 9441:2026 is essential for:
- Steel Manufacturers and Processors: Ensures reliable determination of niobium in steel products where niobium is used to enhance mechanical properties such as strength, weldability, and corrosion resistance.
- Quality Assurance Laboratories: Facilitates standardized chemical analysis for compliance, certification, and research, supporting traceability and product consistency.
- Academic and Industrial Research: Serves as a reference for metallurgical investigations, catalyst studies, and advanced materials development requiring precise niobium quantification.
- Compliance with Regulatory and Customer Specifications: Provides a harmonized methodology that aligns with international trade and procurement requirements for steel products containing niobium.
Related Standards
For effective implementation and complementary measurement procedures, the following ISO standards are referenced in ISO 9441:2026:
- ISO 648: Laboratory glassware - Single-volume pipettes
- ISO 1042: Laboratory glassware - One-mark volumetric flasks
- ISO 3696: Water for analytical laboratory use - Specification and test methods
- ISO 14284: Steel and iron - Sampling and preparation of samples for the determination of chemical composition
- ISO 5725 series: Accuracy (trueness and precision) of measurement methods and results
Practical Value
The ISO 9441:2026 standard introduces a robust, internationally-accepted method for niobium determination in steel, leveraging the sensitivity and specificity of the PAR spectrophotometric technique. Its practical value lies in:
- Standardized laboratory procedures, which foster consistency across organizations and geographies
- Reliable results for steel certification in the context of global supply chains
- Enhanced material properties assessment, critical for high-performance applications
Adopting ISO 9441:2026 in your laboratory or manufacturing facility ensures confidence in analytical data, compliance with international best practices, and support for the development of advanced steel materials.
Relations
- Effective Date
- 21-Oct-2023
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Frequently Asked Questions
ISO 9441:2026 is a standard published by the International Organization for Standardization (ISO). Its full title is "Steel — Determination of niobium content — 4-(2-Pyridylazo)-resorcinol (PAR) spectrophotometric method". This standard covers: This document specifies a spectrophotometric method by using 4-(2-pyridylazo)-resorcinol (PAR) for the determination of niobium in steel. The method is applicable to all types of steel with niobium contents between 0,005 % (mass fraction) and 1,3 % (mass fraction).
This document specifies a spectrophotometric method by using 4-(2-pyridylazo)-resorcinol (PAR) for the determination of niobium in steel. The method is applicable to all types of steel with niobium contents between 0,005 % (mass fraction) and 1,3 % (mass fraction).
ISO 9441:2026 is classified under the following ICS (International Classification for Standards) categories: 77.080.20 - Steels. The ICS classification helps identify the subject area and facilitates finding related standards.
ISO 9441:2026 has the following relationships with other standards: It is inter standard links to ISO 9441:1988. Understanding these relationships helps ensure you are using the most current and applicable version of the standard.
ISO 9441:2026 is available in PDF format for immediate download after purchase. The document can be added to your cart and obtained through the secure checkout process. Digital delivery ensures instant access to the complete standard document.
Standards Content (Sample)
International
Standard
ISO 9441
Second edition
Steel — Determination
2026-08
of niobium content —
4-(2-Pyridylazo)-resorcinol (PAR)
spectrophotometric method
Aciers — Détermination de la teneur en niobium — Méthode
spectrophotométrique au moyen de 4-(2-Pyridylazo)-résorcinol
(PAR)
Reference number
© ISO 2026
All rights reserved. Unless otherwise specified, or required in the context of its implementation, no part of this publication may
be reproduced or utilized otherwise in any form or by any means, electronic or mechanical, including photocopying, or posting on
the internet or an intranet, without prior written permission. Permission can be requested from either ISO at the address below
or ISO’s member body in the country of the requester.
ISO copyright office
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Email: copyright@iso.org
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Published in Switzerland
ii
Contents Page
Foreword .iv
1 Scope . 1
2 Normative references . 1
3 Terms and definitions . 1
4 Principle . 1
5 Reagents . 1
6 Apparatus . 2
7 Sampling and preparation of the test samples . 3
8 Procedure . 3
8.1 Test portion .3
8.2 Blank test .3
8.3 Determination .3
8.3.1 Dissolution of the test portion .3
8.3.2 Separation of the niobium .3
8.3.3 Preparation of the test solution .4
8.3.4 Formation of the coloured complex .4
8.3.5 Spectrophotometric measurements .4
8.4 Establishment of the calibration curve .4
8.4.1 Preparation of the calibration solutions .4
8.4.2 Spectrophotometric measurements .5
8.4.3 Plotting the calibration curve .5
9 Expression of results . 5
9.1 Method of calculation .5
9.2 Precision . . .6
10 Test report . 7
Annex A (informative) Additional information on the international interlaboratory test . 8
Annex B (informative) Graphical representation of precision data .10
Bibliography .11
iii
Foreword
ISO (the International Organization for Standardization) is a worldwide federation of national standards
bodies (ISO member bodies). The work of preparing International Standards is normally carried out through
ISO technical committees. Each member body interested in a subject for which a technical committee
has been established has the right to be represented on that committee. International organizations,
governmental and non-governmental, in liaison with ISO, also take part in the work. ISO collaborates closely
with the International Electrotechnical Commission (IEC) on all matters of electrotechnical standardization.
The procedures used to develop this document and those intended for its further maintenance are described
in the ISO/IEC Directives, Part 1. In particular, the different approval criteria needed for the different types
of ISO document should be noted. This document was drafted in accordance with the editorial rules of the
ISO/IEC Directives, Part 2 (see www.iso.org/directives).
ISO draws attention to the possibility that the implementation of this document may involve the use of (a)
patent(s). ISO takes no position concerning the evidence, validity or applicability of any claimed patent
rights in respect thereof. As of the date of publication of this document, ISO had not received notice of (a)
patent(s) which may be required to implement this document. However, implementers are cautioned that
this may not represent the latest information, which may be obtained from the patent database available at
www.iso.org/patents. ISO shall not be held responsible for identifying any or all such patent rights.
Any trade name used in this document is information given for the convenience of users and does not
constitute an endorsement.
For an explanation of the voluntary nature of standards, the meaning of ISO specific terms and expressions
related to conformity assessment, as well as information about ISO's adherence to the World Trade
Organization (WTO) principles in the Technical Barriers to Trade (TBT), see www.iso.org/iso/foreword.html.
This document was prepared by Technical Committee ISO/TC 17, Steel, Subcommittee SC 1, Methods of
determination of chemical composition.
This second edition cancels and replaces the first edition (ISO 9441:1988), which has been technically
revised.
The main changes are as follows:
— the normative references have been revised;
— the precision data has been updated;
— the text has been improved editorially.
Any feedback or questions on this document should be directed to the user’s national standards body. A
complete listing of these bodies can be found at www.iso.org/members.html.
iv
International Standard ISO 9441:2026(en)
Steel — Determination of niobium content —
4-(2-Pyridylazo)-resorcinol (PAR) spectrophotometric
method
1 Scope
This document specifies a spectrophotometric method by using 4-(2-pyridylazo)-resorcinol (PAR) for the
determination of niobium in steel. The method is applicable to all types of steel with niobium contents
between 0,005 % (mass fraction) and 1,3 % (mass fraction).
2 Normative references
The following documents are referred to in the text in such a way that some or all of their content constitutes
requirements of this document. For dated references, only the edition cited applies. For undated references,
the latest edition of the referenced document (including any amendments) applies.
ISO 648, Laboratory glassware — Single-volume pipettes
ISO 1042, Laboratory glassware — One-mark volumetric flasks
ISO 3696, Water for analytical laboratory use — Specification and test methods
ISO 14284, Steel and iron — Sampling and preparation of samples for the determination of chemical composition
3 Terms and definitions
No terms and definitions are listed in this document.
ISO and IEC maintain terminology databases for use in standardization at the following addresses
— ISO Online browsing platform: available at https:// www .iso .org/ obp
— IEC Electropedia: available at https:// www .electropedia .org/
4 Principle
Dissolution of a test portion in hydrochloric acid followed by oxidation with hydrogen peroxide.
Precipitation of niobium and tantalum with phenylarsonic acid, using zirconium as a carrier.
Formation of a complex of niobium with 4-(2-pyridylazo)-resorcinol (PAR) in a sodium tartrate medium
buffered by a sodium acetate solution adjusted to pH 6,3.
Spectrophotometric measurement of the coloured complex at a wavelength of about 550 nm.
5 Reagents
During the analysis, unless otherwise stated, use only reagents of recognized analytical grade and only
distilled water or grade 2 water as specified in ISO 3696.
5.1 Pure iron, in flake or powder form, with a niobium content less than 0,000 5 % (mass fraction).
5.2 Potassium hydrogen sulfate (KHSO ).
5.3 Hydrochloric acid, ρ approximately 1,19 g/ml.
5.4 Hydrochloric acid, ρ approximately 1,19 g/ml, diluted (1 + 9).
5.5 Sulfuric acid, ρ approximately 1,84 g/ml, diluted (1 + 1).
5.6 Sulfuric acid, ρ approximately 1,84 g/ml, diluted (1 + 4).
5.7 Hydrogen peroxide, 300 g/l.
5.8 Sodium hydroxide, 120 g/l.
Store in a polyethylene bottle.
5.9 Zirconium nitrate, 3 g/l solution in hydrochloric acid medium.
Dissolve 0,3 g of zirconium nitrate in 50 ml of hydrochloric acid, ρ approximately 1,19 g/ml, diluted 1 + 4.
Filter through a fine filter paper, dilute to 100 ml with water and mix.
5.10 Sodium acetate buffer, pH-value 6,3.
Dissolve 350 g of sodium acetate trihydrate in 700 ml of water, add 5,5 ml of glacial acetic acid, ρ approximately
1,05 g/ml, dilute to 1 000 ml with water and mix. Adjust the pH-value to 6,3 with small additions of acetic
acid or sodium hydroxide (5.8), using a pH-meter for measurement.
5.11 Tartaric acid, 100 g/l.
5.12 Phenylarsonic acid [C H AsO(OH) ], 40 g/l.
6 5 2
5.13 Phenylarsonic acid [C H AsO(OH) ], 0,5 g/l.
6 5 2
5.14 Disodium dihydrogen ethylenediamine tetraacetic acid (EDTA·Na ), 15 g/l.
Dissolve 15 g of disodium dihydrogen ethylenediamine tetraacetate dihydrate (C H O N Na ·2H O) in
10 14 8 2 2 2
water, dilute to 1 000 ml with water and mix.
Store in a polyethylene bottle.
5.15 4-(2-pyridylazo)-resorcinol (PAR) (C H N O ), mono- or di-sodium salt, 0,6 g/l.
11 9 3 2
5.16 Niobium standard solution, 0,200 g/l.
Weigh, to the nearest 0,000 1 g, 0,143 1 g of niobium(V) oxide. (99,5 % minimum) and transfer into a
platinum crucib
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