ISO 21087:2019 PDF
Gas analysis — Analytical methods for hydrogen fuel — Proton exchange membrane (PEM) fuel cell applications for road vehicles
Gas analysis — Analytical methods for hydrogen fuel — Proton exchange membrane (PEM) fuel cell applications for road vehicles
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 17
- Дата публикации:
- 26 июня 2019 г.
- Издание:
- ISO IS 21087 edition 1 version 1
- ICS:
- 71.100.20
This document specifies the validation protocol of analytical methods used for ensuring the quality of the gaseous hydrogen (H2) at hydrogen distribution bases and hydrogen fuelling stations for road vehicles using proton exchange membrane (PEM) fuel cells. It also gives recommendations on the calculation of an uncertainty budget for the amount fraction. This document is established mainly for analysis done in laboratories after the sampling of hydrogen either at hydrogen distribution bases or at hydrogen refuelling stations. The specific requirements for on-line monitoring are not covered by this document. This document gives a list of suitable analytical techniques used to measure each impurity in hydrogen, according to the specification of hydrogen grade D defined by ISO 14687:—[1]. Moreover, recommendations for keeping the integrity of the sample are also given in order to ensure the quality of the measurement. It also includes the requirements for reporting the analytical results. [1] Under preparation. Stage at the time of publication: ISO/DIS 14687:2018.
Abstract
Overview
ISO 21087:2019 - Gas analysis: Analytical methods for hydrogen fuel - Proton exchange membrane (PEM) fuel cell applications for road vehicles - specifies a validation protocol for analytical methods used to ensure gaseous hydrogen (H2) quality at hydrogen distribution bases and hydrogen refuelling stations. The standard is focused on laboratory analysis after sampling, provides recommendations for calculating an uncertainty budget for amount fractions, lists suitable analytical techniques for impurities (aligned with hydrogen grade D in ISO 14687), and gives guidance on maintaining sample integrity and reporting analytical results. Online monitoring requirements are explicitly excluded.
Key Topics and Requirements
- Method validation and fit-for-purpose: Defines the process for demonstrating that an analytical method meets application requirements; labs must confirm method suitability in their environment.
- Performance characteristics: Requires evaluation of core validation parameters, including:
- Selectivity - ability to measure target analytes without interference
- Limit of Detection (LOD) and Limit of Quantification (LOQ) - instrument vs. method detection limits and appropriate calculation approaches
- Working range - linearity and applicable concentration range
- Trueness and bias - recovery and accuracy assessment
- Precision - repeatability, intermediate precision and reproducibility
- Measurement uncertainty - guidance for building an uncertainty budget for amount fractions
- Ruggedness (robustness) - method stability under varied conditions
- Validation documentation: Requirements for a validation report and ongoing quality control of the analytical method.
- Analytical techniques & sampling: Lists suitable techniques for each impurity specified for hydrogen grade D and provides recommendations on sampling strategy, sampling vessels and preserving sample integrity.
- Reporting: Specifies required elements of the analytical report to ensure traceable, comparable results.
Practical Applications
ISO 21087:2019 is practical for organizations that need reliable laboratory verification of hydrogen fuel quality for PEM fuel cell road vehicles:
- Testing and calibration laboratories performing post-sampling analysis
- Hydrogen distribution facilities and refuelling station operators implementing quality assurance
- Fuel cell and vehicle manufacturers requiring verified hydrogen impurity data
- Regulators and certification bodies developing or auditing hydrogen fuel quality programs The standard helps ensure that impurity measurements are accurate, traceable and comparable across laboratories and facilities.
Related Standards
- ISO 14687 - Hydrogen fuel quality - Product specification (defines hydrogen grade D impurities referenced by ISO 21087)
- ISO 19880-8 - Quality assurance and control for hydrogen refuelling (context for fuel supply chain QA/QC)
Keywords: ISO 21087:2019, gas analysis, hydrogen fuel, PEM fuel cell, validation protocol, hydrogen refuelling stations, sampling, uncertainty budget, ISO 14687.
Технические детали
- Технический комитет
- ISO/TC 158 - Analysis of gases
- SKU
- ISO 21087:2019
Похожие стандарты
Упомянутые в описании и другие стандарты ISO
ISO 19880-8:2019/Amd 1:2021
ОтменёнGaseous hydrogen — Fuelling stations — Part 8: Fuel quality control — Amendment 1: Alignment with Grade D of…
Overview ISO 19880-8:2019/Amd 1:2021 is an important amendment to the international standard focusing on gaseous hydrogen fuelling stations, specifically addressing fuel quality control. This amendme…
ISO 8689-1:2000
ДействующийWater quality — Biological classification of rivers — Part 1: Guidance on the interpretation of biological qu…
Overview ISO 8689-1:2000, titled Water quality - Biological classification of rivers - Part 1: Guidance on the interpretation of biological quality data from surveys of benthic macroinvertebrates, is…
ISO/ASTM51540-04(2012)
ОтменёнStandard Practice for Use of a Radiochromic Liquid Dosimetry System (Withdrawn 2020)
Significance and Use4.1 The radiochromic liquid dosimetry system provides a means of measuring absorbed dose in materials (5-7). Under the influence of ionizing radiation, chemical reactions take pla…
ISO/ASTM51204-04
ДействующийStandard Practice for Dosimetry in Gamma Irradiation Facilities for Food Processing (Withdrawn 2013)
Significance and Use4.1 Food products may be treated with ionizing radiation, such as gamma-rays from 60Co or 137Cs sources, for numerous purposes, including control of parasites and pathogenic micro…
ISO/ASTM51431-05
ОтменёнStandard Practice for Dosimetry in Electron Beam and X-Ray (Bremsstrahlung) Irradiation Facilities for Food P…
Significance and Use4.1 Food products may be treated with acceleratorgenerated radiation (electrons and X-rays) for numerous purposes, including control of parasites and pathogenic microorganisms, in…
ISO/ASTM52628-20e1
ДействующийStandard Practice for Dosimetry in Radiation Processing
1.1 This practice describes the basic requirements that apply when making absorbed dose measurements in accordance with the ASTM E61 series of dosimetry standards. In addition, it provides guidance o…
ISO/ASTM52921-13(2019)
ДействующийStandard Terminology for Additive Manufacturing—Coordinate Systems and Test Methodologies
Significance and Use 3.1 Although many additive manufacturing systems are based heavily upon the principles of Computer Numerical Control (CNC), the coordinate systems and nomenclature specific to CN…
ISO/ASTMTR52917-EB
ДействующийAdditive Manufacturing — Round Robin Testing — General Guidelines
This document outlines the steps with regard to aspects of design to conduct and run a round robin study (RRS) to assess the degree of variability in an additive manufacturing material or process. Th…