ASTM D7675-22 PDF
Standard Test Method for Determination of Total Hydrocarbons in Hydrogen by FID-Based Total Hydrocarbon (THC) Analyzer
Standard Test Method for Determination of Total Hydrocarbons in Hydrogen by FID-Based Total Hydrocarbon (THC) Analyzer
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 6
- Дата публикации:
- 1 июня 2022 г.
- Издание:
- D7675
- ICS:
- 27.075
SIGNIFICANCE AND USE 5.1 Low operating temperature fuel cells such as proton exchange membrane fuel cells (PEM-FC) require high purity hydrogen for maximum material performance and lifetime. Analysis to 0.1 part per million (ppm(v)) concentration of THCs (measured as CH4) in hydrogen is necessary for ensuring a feed gas of sufficient purity to satisfy fuel cell system needs as defined in SAE J2719 or as specified in regulatory codes. 5.2 Dynamic dilution techniques using highly accurate mass flow controllers can be used with test samples that have THC content exceeding the upper limit of the instrument’s linear range, without the need to recalibrate the instrument using higher levels of calibration standards. The sample can be diluted with a high purity grade of hydrogen (99.999 %, so long as it contains 5.3 Although not intended for application to gases other than hydrogen, techniques within this test method can be applied to other non-hydrocarbon gas samples requiring THC content determination. This can be achieved by using a zero gas and a calibration gas that consist of the same background gas as the actual sample. As an example, for the THC determination of nitrogen, the instrument zero point must be determined with a high purity grade of nitrogen (99.999 % and 4 in nitrogen in the appropriate range. This will correct for any interferences caused by the background gas. SCOPE 1.1 This test method describes a procedure for total hydrocarbons (THC’s) measurement in hydrogen intended as a fuel on a methane (C1) basis. The determination of THC on a C1 basis is an analytical technique where all the hydrocarbons are assumed to have the same response as methane (CH4). Sensitivity from 0.1 parts per million by volume (ppm(v), µmol/mol) up to 1000 ppm(v) concentration is achievable. Higher concentrations can be analyzed using appropriate dilution techniques. This test method can be applied to other gaseous samples requiring analysis of trace constituents provided an assessment of potential interferences has been accomplished. 1.2 This test method is a Flame Ionization Detector-based (FID-based) hydrocarbon analysis method without the use of separation columns. Therefore, this method does not provide speciation of individual hydrocarbons. Several varieties of instruments are manufactured and can be used for this method. 1.2.1 This method provides a measure of THC “as CH4,” because all hydrocarbon species are quantified the same as CH4 response, which is the sole species used for calibration. Magnitude of the FID response to an atom of carbon is dependent on the chemical environment of this atom in the molecule. This method provides the THC result as if all carbon atoms are from aliphatic, aromatic, olefinic, or acetylenic compounds, where the detector response caused by these atoms is approximately relative to the number of carbon atoms present in the molecule. Other types of molecules, including those containing oxygen or chlorine atoms, will respond differently and usually much lower than the corresponding aliphatic hydrocarbon. Therefore, other methods (Test Methods D7653, D7892, or equivalent) must be utilized to determine the exact constituents of the THC response determined by this method. 1.3 The proper handling of compressed gas cylinders containing air, nitrogen, hydrogen, or helium requires the use of gas regulators to preclude over-pressurization of any instrument component 1.4 Units—The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard. 1.5 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 re...
Abstract
Overview
ASTM D7675-22 is a standard test method developed by ASTM International for the determination of total hydrocarbons (THCs) in hydrogen gas using a flame ionization detector (FID)-based THC analyzer. This method is particularly significant for evaluating the purity of hydrogen fuel used in applications like proton exchange membrane fuel cells (PEM-FC). Ensuring low levels of residual hydrocarbons is critical, as even trace contaminants can impact the performance and lifespan of sensitive fuel cell systems. The standard enables quantification of total hydrocarbons down to 0.1 parts per million by volume (ppm(v)), with the measurement made on a methane (CH4) equivalence basis.
Key Topics
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FID-Based Total Hydrocarbon Analysis The test method uses flame ionization detection for direct measurement of total hydrocarbon content in hydrogen. All hydrocarbons are assumed to generate the same FID response as methane, making the process efficient but non-specific in identifying individual hydrocarbon species.
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Analytical Range and Sensitivity Sensitivity ranges from 0.1 ppm(v) to 1000 ppm(v), catering to both trace and higher concentration levels. For samples above the upper measurement limit, dynamic dilution using high-purity hydrogen is allowed without recalibration.
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Calibration and Quality Assurance Daily calibration with certified methane-in-hydrogen standards and regular verification of instrument linearity are required. Control charts and replicate analyses are recommended for quality assurance, supporting reliable detection limits and data integrity.
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Applicability to Other Gases While primarily intended for hydrogen, the procedure can be adapted to other non-hydrocarbon gases (e.g., nitrogen), provided that the background matrix is matched in both calibration and zero gases to mitigate interference.
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Safety and Handling The standard emphasizes safe handling of pressurized gases and the importance of appropriate safety practices, including the use of gas regulators and leak-tight systems to avoid hazards associated with hydrogen and compressed gases.
Applications
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Hydrogen Fuel Quality Verification Key for hydrogen suppliers and users in the fuel cell industry, this method ensures compliance with fuel quality guidelines such as SAE J2719, supporting the operational requirements of PEM and other low-temperature fuel cells.
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Hydrogen Production and Distribution Utilized in hydrogen production plants, refueling stations, and pipeline operations to monitor and maintain hydrogen purity, thus protecting equipment and end-use applications.
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Regulatory Compliance and Certification Supports adherence to both international fuel quality standards and governmental regulations, helping manufacturers and distributors demonstrate product safety and suitability.
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Adaptability for Other Gaseous Samples The technique can be tailored to analyze THC in gases like nitrogen, where hydrocarbon quantification at trace levels is important for industrial, research, or environmental monitoring.
Related Standards
- SAE J2719 - Hydrogen Fuel Quality Guideline for Fuel Cell Vehicles: defines allowable impurity levels, including THC, in hydrogen for automotive fuel cells.
- ASTM D7653 - Determination of Trace Gaseous Contaminants in Hydrogen Fuel by FTIR Spectroscopy.
- ASTM D7892 - Determination of Total Organic Halides, Non-Methane Hydrocarbons, and Formaldehyde in Hydrogen Fuel by GC/MS.
- ASTM D7606 - Practice for Sampling of High Pressure Hydrogen and Fuel Cell Feed Gases.
- ISO 14687 - Hydrogen Fuel Quality - Product Specification.
- EPA 40 CFR Part 136 Appendix B - Method detection limit procedures, referenced for establishing sensitivity requirements.
Implementing ASTM D7675-22 ensures reliable, reproducible quantification of total hydrocarbons in hydrogen, directly supporting fuel integrity and regulatory confidence in hydrogen supply chains.
Технические детали
- Технический комитет
- D03 - Gaseous Fuels
- SKU
- ASTM D7675-22
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