ISO/FDIS 24895-1
(Main)Analysis of natural gas — Determination of particulate matter — Part 1: Determination of particles content by gravimetric method
General Information
- Abstract
This documents specifies the method for determination of particles content in natural gas by weighting method, with measurement range of 0.01 mg/m3 to 100 mg/m3 under measurement pressure from 0.1 Mpa to 12 Mpa.
- Status
- Not Published
- Technical Committee
- ISO/TC 193/SC 1 - Analysis of natural gas
- Current Stage
- 5020 - FDIS ballot initiated: 2 months. Proof sent to secretariat
- Start Date
- 02-Oct-2026
- Completion Date
- 02-Oct-2026
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ISO/FDIS 24895-1 - Analysis of natural gas — Determination of particulate matter — Part 1: Determination of particles content by gravimetric method
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Overview
ISO/FDIS 24895-1:2026 specifies a standardized method for determining particulate matter content in natural gas using a gravimetric technique. The standard, developed by ISO Technical Committee 193 (Analysis of natural gas), is vital for ensuring the quality and safety of natural gas during transmission and use. The gravimetric method applies to particulate content measurement in the range of 0.01 mg/m³ to 100 mg/m³ and covers pressures from 0.1 MPa up to 12 MPa. Implementation of this standard supports international trade, regulatory compliance, and operational efficiency in the natural gas industry.
Key Topics
- Test Principle: Natural gas passes through a pre-treated, weighed filter membrane or cartridge, capturing particulate matter. The increase in filter mass, after drying, quantifies particulate content relative to the volume of gas sampled.
- Apparatus and Materials: The standard specifies sampling probes and tubes, particulate matter filters (membrane or cartridge type), precision gas meters, thermometers, atmospheric pressure gauges, analytical balances, glass desiccators, and weighing bottles.
- Sampling Process:
- Sampling must be conducted at a vertical, straight section of pipeline using a correctly positioned probe.
- Filters must be handled with care, dried, and weighed pre- and post-sampling to ensure accuracy.
- Multiple measurements are recommended for reliable, representative results.
- Calculation and Reporting: The particulate content is calculated from the mass change and corrected gas volume. The method also details uncertainty evaluation and requires inclusion of sampling conditions, instrumentation, results, and expanded uncertainty in test reports.
- Uncertainty Evaluation: Detailed procedures are provided for evaluating measurement uncertainty, considering variables such as mass, gas volume, pressure, and temperature.
Applications
ISO/FDIS 24895-1 is widely applicable across the natural gas industry, including:
- Quality Assurance in Gas Transmission: Regular monitoring of particulate levels helps prevent pipeline and equipment damage, supporting system reliability and safety.
- Equipment Protection: Ensures downstream equipment such as compressors and turbines are not adversely affected by particulate contamination, reducing maintenance costs and preventing failures.
- International Trade and Regulatory Compliance: Many contracts and regulations specify maximum allowable particulate content; this standard provides a recognized method for formal certification and validation.
- Comparative Assessment: Enables benchmarking between different gas sources, including natural gas substitutes like coalbed methane, by providing consistent determination techniques.
- Research and Development: Useful for laboratories and research entities investigating gas quality, filter materials, or the impact of particulates on system performance.
Related Standards
Several standards are referenced or commonly applied alongside ISO/FDIS 24895-1, including:
- ISO 10715: Natural gas - Gas sampling; referenced for guiding proper gas sampling procedures.
- Other ISO 24895 Series Parts: Additional parts in the ISO 24895 series may detail alternate methods or further guidance related to particulate matter analysis in natural gas.
- Measurement Instruments Standards: Referenced calibration and accuracy requirements for balances, gas meters, thermometers, and pressure gauges ensure precision in all determinations.
Adopting ISO/FDIS 24895-1 helps natural gas providers, testing laboratories, and regulatory bodies to ensure reliable, reproducible analysis of particulate matter, promoting both operational excellence and market confidence in gas quality.
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ISO/FDIS 24895-1 - Analysis of natural gas — Determination of particulate matter — Part 1: Determination of particles content by gravimetric method
REDLINE ISO/FDIS 24895-1 - Analysis of natural gas — Determination of particulate matter — Part 1: Determination of particles content by gravimetric method
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Frequently Asked Questions
ISO/FDIS 24895-1 is a draft published by the International Organization for Standardization (ISO). Its full title is "Analysis of natural gas — Determination of particulate matter — Part 1: Determination of particles content by gravimetric method". This standard covers: This documents specifies the method for determination of particles content in natural gas by weighting method, with measurement range of 0.01 mg/m3 to 100 mg/m3 under measurement pressure from 0.1 Mpa to 12 Mpa.
This documents specifies the method for determination of particles content in natural gas by weighting method, with measurement range of 0.01 mg/m3 to 100 mg/m3 under measurement pressure from 0.1 Mpa to 12 Mpa.
ISO/FDIS 24895-1 is classified under the following ICS (International Classification for Standards) categories: 75.060 - Natural gas. The ICS classification helps identify the subject area and facilitates finding related standards.
ISO/FDIS 24895-1 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)
FINAL DRAFT
International
Standard
ISO/TC 193/SC 1
Analysis of natural gas —
Secretariat: NEN
Determination of particulate
Voting begins on:
matter —
2026-10-02
Part 1:
Voting terminates on:
2026-11-27
Determination of particles content
by gravimetric method
Analyse du gaz naturel — Détermination des particules en
suspension —
Partie 1: Détermination de la teneur en particules par méthode
gravimétrique
RECIPIENTS OF THIS DRAFT ARE INVITED TO SUBMIT,
WITH THEIR COMMENTS, NOTIFICATION OF ANY
RELEVANT PATENT RIGHTS OF WHICH THEY ARE AWARE
AND TO PROVIDE SUPPOR TING DOCUMENTATION.
IN ADDITION TO THEIR EVALUATION AS
BEING ACCEPTABLE FOR INDUSTRIAL, TECHNO-
LOGICAL, COMMERCIAL AND USER PURPOSES, DRAFT
INTERNATIONAL STANDARDS MAY ON OCCASION HAVE
TO BE CONSIDERED IN THE LIGHT OF THEIR POTENTIAL
TO BECOME STAN DARDS TO WHICH REFERENCE MAY BE
MADE IN NATIONAL REGULATIONS.
Reference number
FINAL DRAFT
International
Standard
ISO/TC 193/SC 1
Analysis of natural gas —
Secretariat: NEN
Determination of particulate
Voting begins on:
matter —
Part 1:
Voting terminates on:
Determination of particles content
by gravimetric method
Analyse du gaz naturel — Détermination des particules en
suspension —
Partie 1: Détermination de la teneur en particules par méthode
gravimétrique
RECIPIENTS OF THIS DRAFT ARE INVITED TO SUBMIT,
WITH THEIR COMMENTS, NOTIFICATION OF ANY
RELEVANT PATENT RIGHTS OF WHICH THEY ARE AWARE
AND TO PROVIDE SUPPOR TING DOCUMENTATION.
© ISO 2026
IN ADDITION TO THEIR EVALUATION AS
All rights reserved. Unless otherwise specified, or required in the context of its implementation, no part of this publication may
BEING ACCEPTABLE FOR INDUSTRIAL, TECHNO-
LOGICAL, COMMERCIAL AND USER PURPOSES, DRAFT
be reproduced or utilized otherwise in any form or by any means, electronic or mechanical, including photocopying, or posting on
INTERNATIONAL STANDARDS MAY ON OCCASION HAVE
the internet or an intranet, without prior written permission. Permission can be requested from either ISO at the address below
TO BE CONSIDERED IN THE LIGHT OF THEIR POTENTIAL
or ISO’s member body in the country of the requester.
TO BECOME STAN DARDS TO WHICH REFERENCE MAY BE
MADE IN NATIONAL REGULATIONS.
ISO copyright office
CP 401 • Ch. de Blandonnet 8
CH-1214 Vernier, Geneva
Phone: +41 22 749 01 11
Email: copyright@iso.org
Website: www.iso.org
Published in Switzerland Reference number
ii
Contents Page
Foreword .iv
Introduction .v
1 Scope . 1
2 Normative references . 1
3 Terms and definitions . 1
4 Test principle . 1
5 Apparatus and materials . 2
6 Sampling and determination . 4
6.1 Sampling location and installation of sampling probe .4
6.2 Constant mass of filter membrane and filter cartridge .4
6.2.1 Initial mass of filter membrane .4
6.2.2 Initial mass of filter cartridge .5
6.3 Sampling procedure .5
6.3.1 Summary .5
6.3.2 Preparation before sampling.5
6.3.3 Sampling .5
6.4 Determination of final mass .6
6.4.1 Membrane type filter .6
6.4.2 Cartridge type filter .6
6.5 Repeated measurements .6
7 Calculation . 7
7.1 Calculation of gas sample corrected volume .7
7.2 Calculation of particulate matter content .7
8 Uncertainty evaluation . 7
8.1 Principle .7
8.2 Uncertainty of m .7
8.3 Uncertainty of m .8
8.4 Uncertainty of m.8
8.5 Uncertainty of V .8
8.6 Uncertainty of P .8
8.7 Uncertainty of T .9
8.8 Uncertainty of V .9
n
8.9 Uncertainty of result .9
8.10 Relative expanded uncertainty of result .9
8.11 Expanded uncertainty of result .9
9 Test report . 9
Annex A (informative) Example of the determination of particles content in natural gas .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 193, Natural gas, Subcommittee SC 1, Analysis
of natural gas.
A list of all parts in the ISO 24895 series can be found on the ISO website.
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
Introduction
Particulate matter is an important factor in natural gas quality. Its presence not only affects the safety
of natural gas pipeline transmission but is also detrimental to the normal and smooth operation of end-
use equipment. In serious cases, it can also lead to the failure and damage of end-use equipment (e.g. a
compressor). There is great demand for a standard method of determination of particulate matter in natural
gas and its substitutes, especially coalbed methane. There are often requirements for particulate matter in
natural gas in international trade.
v
FINAL DRAFT International Standard ISO/FDIS 24895-1:2026(en)
Analysis of natural gas — Determination of particulate
matter —
Part 1:
Determination of particles content by gravimetric method
1 Scope
This document specifies the test principle, apparatus, materials, sampling, determination, calculation and
reporting requirements for the determination of particulate matter content in natural gas by a gravimetric
method.
Unless otherwise specified, the volume standard reference conditions used in this document are 101,325 kPa
and 273,15 K.
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 10715, Natural gas — Gas sampling
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 Test principle
A certain volume of natural gas passes through a pretreated and weighed filter membrane or filter cartridge,
on which the particulate matter is captured. After drying and weighing, the particulate matter content is
calculated by the mass gain of the filter membrane or filter cartridge, attributed to particulate matter, for
the natural gas volume passing through.
5 Apparatus and materials
5.1 Sampling probe, which can be fixed or retractable as shown in Figure 1, made of stainless steel with
an external diameter of 6 mm to 10 mm (internal diameter of 4 mm to 7 mm). Natural gas enters from the
front end of the elbow of the sampling probe.
Key
direction of gas flow
D external diameter (6 mm to 10 mm)
d internal diameter (4 mm to 7 mm)
Figure 1 — Sampling probe diagram
5.2 Sampling tube, made of stainless steel, with an external diameter of 6 mm to 10 mm (internal
diameter of 4 mm to 7 mm). The sampling tube from the probe to the trap shall be as short as possible. It
shall not exceed 3 m.
5.3 Particulate matter filter, consisting of the following.
a) Particulate matter filter, which shall be sulfur-resistant (components of natural gas shall not cause mass
change of filter), with a working pressure 12 MPa, and used to capture particulate matter under pipeline
pressure.
b) Membrane type filter, made of glass fibre and other materials. The maximum pore diameter is not more
than 0,3 μm. See Figure 2.
c) Cartridge type filter. The filter cartridge is sintered from metal, such as titanium alloy, and the maximum
pore diameter is not more than 0,3 μm. See Figure 3.
NOTE There are filter products to capture particles with a diameter of not more than 0,1 μm. Using these filters
can increase the capture efficiency.
5.4 Gas meter with maximum permissible error (MPE) of 1,5 % or better.
5.5 Thermometer with a range from 0 °C to 50 °C and a resolution of 0,1 °C.
5.6 Atmospheric pressure gauge with a range from 80 kPa to 106 kPa and a resolution of 0,1 kPa.
5.7 Glass desiccator, packed with colour-changing silica gel.
5.8 Analytical balance, with a resolution of 0,1 mg.
5.9 Weighing bottle;before use, the weighing bottle should be cleaned, dried and cooled in a desiccator.
5.10 Glov
...
ISO/TC 193/SC 1
Secretariat: NEN
Date: 2026-05-2109-18
Analysis of natural gas — Determination of particulate matter — —
Part 1:
Determination of particleparticles content by gravimetric method
Analyse du gaz naturel — Détermination des particules en suspension —
Partie 1: Détermination de la teneur en particules par méthode gravimétrique
FDIS stage
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
CP 401 • Ch. de Blandonnet 8
CH-1214 Vernier, Geneva
Phone: + 41 22 749 01 11
EmailE-mail: copyright@iso.org
Website: www.iso.org
Published in Switzerland
ii
ISO/DISFDIS 24895-1:20252026(en)
Contents
Foreword . iv
Introduction . v
1 Scope . 1
2 Normative references . 1
3 Terms and definitions . 1
4 Test principle . 1
5 Apparatus and materials . 1
6 Sampling and determination . 6
6.1 Sampling location and installation of sampling probe . 6
6.2 Constant mass of filter membrane and filter cartridge . 6
6.3 Sampling procedure . 6
6.4 Determination of final mass . 8
6.5 Repeated measurements . 8
7 Calculation . 8
7.1 Calculation of gas sample corrected volume. 8
7.2 Calculation of particulate matter content . 8
8 Uncertainty evaluation . 8
8.1 Principle . 8
8.2 Uncertainty of m . 9
8.3 Uncertainty of m . 9
8.4 Uncertainty of m . 9
8.5 Uncertainty of V . 10
8.6 Uncertainty of P . 10
8.7 Uncertainty of T . 10
8.8 Uncertainty of V . 10
n
8.9 Uncertainty of result . 11
8.10 Relative expanded uncertainty of result . 11
8.11 Expanded uncertainty of result . 11
9 Test report . 11
Annex A (informative) Example of the determination of particles content in natural gas . 12
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 193, Natural gas, Subcommittee SC 1, Analysis
of natural gas.
A list of all parts in the ISO 24895 series can be found on the ISO website.
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
ISO/DISFDIS 24895-1:20252026(en)
Introduction
Particulate matter is an important factor in natural gas quality. Its presence not only affects the safety of
natural gas pipeline transmission but is also detrimental to the normal and smooth operation of end-use
equipment. In serious cases, it can also lead to the failure and damage of end-use equipment (e.g. a
compressor). There is great demand for a standard method of determination of particulate matter in natural
gas and its substitutes, especially coalbed methane. There are often requirements for particulate matter in
natural gas in international trade.
v
DRAFT International Standard ISO/DIS 24895-1:2025(en)
Analysis of natural gas - — Determination of particulate matter - —
Part 1:
Determination of particleparticles content by gravimetric method
1 Scope
This document specifies the test principle, apparatus, materials, sampling, determination, calculation and
reporting requirements for the determination of particulate matter content in natural gas by a gravimetric
method.
Unless otherwise specified, the volume standard reference conditions used in this document are 101,325 kPa
and 273,15 K.
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 10715, Natural gas — Gas sampling
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 Test principle
A certain volume of natural gas passes through a pretreated and weighed filter membrane or filter cartridge,
on which the particulate matter is captured. After drying and weighing, the particulate matter content is
calculated by the mass gain of the filter membrane or filter cartridge, attributed to particulate matter, for the
natural gas volume passing through.
5 Apparatus and materials
5.1 5.1 Sampling probe, thewhich can be fixed sampling probe or retractable sampling probe
isas shown in Figure 1Figure 1, which is, made of stainless steel with an external diameter of 6 mm to
10 mm (internal diameter of 4 mm to 7 mm). Natural gas enters from the front end of the elbow of the
sampling probe.
5.2
5.3
5.4
5.5
5.6 Unit:mm
5.7
Key
“→” direction of gas flow
“
D” external diameter (6 mm to 10 mm)
“d” internal diameter (4 mm to 7 mm)
Figure 1 — Sampling probe diagram
5.85.2 5.2 Sampling tube:, made of stainless steel tube, with an external diameter of 6 mm to 10 mm
(internal diameter of 4 mm to 7 mm). The sampling tube from the probe to the trap shall be as short as
possible. It shall not exceed 3 m.
5.95.3 5.3 Particulate matter filter, consisting of the following.
a) 5.3.1 Particulate matter filter, which shall be sulfur-resistant (components of natural gas shall not
cause mass change of filter), with a working pressure 12 MPa, and used to capture particulate matter
under pipeline pressure.
b) 5.3.2 Membrane type filter, made of glass fibre and other materials. The maximum pore diameter is
not more than 0,3 μm. See Figure 2Figure 2.
c) 5.3.3 Cartridge type filter, the. The filter cartridge is sintered from metal, such as titanium alloy, and
the maximum pore diameter is not more than 0,3 μm. See Figure 3Figure 3.
NOTE There are filter products to capture particleparticles with a diameter of not more than 0,1 μm, and using.
Using these filters can increase the capture efficiency.
5.105.4 5.4 Gas meter with maximum permissible error (MPE) of 1,5 % or better.
5.115.5 5.5 Thermometer with a range from 0 °C to 50 °C and a resolution of 0,1 °C.
5.125.6 5.6 Atmospheric pressure gauge with a range from 80 kPa to 106 kPa and a
resolution of 0,1 kPa.
5.135.7 5.7 Glass desiccator:, packed with colour-changing silica gel.
5.145.8 5.8 Analytical balance, with a resolution of 0,1 mg.
5.155.9 5.9 Weighing bottle: ;before use, the weighing bottle should be cleaned, dried
and cooled in a desiccator.
ISO/DISFDIS 24895-1:20252026(en)
5.165.10 5.10 Gloves:, i.e. cotton gloves.
Key
1 upper body of filter
2 connecting hole
3 intake-tube
4 stainless steel net
5 filter membrane
6 sealing ring
7 lower body of filter
8 exhaust tube
→ direction of gas flow
Figure 2 — Membrane type filter body diagram
ISO/DISFDIS 24895-1:20252026(en)
Key
1 intake tube
2 upper body of filter
3 sealing gasket
4 bolt
5 cartridge
6 lower body of filter
7 exhaust tube
→ direction of gas flow
Figure 3 — Cartridge type filter body diagram
6 Sampling and determination
6.1 Sampling location and installation of sampling probe
The sampling location shall be in a straight pipe section of the transmission pipeline. A vertical straight pipe
section shall be selected. The minimum length of straight pipe both upstream and downstream of the sampling
location shall not be less than three times the pipe internal diameter.
The sampling probe shall be inserted at one-third to one-sixth of the inner diameter of the pipe, facing the
direction of the gas flow.
6.2 Constant weightmass of filter membrane and filter cartridge
6.2.1 Initial mass of filter membrane
Before sampling, gloves shall be put on and a filter membrane shall be placed in the weighing bottle (5.9(5.9),),
which shall then dry itbe dried with the lid (leave the lid off) in a glass desiccator (5.7(5.7).). After 20 min of
drying, close the lid of the weighing bottle and weigh the bottle and membrane using the analytical balance
(5.8(5.8).). Dry (with lid removed) for another 20 min and weigh again. If the difference of the two
weightsmasses is less than 0,2 mg, it is considered to have reached a constant weightmass. Record the pre-
sampling constant weightmass. Otherwise, continue drying and weighing until constant weightmass is
achieved.
6.2.2 Initial mass of filter cartridge
Before sampling, gloves shall be put on and a filter cartridge shall be placed in the glass desiccator (5.7(5.7))
to dry. After 20 min of drying, weigh it using the analytical balance (5.8(5.8).). Dry for another 20 min and
weigh again. If the difference of the two weightsmasses is less than 0,2 mg, it is considered to have reached a
constant weightmass. Record the pre-sampling constant weightmass. Otherwise, continue drying and
weighing until constant weightmass is achieved.
6.3 Sampling procedure
6.3.1 Summary
Sampling shall be carried out in accordance with ISO 10715.
The layout of the sampling apparatus for determining particulate matter content is shown in Figure 4Figure 4.
Connect the devices using the sampling tube (5.2
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