NF ISO 21909-1

NF ISO 21909-1

March 2016
Standard Cancelled

Passive neutron dosimetry systems - Part 1 : performance and test requirements for personal dosimetry

ISO 21909-1:2015 provides performance and test requirements for determining the acceptability of neutron dosimetry systems to be used for the measurement of personal dose equivalent, Hp(10), for neutrons ranging in energy from thermal to 20 MeV[1]. No distinction between the different techniques available in the market place is made in the description of the tests. Only generic distinctions, as disposable or reusable dosemeters for instance, are considered. This part of ISO 21909 gives information for extremity dosimetry, based on recommendations given by ICRU Report 66 in Annex A. [1] This maximal limit of the energy range is only an order of magnitude. The reference radiation fields used for the performance tests are those defined in ISO 8529-1. This means that the maximal energies could only be 14,8 MeV or 19 MeV. The present standard gives performance requirements to 14,8 MeV which is the typical neutron energy encountered for fusion. For fission spectra, the highest energies are around 20 MeV but the contribution to dose equivalent coming from neutrons with energy higher than 14,8 MeV is negligible.

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Main informations

Collections

National standards and national normative documents

Thematics

Sécurité, Gestion des risques et SST, QSE

Publication date

March 2016

Number of pages

47 p.

Reference

NF ISO 21909-1

ICS Codes

13.280   Radiation protection
17.240   Radiation measurements

Classification index

M61-101-1

Print number

1

International kinship

Sumary
Passive neutron dosimetry systems - Part 1 : performance and test requirements for personal dosimetry

ISO 21909-1:2015 provides performance and test requirements for determining the acceptability of neutron dosimetry systems to be used for the measurement of personal dose equivalent, Hp(10), for neutrons ranging in energy from thermal to 20 MeV[1]. No distinction between the different techniques available in the market place is made in the description of the tests. Only generic distinctions, as disposable or reusable dosemeters for instance, are considered. This part of ISO 21909 gives information for extremity dosimetry, based on recommendations given by ICRU Report 66 in Annex A.

[1] This maximal limit of the energy range is only an order of magnitude. The reference radiation fields used for the performance tests are those defined in ISO 8529-1. This means that the maximal energies could only be 14,8 MeV or 19 MeV. The present standard gives performance requirements to 14,8 MeV which is the typical neutron energy encountered for fusion. For fission spectra, the highest energies are around 20 MeV but the contribution to dose equivalent coming from neutrons with energy higher than 14,8 MeV is negligible.

Replaced standards (1)
NF ISO 21909
December 2005
Standard Cancelled
Passive personal neutro dosemeters - Performance and test requirements

<p>ISO 21909:2005 provides performance and test requirements for determining the acceptability of personal neutron dosemeters to be used for the measurement of personal dose equivalent, <i>H</i><sub>p</sub>(10) for neutrons ranging in energy from thermal to 20 MeV.</p>

Standard replaced by (1)
NF ISO 21909-1
January 2022
Standard Cancelled
Passive neutron dosimetry systems - Part 1 : performance and test requirements for personal dosimetry

<p>This document applies to all passive neutron detectors that can be used within a personal dosemeter in part or in all of the above-mentioned neutron energy range. No distinction between the different techniques available in the marketplace is made in the description of the tests. Only generic distinctions, for instance, as disposable or reusable dosemeters, are considered.</p> <p>This document describes type tests only. Type tests are made to assess the basic characteristics of the dosimetry systems and are often ensured by recognized national laboratories</p> <p>This document does not present performance tests for characterizing the degradation induced by the following:</p> <p>—    intrinsic temporal variability of the quality of the dosemeter supplied by the manufacturer;</p> <p>—    intrinsic temporal variability of preparation treatments (before irradiation and/or before reading), if existing;</p> <p>—    intrinsic temporal variability of reading process;</p> <p>—    degradation due to environmental effects on the preparation treatments, if existing;</p> <p>—    degradation due to environmental effects on the reading process.</p> <p>This document gives information for extremity dosimetry in the Annex C, based on recommendations given by ICRU Report 66. This document addresses only neutron personal monitoring and not criticality accident conditions.</p> <p>The links between this document and ISO 21909-2 are given in Annex A.</p>

Table of contents
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  • Avant-propos
  • 1 Domaine d'application
  • 2 Références normatives
  • 3 Termes, définitions et symboles
  • 4 Conditions générales d'essai
  • 5 Essais et exigences de fonctionnement
  • 6 Méthodes d'essai
  • 7 Essais de fonctionnement: caractéristiques intrinsèques
  • 8 Essais de fonctionnement: stabilité dans la gamme des conditions réalistes d'utilisation des dosimètres
  • 9 Documentation d'identification et d'accompagnement
  • Annexe Annex A(normative) Dosimétrie pour l'irradiation des extrémités
  • Annexe Annex B(normative) Conditions de référence et conditions normales d'essai
  • Annexe Annex D(normative) Tableaux de conversion
  • Annexe Annex E(normative) Limites de confiance
  • Annexe Annex C(informative) Conditions d'irradiation
  • Bibliographie
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