ISO 4037-1:2019
Radiological protection — X and gamma reference radiation for calibrating dosemeters and doserate meters and for determining their response as a function of photon energy — Part 1: Radiation characteristics and production methods
Radiological protection — X and gamma reference radiation for calibrating dosemeters and doserate meters and for determining their response as a function of photon energy — Part 1: Radiation characteristics and production methods
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 47
- Дата публикации:
- 18 января 2019 г.
- Издание:
- ISO IS 4037 edition 2 version 1
- ICS:
- 17.240
This document specifies the characteristics and production methods of X and gamma reference radiation for calibrating protection-level dosemeters and doserate meters with respect to the phantom related operational quantities of the International Commission on Radiation Units and Measurements (ICRU)[5]. The lowest air kerma rate for which this standard is applicable is 1 µGy h?1. Below this air kerma rate the (natural) background radiation needs special consideration and this is not included in this document. For the radiation qualities specified in Clauses 4 to 6, sufficient published information is available to specify the requirements for all relevant parameters of the matched or characterized reference fields in order to achieve the targeted overall uncertainty (k = 2) of about 6 % to 10 % for the phantom related operational quantities. The X ray radiation fields described in the informative Annexes A to C are not designated as reference X-radiation fields. NOTE The first edition of ISO 4037-1, issued in 1996, included some additional radiation qualities for which such published information is not available. These are fluorescent radiations, the gamma radiation of the radionuclide 241Am, S-Am, and the high energy photon radiations R-Ti and R-Ni, which have been removed from the main part of this document. The most widely used radiations, the fluorescent radiations and the gamma radiation of the radionuclide 241Am, S-Am, are included nearly unchanged in the informative Annexes A and B. The informative Annex C gives additional X radiation fields, which are specified by the quality index. The methods for producing a group of reference radiations for a particular photon-energy range are described in Clauses 4 to 6, which define the characteristics of these radiations. The three groups of reference radiation are: a) in the energy range from about 8 keV to 330 keV, continuous filtered X radiation; b) in the energy range 600 keV to 1,3 MeV, gamma radiation emitted by radionuclides; c) in the energy range 4 MeV to 9 MeV, photon radiation produced by accelerators. The reference radiation field most suitable for the intended application can be selected from Table 1, which gives an overview of all reference radiation qualities specified in Clauses 4 to 6. It does not include the radiations specified in the Annexes A, B and C. The requirements and methods given in Clauses 4 to 6 are targeted at an overall uncertainty (k = 2) of the dose(rate) value of about 6 % to 10 % for the phantom related operational quantities in the reference fields. To achieve this, two production methods are proposed: The first one is to produce "matched reference fields", whose properties are sufficiently well-characterized so as to allow the use of the conversion coefficients recommended in ISO 4037-3. The existence of only a small difference in the spectral distribution of the "matched reference field" compared to the nominal reference field is validated by procedures, which are given and described in detail in ISO 4037‑2. For matched reference radiation fields, recommended conversion coefficients are given in ISO 4037‑3 only for specified distances between source and dosemeter, e.g., 1,0 m and 2,5 m. For other distances, the user has to decide if these conversion coefficients can be used. If both values are very similar, e.g., differ only by 2 % or less, then a linear interpolation may be used. The second method is to produce "characterized reference fields". Either this is done by determining the conversion coefficients using spectrometry, or the required value is measured directly using secondary standard dosimeters. This method applies to any radiation quality, for any measuring quantity and, if applicable, for any phantom and angle of radiation incidence. In addition, the requirements on the parameters specifying the reference radiations depend on the definition depth in the phantom, i.e., 0,07 mm, 3 mm and 10 mm, therefore, the requirements a
Abstract
Overview
ISO 4037-1:2019 - "Radiological protection - X and gamma reference radiation for calibrating dosemeters and doserate meters - Part 1: Radiation characteristics and production methods" specifies how to produce and characterize X‑ and gamma‑ray reference radiation fields used for calibration of protection‑level dosemeters and doserate meters. The standard is focused on the phantom related operational quantities of the ICRU and targets an overall uncertainty (k = 2) of about 6% to 10%. It applies for air kerma rates down to 1 µGy h−1 (below which background radiation requires special consideration).
Key topics and technical requirements
- Reference radiation groups:
- Continuous filtered X radiation: ~8 keV to 330 keV
- Gamma radiation from radionuclides: ~600 keV to 1.3 MeV
- Accelerator‑produced photon radiation: ~4 MeV to 9 MeV
- Two production methods:
- Matched reference fields - fields whose spectral properties closely match nominal reference qualities so conversion coefficients (from ISO 4037‑3) may be used. Validation procedures and limits for deviations are defined (see ISO 4037‑2 for validation).
- Characterized reference fields - fields where conversion coefficients are determined by spectrometry or values are measured directly with secondary standard dosimeters; applicable to any quality, quantity, phantom or angle of incidence.
- Performance and validation elements:
- Targeted overall uncertainty (k = 2) ~6%–10%
- Requirements depend on phantom definition depths (0.07 mm, 3 mm, 10 mm)
- Validation methods include HVL (half‑value layer) measurement, spectrometry and dosimetry checks
- Practical production constraints such as high‑voltage generator stability, filtration, beam aperture, field uniformity and scattered radiation control
- Informative annexes:
- Annex A–C include additional X‑ray and radionuclide radiations (e.g., fluorescence X radiation, 241Am) and quality‑index based fields; these are informative and not designated primary reference fields.
Practical applications and users
ISO 4037-1 is essential for:
- Calibration laboratories establishing or verifying reference X‑ and gamma‑ray fields
- National metrology institutes and secondary standard dosimetry labs
- Manufacturers and testers of personal and area dosemeters and doserate meters
- Radiation protection specialists ensuring traceable calibrations to ICRU operational quantities
Typical uses:
- Selecting appropriate reference qualities for instrument calibration
- Designing irradiation facilities and procedures to meet uncertainty targets
- Validating matched reference fields and deriving or applying conversion coefficients
Related standards
- ISO 4037‑2 - Dosimetry in reference radiation fields (validation and measurement procedures)
- ISO 4037‑3 - Conversion coefficients for calibrating dosemeters and doserate meters
- ISO 4037‑4 - Special considerations for low energy X reference fields (≤ 30 kV)
- ICRU reports and ISO 29661 for symbols and general calibration procedures
Keywords: ISO 4037-1, radiological protection, reference radiation, X‑ray calibration, gamma calibration, dosemeters, doserate meters, matched reference fields, characterized reference fields, air kerma, HVL, spectrometry.
Технические детали
- Технический комитет
- ISO/TC 85/SC 2 - Radiological protection
- SKU
- ISO 4037-1:2019
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