ДСТУ EN 62387:2022 Прилади радіаційного захисту. Пасивні інтегровані дозиметричні системи для індивідуального, робочого та навколишнього середовища моніторингу фотонного та бета-випромінювання (EN 62387:2016,...

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ДСТУ EN 62387:2022
(EN 62387:2016, IDT; IEC 62387:2012, IDT)

Прилади радіаційного захисту. Пасивні інтегровані дозиметричні системи для
індивідуального, робочого та навколишнього середовища моніторингу фотонного та
бета-випромінювання

 
   
 
 
     
Не є офіційним виданням.
Офіційне видання розповсюджує національний орган стандартизації
(ДП «УкрНДНЦ» http://uas.gov.ua)

Contents

Foreword

Introduction

1 Scope

2 Normative references

3 Terms and definitions

4 Units and symbols

5 General test procedures

5.1 Basic test procedures

5.1.1 Instructions for use

5.1.2 Nature of tests

5.1.3 Reference conditions and standard test conditions

5.1.4 Production of reference radiation

5.1.5 Choice of phantom for the purpose of testing

5.1.6 Position of dosemeter for the purpose of testing

5.2 Test procedures to be considered for every test

5.2.1 Number of dosemeters used for each test

5.2.2 Consideration of the uncertainty of the conventional true value

5.2.3 Consideration of non-linearity

5.2.4 Consideration of natural background radiation

5.2.5 Consideration of several detectors or signals in a dosemeter

5.2.6 Performing the tests efficiently

6 Performance requirements: summary

7 Capability of a dosimetry system

7.1 General

7.2 Measuring range and type of radiation

7.3 Rated ranges of the influence quantities

7.4 Maximum rated measurement time tmax

7.5 Reusability

7.6 Model function

7.7 Example for the capabilities of a dosimetry system

8 Requirements for the design of the dosimetry system

8.1 General

8.2 Indication of the dose value (dosimetry system)

8.3 Assignment of the dose value to the dosemeter (dosimetry system)

8.4 Information given on the devices (reader and dosemeter)

8.5 Retention and removal of radioactive contamination (dosemeter)

8.6 Algorithm to evaluate the indicated value (dosimetry system)

8.7 Use of dosemeters in mixed radiation fields (dosimetry system)

9 Instruction manual

9.1 General

9.2 Specification of the technical data

10 Software, data and interfaces of the dosimetry system

10.1 General

10.2 Design and structure of the software

10.2.1 Requirements

10.2.2 Method of test

10.3 Identification of the software

10.3.1 Requirements

10.3.2 Method of test

10.4 Authenticity of the software and the presentation of results

10.4.1 Requirements

10.4.2 Method of test

10.5 Alarm and stop of system operation under abnormal operating conditions

10.5.1 Requirements

10.5.2 Method of test

10.6 Control of input data by the dosimetry system

10.6.1 Requirements

10.6.2 Method of test

10.7 Storage of data

10.7.1 Requirements

10.7.2 Method of test

10.8 Transmission of data

10.8.1 Requirements

10.8.2 Method of test

10.9 Hardware interfaces and software interfaces

10.9.1 Requirements

10.9.2 Method of test

10.10 Documentation for the software test

10.10.1 Requirements

10.10.2 Method of test

Radiation performance requirements and tests (dosimetry system)

11.1 General

11.2 Coefficient of variation

11.3 Non-linearity

11.3.1 Requirements

11.3.2 Method of test

11.3.3 Interpretation of results

11.4 Overload characteristics, after-effects, and reusability

11.4.1 Requirements

11.4.2 Method of test

11.4.3 Interpretation of the results

11.5 Radiation energy and angle of incidence for Hp(10) or H*(10) dosemeters

11.5.1 Photon radiation

11.5.2 Beta radiation

11.6 Radiation energy and angle of incidence for Hp(3) dosemeters

11.6.1 Photon radiation

11.6.2 Beta radiation

11.7 Radiation energy and angle of incidence for Hp(0,07) or H'(0,07) dosemeters

11.7.1 Photon radiation

11.7.2 Beta radiation

11.8 C Over indication due to radiation incident from the side of an Hp(10), Hp(3) or Hp(0,07) dosemeter C

11.8.1 Requirements

11.8.2 Method of test

11.8.3 Interpretation of the results

11.9 Indication of the presence of beta dose for Hp(0,07) whole body dosemeters

12 Response to mixed irradiations (dosimetry system)

12.1 Requirements

12.2 Method of test

12.2.1 General

12.2.2 Preparation of the test

12.2.3 Practical test

12.3 Interpretation of the results

13 Environmental performance requirements and tests

13.1 General

13.1.1 General requirement

13.1.2 General method of test

13.2 Ambient temperature and relative humidity (dosemeter)

13.2.1 General

13.2.2 Requirements

13.2.3 Method of test

13.2.4 Interpretation of the results

13.3 Light exposure (dosemeter)

13.3.1 General

13.3.2 Requirements

13.3.3 Method of test

13.3.4 Interpretation of the results

13.4 C Dose build-up, fading and self-irradiation (dosemeter) C

13.4.1 General

13.4.2 Requirements

13.4.3 Method of test

13.4.4 Interpretation of the results

13.5 Sealing (dosemeter)

13.6 Reader stability (reader)

13.6.1 General

13.6.2 Requirements

13.6.3 Method of test

13.6.4 Interpretation of the results

13.7 Ambient temperature (reader)

13.7.1 General

13.7.2 Requirements

13.7.3 Method of test

13.7.4 Interpretation of the results

13.8 Light exposure (reader)

13.8.1 General

13.8.2 Requirements

13.8.3 Method of test

13.8.4 Interpretation of the results

13.9 Primary power supply (reader)

13.9.1 General

13.9.2 Requirements

13.9.3 Method of test

13.9.4 Interpretation of the results

14 Electromagnetic performance requirements and tests (dosimetry system)

14.1 General

14.2 Requirement

14.3 Method of test

14.4 Interpretation of the results

15 Mechanical performance requirements and tests

15.1 General requirement

15.2 Drop (dosemeter)

15.2.1 Requirements

15.2.2 Method of test

15.2.3 Interpretation of the results

16 Documentation

16.1 Type test report

16.2 Certificate issued by the laboratory performing the type test

Annex A (normative) Confidence limits

Annex B (informative) Causal connection between readout signals, indicated value and measured value

Annex C (informative) Overview of the necessary actions that have to be performed for a type test according to this standard

Annex D (informative) Usage categories of passive dosemeters

Annex E (informative) Uncertainty of dosimetry systems

Annex F (informative) Conversion coefficients hpK(3;α), hpK(0,07;α), and h'K(0,07;α) from air kerma, Ka, to the dose equivalent Hp(3), Hp(0,07), and H'(0,07), respectively, for radiation qualities defined in ISO 4037-1

Annex G (informative) Conversion coefficients hpD(0,07;source;α) and hpD(3;source;α) from personal absorbed dose in 0,07 mm depth, Dp(0,07), to the dose equivalent Hp(0,07) and Hp(3), respectively, for radiation qualities defined in ISO 6980-1

Annex H (informative) Computational method of test for mixed irradiations

Bibliography

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