ISO 16639:2017
Surveillance of the activity concentrations of airborne radioactive substances in the workplace of nuclear facilities
Surveillance of the activity concentrations of airborne radioactive substances in the workplace of nuclear facilities
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 32
- Дата публикации:
- 16 января 2017 г.
- Издание:
- ISO IS 16639 edition 1 version 1
- ICS:
- 13.280
ISO 16639:2017 provides guidelines and performance criteria for sampling airborne radioactive substances in the workplace. Emphasis is on health protection of workers in the indoor environment. ISO 16639:2017 provides best practices and performance-based criteria for the use of air sampling devices and systems, including retrospective samplers and continuous air monitors. Specifically, this document covers air sampling program objectives, design of air sampling and monitoring programs to meet program objectives, methods for air sampling and monitoring in the workplace, and quality assurance to ensure system performance toward protecting workers against unnecessary inhalation exposures. The primary purpose of the surveillance of airborne activity concentrations in the workplace is to evaluate and mitigate inhalation hazards to workers in facilities where these can become airborne. A comprehensive surveillance program can be used to - determine the effectiveness of administrative and engineering controls for confinement, - measure activity concentrations of radioactive substances, - alert workers to high activity concentrations in the air, - aid in estimating worker intakes when bioassay methods are unavailable, - determine signage or posting requirements for radiation protection, and - determine appropriate protective equipment and measures. Air sampling techniques consist of two general approaches. The first approach is retrospective sampling, in which the air is sampled, the collection medium is removed and taken to a radiation detector system and analysed for radioactive substance, and the concentration results made available at a later time. In this context, the measured air concentrations are evaluated retrospectively. The second approach is continuous real-time air monitoring so that workers can be warned that a significant release of airborne radioactivity may have just occurred. In implementing an effective air sampling program, it is important to achieve a balance between the two general approaches. The specific balance depends on hazard level of the work and the characteristics of each facility. A special component of the second approach which can apply, if properly implemented, is the preparation of continuous air monitoring instrumentation and protocols. This enables radiation protection monitoring of personnel that have been trained and fitted with personal protective equipment (PPE) that permit pre-planned, defined, extended stay time in elevated concentrations of airborne radioactive substances. Such approaches can occur either as part of a planned re-entry of a contaminated area following an accidental loss of containment for accident assessment and recovery, or part of a project which involves systematic or routine access to radioactive substances (e.g. preparing process material containing easily aerosolized components), or handling objects such as poorly characterized waste materials that may contain radioactive contaminants that could be aerosolized when handled during repackaging. In this special case, the role of continuous air monitoring is to provide an alert to health physics personnel that the air concentrations of concern have exceeded a threshold such that the planned level of protection afforded by PPE has been or could be exceeded. This level would typically be many 10's or 100's of times higher than the derived air concentration (DAC) established for unprotected workers. The monitoring alarm or alert would therefore be designed not to be confused with the normal monitoring alarm, and the action taken in response would be similarly targeted at the specific site and personnel involved. The air sampling strategy should be designed to minimize internal exposures and balanced with social, technical, economic, practical, and public policy considerations that are associated with the use of the radioactive substance. A comprehensive air sampling strategy should also consider that the air sampl
Abstract
Overview
ISO 16639:2017 provides guidelines and performance criteria for the surveillance of airborne radioactive substances in the workplace of nuclear facilities. The standard focuses on protecting worker health indoors by defining best practices for air sampling, retrospective analysis, and continuous air monitoring (CAM). It covers design of air sampling and monitoring programs, practical sampling methods, data evaluation, and quality assurance to reduce inhalation exposures.
Key topics and requirements
- Program objectives and design: Define surveillance goals (dose assessment, containment verification, worker warning) and select a balanced mix of retrospective sampling and continuous monitoring based on hazard level and facility characteristics.
- Sampling approaches:
- Retrospective sampling: Collect air on media, analyse later to determine airborne activity concentrations.
- Continuous real‑time monitoring: CAM for immediate worker alerts when airborne radioactivity is released.
- Special CAM use cases: Protocols for monitoring personnel wearing PPE during planned extended entries or recovery operations; alarm thresholds and response actions tailored to these scenarios.
- Sampler and monitor placement: Guidance on locating samplers for dose estimation, containment effectiveness, posting of air contamination areas, and portable sampler deployment; includes qualitative and quantitative airflow studies.
- Sample collection and analysis: Methods for aerosol and gas sampling, prompt analysis where needed, and corrections (e.g., radon progeny interference).
- Data evaluation: Calculation of average activity concentration, uncertainty estimation, trend analysis and review procedures.
- Quality assurance / quality control: Instrument performance, air in‑leakage testing, sample handling, documentation and record keeping to ensure reliable surveillance.
Practical applications and who uses it
ISO 16639:2017 is used by:
- Radiation protection professionals and health physicists designing workplace surveillance programs.
- Nuclear facility operators implementing air sampling strategies and CAM systems.
- Safety engineers evaluating containment and control measures.
- Internal dosimetry teams estimating worker intakes when bioassay is unavailable.
Typical applications include verifying engineering controls, providing worker alarms during operations with aerosolization risk, supporting dose assessments, defining signage/posting requirements, and informing PPE selection.
Implementation considerations
- Balance retrospective and continuous monitoring according to operational risk, cost, and practicality.
- Develop clear alarm levels and response plans, particularly when CAM supports PPE‑based extended exposure strategies.
- Ensure robust QA/QC, uncertainty analysis, and traceable record keeping to support regulatory compliance and worker protection.
Related standards
- Annexes reference uncertainty and detection limit methods (e.g., ISO 11929) and provide examples for data evaluation and radon progeny correction. Users should consult applicable national regulations and complementary ISO guidance for radiological protection.
Технические детали
- Технический комитет
- ISO/TC 85/SC 2 - Radiological protection
- SKU
- ISO 16639:2017
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