New guidelines on radiation survey of land plots for their sanitary assessment in terms of radiation safety indicators
https://doi.org/10.21514/1998-426X-2025-18-1-112-120
Abstract
Introduction: The paper presents an overview of the new guidelines MR 2.6.1.0361-24 (approved on 24 December 2024) that supersede guidelines MU 2.6.1.2398-08, which were used for organizing radiation surveys of land plots for construction of residential buildings, public and industrial buildings and facilities, and their sanitary assessment in terms of radiation safety indicators over the past 16 years.
Summary: The scope of the revised document was expanded and now covers not only construction sites, but also territories adjacent to buildings and structures, and public areas, as well as the soil located on the sites and intended for use as building materials. The conditions for compliance of radiation safety indicators with established standards have been adjusted to eliminate contradictions with the current formulations of sanitary requirements. A three-stage approach is proposed to assess the potential radon hazard of land plots. According to this approach, the customer has the opportunity to order a radiation survey at any stage and to complete it after any stage in case of non-compliance of the land plot with the established standards, skipping additional measurements and proceeding immediately to the design stage of radon protective measures.
Conclusion: The changes made should make the procedure for conducting radiation survey of land plots and evaluating its results more understandable and transparent, as well as improve the quality of measurement information obtained by testing laboratories, without requiring them to significantly expand the measuring instruments fleet and the list of measurement methods used. Taken together, all this changes should contribute to an increase in the number of new radon-safe buildings where protective measures are implemented preventively.
Keywords
About the Authors
D. V. KononenkoRussian Federation
Dmitry V. Kononenko, Researcher
Laboratory for Dosimetry of Natural Sources of Radiation
197101; Mira Str., 8; Saint Petersburg
T. A. Kormanovskaya
Russian Federation
Tatyana A. Kormanovskaya, Candidate of Biological Sciences, Leading Researcher
Laboratory for Dosimetry of Natural Sources of Radiation
Saint Petersburg
A. S. Vasilyev
Russian Federation
Alexey S. Vasilyev, Junior Researcher
Laboratory for Dosimetry of Natural Sources of Radiation
Saint Petersburg
K. A. Saprykin
Russian Federation
Kirill A. Saprykin, Senior Researcher, Head of the Laboratory
Laboratory for Dosimetry of Natural Sources of Radiation
Saint Petersburg
References
1. Gulabyants L, Kalaydo A. Radon protection of residential and public buildings. Moscow; Berlin: DirectMEDIA; 2020. 236 p. (In Russian).
2. Tsapalov A, Miklyaev P, Petrova T, Kuvshinnikov S. Radon regulation crisis in Russia: scale of the problem and proposals for remediation. ANRI = ANRI. 2024;1(116): 3–29. (In Russian). DOI: 10.37414/2075-1338-2024-116-1-3-29.
3. Vasilyev AS. Exposure of students (pupils) and employees of educational institutions in the Leningrad region to natural sources of radiation. Part 1: Results of a comprehensive survey. Radiatsionnaya Gygiena = Radiation Hygiene. 2023;16(2): 65–77. (In Russian). DOI: 10.21514/1998-426X-2023-16-2-65-77.
4. Kormanovskaya ТA, Istorik OA, Romanovich IK, Eremina LA, Koroleva NA, Balabina TA, et al. Radon surveys in the buildings of children institutions. Radiatsionnaya Gygiena = Radiation Hygiene. 2021;14(2): 6–20. (In Russian). DOI: 10.21514/1998-426X-2021-14-2-6-20.
5. Vasilyev AS, Kononenko DV, Kormanovskaya TA, Saprykin KA. A review of approaches to assessment of potential radon hazard of land plots. Radiatsionnaya Gygiena = Radiation Hygiene. 2024;17(3): 142–153. (In Russian). DOI: 10.21514/1998-426X-2024-17-3-142-153.
6. Yarmoshenko IV, Malinovsky GP, Yurkov IA, Izgagin VS. Assessment of geogenic radon potential with activation of advective soil air flow. Radiatsionnaya Gygiena = Radiation Hygiene. 2024;17(4): 79–87. (In Russian). DOI: 10.21514/1998-426X-2024-17-4-79-87.
7. Hiemstra PH, Pebesma EJ, Heuvelink GBM, Twenhöfel CJW. Using rainfall radar data to improve interpolated maps of dose rate in the Netherlands. Science of the Total Environment. 2010;409: 123–133. DOI: 10.1016/j.scitotenv.2010.08.051.
8. Livesay RJ, Blessinger CS, Guzzardo TF, Hausladen PA. Rain-induced increase in background radiation detected by Radiation Portal Monitors. Journal of Environmental Radioactivity. 2014;137: 137–141. DOI: 10.1016/j.jenvrad.2014.07.010.
9. Amestoy J, Meslin P-Y, Richon P, Delpuech A, Derrien S, Raynal H, et al. Effects of environmental factors on the monitoring of environmental radioactivity by airborne gamma-ray spectrometry. Journal of Environmental Radioactivity. 2021;237: 106695. DOI: 10.1016/j.jenvrad.2021.106695.
10. Kormanovskaya TA, Kononenko DV, Saprykin KA, Vasilyev AS, Koroleva NA, Kokoulina ES, et al. Radiation survey of buildings and structures to be demolished. Radiatsionnaya Gygiena = Radiation Hygiene. 2022;15(2): 42–51. (In Russian). DOI: 10.21514/1998-426X-2022-15-2-42-51.
11. Kononenko DV, Kormanovskaya TA, Vasilyev AS, Saprykin KA. New guidelines on radiation survey and sanitary assessment of residential, public and industrial buildings and facilities in terms of radiation safety indicators. Part 1. Radiatsionnaya Gygiena = Radiation Hygiene. 2024;17(2): 138–147. (In Russian). DOI: 10.21514/1998-426X-2023-17-2-138-147.
Review
For citations:
Kononenko D.V., Kormanovskaya T.A., Vasilyev A.S., Saprykin K.A. New guidelines on radiation survey of land plots for their sanitary assessment in terms of radiation safety indicators. Radiatsionnaya Gygiena = Radiation Hygiene. 2025;18(1):112-120. (In Russ.) https://doi.org/10.21514/1998-426X-2025-18-1-112-120