METHOD FOR ESTIMATING THE MEASURED EXPOSURE RATE OVER THE THYROID CORRESPONDING TO CERTAIN LEVELS OF THE ABSORBED DOSE IN THE THYROID FOR THE PUBLIC IN THE EARLY PERIOD AFTER A LARGE RADIATION ACCIDENT
Abstract and keywords
Abstract (English):
In case of a large radiation accident at the nuclear power station the most important radiation hazard for the public is internal exposure to the thyroid from radioiodine. The IAEA standard published in 2013 and accounting the experience of the Chernobyl and Fukushima accidents, recommends that, in the first 1-6 days after an inhalation intake of radioiodine the exposure rate over the thyroid be measured for the public and be guided by the following operational criteria: (a) 0.5 μSv · h-1 for children under the age of 7 years, and (b) 2 μSv ·h-1 for children over 7 years and adults. These operational criteria are indicative estimates corresponding to the dose range 100–200 mGy in the thyroid for all age groups. However, a wider range of thyroid doses and a more detailed breakdown of children into five age groups according to the recommendations of the ICRP are of interest. The purpose of this paper is to develop a method for estimating the values of the measured exposure rate over the thyroid corresponding to certain levels of the absorbed dose in the thyroid for members of the public of different ages for various conditions of inhalation of radioiodine intake and times of measurement in the early period after a radiation accident. According to the method developed in the paper for the committed absorbed dose 100-200 mGy in the thyroid the exposure rates over the thyroid were calculated depending upon the time of inhalation intake after the accident and the time span between the moment of intake and the moment of measurement, which were equal to: 0.6– 4 μSv ·h-1 - for children of 1 year and 4–27 μSv · h-1 – for adults. These values are significantly higher than those recommended by the IAEA Standard 0.5 μSv · h-1 and 2 μSv · h-1, respectively. It is important to stress that the IAEA recommendations provide conservative estimates of the measured exposure rate over the thyroid in order to maximize the coverage of critical group of the public for further dosimetric and medical examination. For example, for some options of the time of radioiodine inhalation intake and the time of measurement, the IAEA recommended the values of the exposure rate over the thyroid that can lead to an overestimation of the absorbed dose in the thyroid gland by a factor of up to 10.

Keywords:
Radiation accident, thyroid, radioiodine, absorbed dose, the public
References

1. Vasilenko IYa. Radiacionnaya opasnost' radioizotopov yoda. Atomnaya energiya. 1987. t. 63. vyp. 4. - c. 244-248. [Vasilenko IYa. Radiation hazards of radioactive isotopes of iodine. Atomic Energy. 1987; 63(4): 244-248. (In Russ.)].

2. Savkin M and Shinkarev S. Prospective use of individual emergency monitoring of the public - lessons from Chernobyl. International Journal of Emergency Management (IJEM). 2007; 4(3): 408-420. DOI:https://doi.org/10.1504/IJEM.2007.014294.

3. Shinkarev S, Voillequé P, Gavrilin Yu, Khrouch VT, Bouville A, Hoshi M et al. Credibility of Chernobyl thyroid doses exceeding 10 Gy based on in-vivo measurements of 131I in Belarus. Health Phys. 2008; 94(2): 180-187. DOI:https://doi.org/10.1097/01.HP.0000288044.73410.6b.

4. Schitovidnaya zheleza u detey: posledstviya Chernobylya. Pod red. L.N. Astahovoy. Minsk, 1996; 216 s. [Thyroid in children: Consequences after the Chernobyl accident. Ed.: L.N. Astakhova. Minsk, 1996; 216 p. (In Russ.)]

5. Likhtarev IA, Sobolev BG, Kairo IA, N D Tronko, T I Bogdanova, V A Oleinic et al. Thyroid cancer in Ukraine. Nature. 1995: 375(6530): 365. DOI:https://doi.org/10.1038/375365a0. PMID: 7760928.

6. Jacob P, Bogdanova TI, Buglova EV, Chepurniy M, Demidchik Y, Gavrilin Y et al. Thyroid cancer risk in areas of Ukraine and Belarus affected by the Chernobyl accident. Radiat. Res. 2006; 165(1): 1-8. DOI:https://doi.org/10.1667/rr3479.1. PMID: 16392956.

7. Likhtarov I, Kovgan L, Vavilov S, Chepurny M, Ron E, Lubin J et al. Post-Chernobyl thyroid cancers in Ukraine. Report 2: Risk analysis. Radiat. Res. 2006; 166(2): 375-386. DOI:https://doi.org/10.1667/RR3593.1. PMID: 16881739.

8. Cardis E, Kesminiene A, Ivanov V, Malakhova I, Shibata Y, Khrouch V et al. Risk of thyroid cancer after exposure to 131I in Chernobyl. J. of the National Cancer Institute. 2005 May 18; 97(10): 724-32. DOI:https://doi.org/10.1093/jnci/dji129.

9. IAEA. Actions to protect the public in an emergency due to severe conditions at a light water reactor, EPR-NPP PUBLIC PROTECTIVE ACTIONS, IAEA, Vienna. 2013.

10. FAO, IAEA. Criteria for Use in Preparedness and Response for a Nuclear or Radiological Emergency, IAEA Safety Standards Series No. GSG-2, IAEA, Vienna. 2011.

11. IAEA, WHO. Generic Procedures for Medical Response during a Nuclear or Radiological Emergency, EPR MEDICAL, IAEA, Vienna. 2005.

12. Metodicheskie rekomendacii «Provedenie yodnoy profilaktiki naseleniyu v sluchae vozniknoveniya radiacionnoy avarii» M.: Federal'noe mediko-biologicheskoe agentstvo. 2010. 24 s. [Methodical guidance «Iodine prophylaxis for the public following a radiation accident » M.: Federal Medical Biological Agency, 2010. 24 p. (In Russ.)].

13. Guidelines for Iodine Prophylaxis following Nuclear Accidents - Update 1999. Geneva: World Health Organization; 1999.

14. Togawa K, Ahn HS, Auvinen A, Bauer AJ , Brito JP, Davies L et al. Long-term strategies for thyroid health monitoring after nuclear accidents: recommendations from an Expert Group convened by IARC. Lancet Oncol 2018; 19(10): 1280-1283. DOIhttps://doi.org/10.1016/S1470-2045(18)30680-6. PMID: 30303113.

15. Kolobashkin VI, Rubcov PI, Ruzhanskiy PA, Sidorenko VD. Radiacionnye harakteristiki obluchennogo yadernogo topliva. Spravochnik, M., Energoatomizdat, 1983. [Kolobashkin VI, Rubtsov PI, Ruzhansky PA, Sidorenko VD. Radiation characteristics of irradiated nuclear fuel. Reference book, M., Energoatomizdat, 1983. (In Russ.)].

16. ICRP - International Commission on Radiological Protection. Age-dependent doses to members of the public from intake of radionuclides: Part 4. Inhalation dose coefficients. ICRP Publication 71. Ann. ICRP. 1995; 25(3-4).

17. ICRP - International Commission on Radiological Protection. Age-dependent doses to members of the public from intake of radionuclides: Part 1. Ingestion dose coefficients. ICRP Publication 56. Ann. ICRP. 1990; 20(2).

18. ICRP - International Commission on Radiological Protection. Age-dependent doses to members of the public from intake of radionuclides: Part 2. Ingestion dose coefficients. ICRP Publication 67. Ann. ICRP. 1993; 23(3/4).

19. Cristy M. Mathematical phantoms representing children of various ages for use in estimates of internal dose. Report No. ORNL/NUREG/TM-367 (Oak Ridge National Laboratory, Oak Ridge, TN).1980.

20. Cristy M. and Eckerman K.F. Specific absorbed fractions of energy at various ages from internal photon sources. Report No. ORNL/TM-8381/V1 (Oak Ridge National Laboratory, Oak Ridge, TN). 1987.

21. Ulanovsky AV, Eckerman KF. Modification of ORNL phantom series in simulation of the responses of thyroid detectors. Radiat. Prot. Dosim. 1998; 79(1-4): 429-432.

22. Ulanovsky AV, Minenko VF, Korneev SV. Influence of measurement geometry on the estimate of 131I activity in the thyroid: Monte Carlo simulation of a detector and a phantom. Health Phys. 1997; 71: 34-41.

23. Ulanovsky AV, Eckerman KF. Absorbed fractions for electron and photon emissions in the developing thyroid: fetus to five years old. Radiat. Prot. Dosim. 1998 October; 79(1-4): 419-423. DOI:https://doi.org/10.1093/oxfordjournals.rpd.a032441. PMID: 29415268.

24. Briestmeister JO.F., Ed. MCNP - A general Monte Carlo N-particle transport code, Version 4A. - Report LA-12625-M. - Los Alamos, NM: Los Alamos National Laboratory. 1993; 736 pp.

25. Uyba V, Samoylov A, Shinkarev S. Comparative analysis of the countermeasures taken to mitigate exposure of the public to radioiodine following the Chernobyl and Fukushima accidents: lessons from both accidents. J. Radiat. Res. 2018 April; 59(S2): ii40-ii47. DOI:https://doi.org/10.1093/jrr/rry002. PMID: 29415268.

26. Shinkarev SM, Kotenko KV, Granovskaya EO, Yatsenko VN, Imanaka T, Hoshi M. Estimation of the contribution of short-lived radioiodines to the thyroid dose for the public in case of inhalation intake following the Fukushima accident. Radiat. Prot. Dosimetry. 2015; 164(1-2): 51-56. DOI:https://doi.org/10.1093/rpd/ncu335.

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