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1.
Radiat Prot Dosimetry ; 199(15-16): 1844-1847, 2023 Oct 11.
Artigo em Inglês | MEDLINE | ID: mdl-37819289

RESUMO

The IAEA Radiation Safety Technical Services Laboratory has developed and validated an Internal Dosimetric Analyser (IDA) software tool to facilitate access to dosimetric data and perform calculations related to individual monitoring for intakes of radionuclides and occupational radiation protection. IDA serves to correlate measurements from routine, confirmatory and special internal monitoring with data obtained from the Occupational Intakes of Radionuclides series of recommendations published by the International Commission on Radiological Protection. The purpose of IDA is to keep the internal dosimetry data in the background and allow the dosimetrist to make the necessary calculations to be able to decide (1) whether the bioassay method and monitoring period are appropriate for routine, confirmatory or special monitoring; (2) whether the method and period will allow the recording level to be detected; (3) whether previous intakes are contributing to the current measurement; and (4) whether measurement uncertainties affect the dose assessment.


Assuntos
Exposição Ocupacional , Monitoramento de Radiação , Proteção Radiológica , Exposição Ocupacional/análise , Radiometria/métodos , Radioisótopos/análise , Proteção Radiológica/métodos , Bioensaio , Monitoramento de Radiação/métodos , Doses de Radiação
2.
J Radiol Prot ; 36(4): 885-901, 2016 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-27798410

RESUMO

Aircraft crew members are occupationally exposed to considerable levels of cosmic radiation at flight altitudes. Since aircrew (pilots and passengers) are in the sitting posture for most of the time during flight, and up to now there has been no data on the effective dose rate calculated for aircrew dosimetry in flight altitude using a sitting phantom, we therefore calculated the effective dose rate using a phantom in the sitting and standing postures in order to compare the influence of the posture on the radiation protection of aircrew members. We found that although the better description of the posture in which the aircrews are exposed, the results of the effective dose rate calculated with the phantom in the sitting posture were very similar to the results of the phantom in the standing posture. In fact we observed only a 1% difference. These findings indicate the adequacy of the use of dose conversion coefficients for the phantom in the standing posture in aircrew dosimetry. We also validated our results comparing the effective dose rate obtained using the standing phantom with values reported in the literature. It was observed that the results presented in this study are in good agreement with other authors (the differences are below 30%) who have measured and calculated effective dose rates using different phantoms.


Assuntos
Aeronaves , Radiação Cósmica , Exposição Ocupacional/análise , Postura , Doses de Radiação , Radiometria/métodos , Feminino , Humanos , Masculino , Neoplasias Induzidas por Radiação/prevenção & controle , Doenças Profissionais/prevenção & controle , Imagens de Fantasmas , Lesões por Radiação/prevenção & controle
3.
Phys Med Biol ; 59(24): 7957-8003, 2014 Dec 21.
Artigo em Inglês | MEDLINE | ID: mdl-25427139

RESUMO

The conversion coefficients (CCs) relate protection quantities, mean absorbed dose (DT) and effective dose (E), with physical radiation field quantities, such as fluence (Φ). The calculation of CCs through Monte Carlo simulations is useful for estimating the dose in individuals exposed to radiation. The aim of this work was the calculation of conversion coefficients for absorbed and effective doses per fluence (DT/ Φ and E/Φ) using a sitting and standing female hybrid phantom (UFH/NCI) exposure to monoenergetic protons with energy ranging from 2 MeV to 10 GeV. The radiation transport code MCNPX was used to develop exposure scenarios implementing the female UFH/NCI phantom in sitting and standing postures. Whole-body irradiations were performed using the recommended irradiation geometries by ICRP publication 116 (AP, PA, RLAT, LLAT, ROT and ISO). In most organs, the conversion coefficients DT/Φ were similar for both postures. However, relative differences were significant for organs located in the abdominal region, such as ovaries, uterus and urinary bladder, especially in the AP, RLAT and LLAT geometries. Anatomical differences caused by changing the posture of the female UFH/NCI phantom led an attenuation of incident protons with energies below 150 MeV by the thigh of the phantom in the sitting posture, for the front-to-back irradiation, and by the arms and hands of the phantom in the standing posture, for the lateral irradiation.


Assuntos
Simulação por Computador , Imagens de Fantasmas , Postura , Prótons , Radiometria/instrumentação , Irradiação Corporal Total/métodos , Adulto , Biomimética , Carga Corporal (Radioterapia) , Feminino , Humanos , Método de Monte Carlo , Especificidade de Órgãos , Doses de Radiação , Radiometria/normas
4.
Radiat Prot Dosimetry ; 161(1-4): 11-6, 2014 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-24285286

RESUMO

This paper reviews the ICRP Publications 110 and 116 describing the reference computational phantoms and dose conversion coefficients for external exposures. The International Commission on Radiological Protection (ICRP) in its 2007 Recommendations made several revisions to the methods of calculation of the protection quantities. In order to implement these recommendations, the DOCAL task group of the ICRP developed computational phantoms representing the reference adult male and female and then calculated a set of dose conversion coefficients for various types of idealised external exposures. This paper focuses on the dose conversion coefficients for neutrons and investigates their relationship with the conversion coefficients of the protection and operational quantities of ICRP Publication 74. Contributing factors to the differences between these sets of conversion coefficients are discussed in terms of the changes in phantoms employed and the radiation and tissue weighting factors.


Assuntos
Imagens de Fantasmas , Proteção Radiológica/normas , Radiometria/normas , Simulação por Computador , Feminino , Humanos , Cooperação Internacional , Masculino , Método de Monte Carlo , Nêutrons , Valores de Referência , Software
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