Browse > Article
http://dx.doi.org/10.1016/j.net.2022.03.030

Effect of the new photoatomic data library EPDL2017 to mass attenuation coefficient calculation of materials used in the nuclear medicine facilities using EpiXS software  

Jecong, J.F.M. (Department of Science and Technology - Philippine Nuclear Research Institute (DOST-PNRI))
Hila, F.C. (Department of Science and Technology - Philippine Nuclear Research Institute (DOST-PNRI))
Balderas, C.V. (Department of Science and Technology - Philippine Nuclear Research Institute (DOST-PNRI))
Guillermo, N.R.D. (Department of Science and Technology - Philippine Nuclear Research Institute (DOST-PNRI))
Publication Information
Nuclear Engineering and Technology / v.54, no.9, 2022 , pp. 3440-3447 More about this Journal
Abstract
The accuracy of the photoatomic cross-section data is of great importance in the field of radiation protection, particularly in the characterization of radiation shielding materials. With the release of the latest and probably the most accurate photoatomic data library, EPDL2017, the need to re-evaluate all the existing and already established mass attenuation coefficients (MACs) of all radiation shielding materials arises. The MACs of several polymers, alloy-based, glasses, and building materials used in a nuclear medicine facility were investigated using the EPDL2017 library embedded in EpiXS software and were compared to MACs available in the literature. The relative differences between MACEpiXS and MACXCOM were negligible, ranging from 0.02% to 0.36% for most materials. However, for material like a glass comprising of elements Te and La evaluated near their corresponding K-edge energies, the relative differences in MACs increased up to 1.46%. On the other hand, a comparison with MACs calculated based on EPDL97 (a predecessor of EPDL2017) revealed as much as a 6.61% difference. Also, it would seem that the changes in MACs were more evident in the materials composed of high atomic number elements evaluated at x-ray energies compared to materials composed of low atomic number elements evaluated at gamma-ray energies.
Keywords
EPDL2017 library; Mass attenuation coefficient; X-ray; Gamma-ray; Radiation shielding; Nuclear medicine;
Citations & Related Records
Times Cited By KSCI : 5  (Citation Analysis)
연도 인용수 순위
1 T. Portela, T.S.C. Camozzato, R. de C. Flor, G. Ribeiro, J.A.C. de Melo, Occupational exposure in the working process of radiological nursing in nuclear medicine, J. Radiol. Nurs. 40 (3) (2021) 246-253, https://doi.org/10.1016/j.jradnu.2021.02.005.   DOI
2 F. Akman, M.R. Kacal, M.I. Sayyed, H.A. Karatas, , Study of gamma radiation attenuation properties of some selected ternary alloys, J. Alloys Compd. 782 (2019) 315-322, https://doi.org/10.1016/j.jallcom.2018.12.221.   DOI
3 B. Aygun, High alloyed new stainless steel shielding material for gamma and fast neutron radiation, Nucl. Eng. Technol. 52 (3) (2020) 647-653, https://doi.org/10.1016/j.net.2019.08.017.   DOI
4 Y. Al-Hadeethi, M.I. Sayyed, X-ray attenuation features of some tellurite glasses evaluated at medical diagnostic energies, Appl. Math. Comput. 365 (2020), 124712, https://doi.org/10.1016/j.amc.2019.124712.   DOI
5 S. Yasmin, et al., Studies of ionizing radiation shielding effectiveness of silicabased commercial glasses used in Bangladeshi dwellings, Results Phys. 9 (2018) 541-549, https://doi.org/10.1016/j.rinp.2018.02.075.   DOI
6 M. Dong, et al., The potential use of boron containing resources for protection against nuclear radiation, Radiat. Phys. Chem. 188 (2021), 109601, https://doi.org/10.1016/j.radphyschem.2021.109601. April.   DOI
7 E. Kavaz, H.O. Tekin, G. Kilic, G. Susoy, Newly developed Zinc-Tellurite glass system: an experimental investigation on impact of Ta2O5 on nuclear radiation shielding ability, J. Non-Cryst. Solids 544 (2020), 120169, https://doi.org/10.1016/j.jnoncrysol.2020.120169. June.   DOI
8 G. Lakshminarayana, et al., TeO2-B2O3-ZnOeLa2O3 glasses: g-ray and neutron attenuation characteristics analysis by WinXCOM program, MCNP5, Geant4, and Penelope simulation codes, Ceram. Int. 46 (10) (2020) 16620-16635, https://doi.org/10.1016/j.ceramint.2020.03.235.   DOI
9 K. Boonin, et al., Effect of BaO on lead free zinc barium tellurite glass for radiation shielding materials in nuclear application, J. Non-Cryst. Solids 550 (May) (2020), 120386, https://doi.org/10.1016/j.jnoncrysol.2020.120386.   DOI
10 N.J. AbuAlRoos, N.A. Baharul Amin, R. Zainon, Conventional and new lead-free radiation shielding materials for radiation protection in nuclear medicine: a review, Radiat. Phys. Chem. 165 (August, 2019), https://doi.org/10.1016/j.radphyschem.2019.108439.   DOI
11 F. Akman, M.I. Sayyed, M.R. Kacal, H.O. Tekin, Investigation of photon shielding performances of some selected alloys by experimental data, theoretical and MCNPX code in the energy range of 81 keVe1333 keV, J. Alloys Compd. 772 (2019) 516-524, https://doi.org/10.1016/j.jallcom.2018.09.177.   DOI
12 M.I. Sayyed, H. Akyildirim, M.S. Al-Buriahi, E. Lacomme, R. Ayad, G. Bonvicini, Oxyfluoro-tellurite-zinc glasses and the nuclear-shielding ability under the substitution of AlF3 by ZnO, Appl. Phys. Mater. Sci. Process 126 (2) (2020) 1-12, https://doi.org/10.1007/s00339-019-3265-6.   DOI
13 M.I. Sayyed, et al., Radiation shielding characteristics of selected ceramics using the EPICS2017 library, Ceram. Int. (2021), https://doi.org/10.1016/j.ceramint.2021.01.183.   DOI
14 D.A. Brown, et al., ENDF/B-VIII.0: the 8th major release of the nuclear reaction data library with CIELO-project cross sections, new standards and thermal scattering data, Nucl. Data Sheets 148 (2018), https://doi.org/10.1016/j.nds.2018.02.001, 1-142.   DOI
15 D.E. Cullen, A Survey of Photon Cross Section Data for Use in EPICS2017, IAEANDS-225, rev.1, 2018.
16 F.C. Hila, A.V. Amorsolo, A.M.V. Javier-Hila, N.R.D. Guillermo, A simple spreadsheet program for calculating mass attenuation coefficients and shielding parameters based on EPICS2017 and EPDL97 photoatomic libraries, Radiat. Phys. Chem. 177 (2020), 109122, https://doi.org/10.1016/j.radphyschem.2020.109122. July.   DOI
17 A.H. Almuqrin, J.F.M. Jecong, F.C. Hila, C.V. Balderas, M.I. Sayyed, Radiation shielding properties of selected alloys using EPICS2017 data library, Prog. Nucl. Energy 137 (Jul. 2021), 103748, https://doi.org/10.1016/j.pnucene.2021.103748.   DOI
18 F.C. Hila, et al., Evaluation of photon radiation attenuation and buildup factors for energy absorption and exposure in some soils using EPICS2017 library, Nucl. Eng. Technol. 53 (11) (2021) 3808-3815, https://doi.org/10.1016/j.net.2021.05.030.   DOI
19 F.C. Hila, et al., EpiXS: a Windows-based program for photon attenuation, dosimetry and shielding based on EPICS2017 (ENDF/B-VIII) and EPDL97 (ENDF/B-VI.8), Radiat. Phys. Chem. 182 (May 2021), 109331, https://doi.org/10.1016/j.radphyschem.2020.109331. January.   DOI
20 N. Jamal AbuAlRoos, M.N. Azman, N.A. Baharul Amin, R. Zainon, Tungstenbased material as promising new lead-free gamma radiation shielding material in nuclear medicine, Phys. Med. 78 (2020) 48-57, https://doi.org/10.1016/j.ejmp.2020.08.017. August.   DOI
21 F. Akman, et al., Shielding features, to non-ionizing and ionizing photons, of FeCr-based composites, Appl. Radiat. Isot. 167 (2021), 109470, https://doi.org/10.1016/j.apradiso.2020.109470. August 2020.   DOI
22 S.S. Obaid, D.K. Gaikwad, P.P. Pawar, Determination of gamma ray shielding parameters of rocks and concrete, Radiat. Phys. Chem. 144 (2018) 356-360, https://doi.org/10.1016/j.radphyschem.2017.09.022. September 2017.   DOI
23 F. Akman, M.R. Kacal, N. Almousa, M.I. Sayyed, H. Polat, Gamma-ray attenuation parameters for polymer composites reinforced with BaTiO3 and CaWO4 compounds, Prog. Nucl. Energy 121 (2020), https://doi.org/10.1016/j.pnucene.2020.103257. December 2019.   DOI
24 D.L. Bailey, J.L. Humm, A. Todd-Pokropek, A. van Aswegen, Nuclear Medicine Physics: A Handbook for Teachers and Students, 2014.
25 M. Marengo, C.J. Martin, S. Rubow, T. Sera, Z. Amador, L. Torres, Radiation safety and accidental radiation exposures in nuclear medicine, Semin. Nucl. Med. 52 (2) (2021) 94-113, https://doi.org/10.1053/ j.semnuclmed.2021.11.006.   DOI
26 D. Adliene, L. Gilys, E. Griskonis, Development and characterization of new tungsten and tantalum containing composites for radiation shielding in medicine, Nucl. Instrum. Methods Phys. Res. B 467 (2020) 21-26.   DOI
27 M.R. Kacal, F. Akman, M.I. Sayyed, Evaluation of gamma-ray and neutron attenuation properties of some polymers, Nucl. Eng. Technol. 51 (3) (2019) 818-824, https://doi.org/10.1016/j.net.2018.11.011.   DOI
28 Y. Al-Hadeethi, M. Ahmed, S.H. Al-Heniti, M.I. Sayyed, Y.S. Rammah, Rare earth Co-Doped tellurite glass ceramics: potential use in optical and radiation shielding applications, Ceram. Int. 46 (11) (2020) 19198-19208, https://doi.org/10.1016/j.ceramint.2020.04.257.   DOI
29 E. Kavaz, F.I. El-Agawany, H.O. Tekin, U. Peris, anoglu, Y.S. Rammah, Nuclear radiation shielding using barium borosilicate glass ceramics, J. Phys. Chem. Solid. 142 (March, 2020), https://doi.org/10.1016/j.jpcs.2020.109437.   DOI
30 R. Bagheri, A. Khorrami Moghaddam, H. Yousefnia, Gamma ray shielding study of bariumebismutheborosilicate glasses as transparent shielding materials using MCNP-4C code, XCOM program, and available experimental data, Nucl. Eng. Technol. 49 (1) (2017) 216-223, https://doi.org/10.1016/j.net.2016.08.013.   DOI
31 B. Aygun, O. Agar, M.I. Sayyed, A. Karabulut, V.P. Singh, Progress in Nuclear Energy Development of new heavy concretes containing chrome-ore for nuclear radiation shielding applications, Prog. Nucl. Energy 133 (2021), https:// doi.org/10.1016/j.pnucene.2021.103645. December 2020.   DOI
32 H.O. Tekin, L.R.P. Kassab, O. Kilicoglu, E.S. Magalhaes, S.A.M. Issa, G.R. da Silva-Mattos, Newly developed tellurium oxide glasses for nuclear shielding applications: an extended investigation, J. Non-Cryst. Solids 528 (2020), 119763, https://doi.org/10.1016/j.jnoncrysol.2019.119763. October 2019.   DOI
33 T.A. Almeida Junior, M.S. Nogueira, V. Vivolo, M.P.A. Potiens, L.L. Campos, Mass attenuation coefficients of X-rays in different barite concrete used in radiation protection as shielding against ionizing radiation, Radiat. Phys. Chem. 140 (2017) 349-354, https://doi.org/10.1016/j.radphyschem.2017.02.054.February.   DOI
34 H.S. Alorfi, M.A. Hussein, S.A. Tijani, The use of rocks in lieu of bricks and concrete as radiation shielding barriers at low gamma and nuclear medicine energies, Construct. Build. Mater. 251 (2020), 118908, https://doi.org/10.1016/j.conbuildmat.2020.118908.   DOI
35 Y. Al-Hadeethi, S.A. Tijani, The use of lead-free transparent 50BaO-(50-x)borosilicate-xBi2O3 glass system as radiation shields in nuclear medicine, J. Alloys Compd. 803 (2019) 625-630, https://doi.org/10.1016/j.jallcom.2019.06.259.   DOI
36 C.V. More, H. Alavian, P.P. Pawar, Evaluation of gamma-ray attenuation characteristics of some thermoplastic polymers: experimental, WinXCom and MCNPX studies, J. Non-Cryst. Solids 546 (2020), 120277, https://doi.org/10.1016/j.jnoncrysol.2020.120277. July.   DOI
37 S. Yasmin, et al., The radiation shielding offered by the commercial glass installed in Bangladeshi dwellings, Radiat. Eff. Defect Solid 173 (7-8) (2018) 657-672, https://doi.org/10.1080/10420150.2018.1493481.   DOI
38 F. C. Hila, M. I. Sayyed, A. M. V. Javier-Hila, and J. F. M. Jecong, "Evaluation of the radiation shielding characteristics of several glass systems using the EPICS2017 library," Arabian J. Sci. Eng., vol. 47, no. 1, pp. 1077-1086, Jan. 2022, doi: 10.1007/s13369-021-06062-z.   DOI
39 E. Kavaz, N. Ekinci, H.O. Tekin, M.I. Sayyed, B. Aygun, U. Peris, anoglu, Estimation of gamma radiation shielding qualification of newly developed glasses by using WinXCOM and MCNPX code, Prog. Nucl. Energy 115 (2019) 12-20, https://doi.org/10.1016/j.pnucene.2019.03.029. February.   DOI