This research paper desired to illustrate the presence of naturally occurring radioactive minerals concentration and the way how naturally occurring radioactive minerals were identified in Wag-himra iron ore deposit soil site. The deposit area covers five Kebelles of the border of Sekota, Ziquale and Abergelle districts. We were used high pure germanium detector to identify the presence of natural occurring radioactivity concentration in iron ore/alloy deposit soil, and applied appropriate research methodology particularly experimental design were more preferable. The researcher was collected samples from ten places across iron ore deposit area by using judgmental sampling techniques and prepared as a desirable manner. The chosen sample was sealed for four weeks in order to obtain secular equilibrium, wherein the rate of decay of the daughter’s equivalent that of the parent. Radium equivalent activity, external hazard index and representative gamma index of the sample were 56.19, 0.1515, 0.804, 0.408, 0.00011 (Bq/kg) respectively. However, internal hazard index was slightly approaching to recommended value and it may cause the significant radiation hazard through long dwelling to the area. This study NORM was analysis from sample of soil from at mineral/iron ore deposit area. The natural occurrence of radioactive materials identified in the samples were 238U, 232Th and 40K. The radiation hazardous were external and internal index.
Published in | American Journal of Physics and Applications (Volume 9, Issue 2) |
DOI | 10.11648/j.ajpa.20210902.14 |
Page(s) | 48-52 |
Creative Commons |
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Copyright © The Author(s), 2021. Published by Science Publishing Group |
Radiation, Concentration, Hazard Index, Radium Equivalent and Radionuclide
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APA Style
Baye Zinabe Kebede, Tadesse Gebeyehu. (2021). Evaluation of Natural Radioactive Elements and Hazardous Indexes Using High Pure Germanium Gamma Ray Spectroscopy in Sekota, Waghimra, Zone, Ethiopia. American Journal of Physics and Applications, 9(2), 48-52. https://doi.org/10.11648/j.ajpa.20210902.14
ACS Style
Baye Zinabe Kebede; Tadesse Gebeyehu. Evaluation of Natural Radioactive Elements and Hazardous Indexes Using High Pure Germanium Gamma Ray Spectroscopy in Sekota, Waghimra, Zone, Ethiopia. Am. J. Phys. Appl. 2021, 9(2), 48-52. doi: 10.11648/j.ajpa.20210902.14
AMA Style
Baye Zinabe Kebede, Tadesse Gebeyehu. Evaluation of Natural Radioactive Elements and Hazardous Indexes Using High Pure Germanium Gamma Ray Spectroscopy in Sekota, Waghimra, Zone, Ethiopia. Am J Phys Appl. 2021;9(2):48-52. doi: 10.11648/j.ajpa.20210902.14
@article{10.11648/j.ajpa.20210902.14, author = {Baye Zinabe Kebede and Tadesse Gebeyehu}, title = {Evaluation of Natural Radioactive Elements and Hazardous Indexes Using High Pure Germanium Gamma Ray Spectroscopy in Sekota, Waghimra, Zone, Ethiopia}, journal = {American Journal of Physics and Applications}, volume = {9}, number = {2}, pages = {48-52}, doi = {10.11648/j.ajpa.20210902.14}, url = {https://doi.org/10.11648/j.ajpa.20210902.14}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajpa.20210902.14}, abstract = {This research paper desired to illustrate the presence of naturally occurring radioactive minerals concentration and the way how naturally occurring radioactive minerals were identified in Wag-himra iron ore deposit soil site. The deposit area covers five Kebelles of the border of Sekota, Ziquale and Abergelle districts. We were used high pure germanium detector to identify the presence of natural occurring radioactivity concentration in iron ore/alloy deposit soil, and applied appropriate research methodology particularly experimental design were more preferable. The researcher was collected samples from ten places across iron ore deposit area by using judgmental sampling techniques and prepared as a desirable manner. The chosen sample was sealed for four weeks in order to obtain secular equilibrium, wherein the rate of decay of the daughter’s equivalent that of the parent. Radium equivalent activity, external hazard index and representative gamma index of the sample were 56.19, 0.1515, 0.804, 0.408, 0.00011 (Bq/kg) respectively. However, internal hazard index was slightly approaching to recommended value and it may cause the significant radiation hazard through long dwelling to the area. This study NORM was analysis from sample of soil from at mineral/iron ore deposit area. The natural occurrence of radioactive materials identified in the samples were 238U, 232Th and 40K. The radiation hazardous were external and internal index.}, year = {2021} }
TY - JOUR T1 - Evaluation of Natural Radioactive Elements and Hazardous Indexes Using High Pure Germanium Gamma Ray Spectroscopy in Sekota, Waghimra, Zone, Ethiopia AU - Baye Zinabe Kebede AU - Tadesse Gebeyehu Y1 - 2021/07/09 PY - 2021 N1 - https://doi.org/10.11648/j.ajpa.20210902.14 DO - 10.11648/j.ajpa.20210902.14 T2 - American Journal of Physics and Applications JF - American Journal of Physics and Applications JO - American Journal of Physics and Applications SP - 48 EP - 52 PB - Science Publishing Group SN - 2330-4308 UR - https://doi.org/10.11648/j.ajpa.20210902.14 AB - This research paper desired to illustrate the presence of naturally occurring radioactive minerals concentration and the way how naturally occurring radioactive minerals were identified in Wag-himra iron ore deposit soil site. The deposit area covers five Kebelles of the border of Sekota, Ziquale and Abergelle districts. We were used high pure germanium detector to identify the presence of natural occurring radioactivity concentration in iron ore/alloy deposit soil, and applied appropriate research methodology particularly experimental design were more preferable. The researcher was collected samples from ten places across iron ore deposit area by using judgmental sampling techniques and prepared as a desirable manner. The chosen sample was sealed for four weeks in order to obtain secular equilibrium, wherein the rate of decay of the daughter’s equivalent that of the parent. Radium equivalent activity, external hazard index and representative gamma index of the sample were 56.19, 0.1515, 0.804, 0.408, 0.00011 (Bq/kg) respectively. However, internal hazard index was slightly approaching to recommended value and it may cause the significant radiation hazard through long dwelling to the area. This study NORM was analysis from sample of soil from at mineral/iron ore deposit area. The natural occurrence of radioactive materials identified in the samples were 238U, 232Th and 40K. The radiation hazardous were external and internal index. VL - 9 IS - 2 ER -