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Journal of the Korea Concrete Institute

J Korea Inst. Struct. Maint. Insp.
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  • Korea Citation Index (KCI)

References

1 
Maki, Yasuro, Ohnuma, Hiroshi (1992), Application of concrete to the treatment and disposal of radioactive waste in Japan, Nuclear Engineering and Design, 138(2), 179-188.DOI
2 
Onaizi, Ali M., Amran, Mugahed, Tang, Waiching, Betoush, Nour, Alhassan, Mohammad, Rashid, Raizal S. M., Yasin, Mohammad Fares, Bayagoob, K. H., Onaizi, Sagheer A. (2024), Radiation-shielding concrete: A review of materials, performance, and the impact of radiation on concrete properties, Journal of Building Engineering, 97, 110800DOI
3 
Gunoglu, Kadir, Akkurt, Iskender (2021), Radiation shielding properties of concrete containing magnetite, Progress in Nuclear Energy, 137, 103776DOI
4 
Karmaker, N., Maraz, K. M., Islam, F., Haque, M. M., Razzak, M., Mollah, M. Z. I., Faruque, M. R. I., Khan, R. A. (2021), Fundamental characteristics and application of radiation, GSC Advanced Research and Reviews, 7(1), 064-072.DOI
5 
Reilly, D., Ensslin, N., Smith, H. Jr., Kreiner, S. (1991), Passive nondestructive assay of nuclear materialsGoogle Search
6 
Moon, I. H., Choi, S. S. (2014), Structural Characteristics and Design Specifications of Nuclear Power Plant Structures, Journal of the Architectural Institute of Korea, 58(7), 12-21.Google Search
7 
Kang, J., Kim, D., Choi, H., Lee, C., Kim, H., Song, H. (2025), Development of an impact-response technique for automated detection and classification of backside defects in nuclear containment liner plates, Journal of the Korea Institute for Structural Maintenance and Inspection, 29Google Search
8 
Kim, H.-J., Jang, J.-M., Song, Y.-S., Noh, J.-H., Yi, S.-T. (2019), Characteristics evaluation of radiation shielding materials using waste glass and chelate resins, Journal of the Korea Institute for Structural Maintenance and Inspection, 23(2)Google Search
9 
Seo, C. O., Kim, G. E., Chu, S. S. (2004), Design for radiotherapy room with high-density shielding block, Progress in Medical Physics, 15(4), 247-254.Google Search
10 
Tyagi, G., Singhal, A., Routray, S., Bhunia, D., Lahoti, M. (2020), A review on sustainable utilization of industrial wastes in radiation shielding concrete, Materials Today: Proceedings, 32(4), 746-751.DOI
11 
Rezaei-Ochbelagh, D., Azimkhani, S. (2012), Investigation of gamma-ray shielding properties of concrete containing different percentages of lead, Applied Radiation and Isotopes, 70(10), 2282-2286.DOI
12 
Florez, R., Colorado, H. A., Alajo, A., Giraldo, C. H. C. (2019), The material characterization and gamma attenuation properties of Portland cement–Fe$_3$O$_4$ composites for potential dry cask applications, Progress in Nuclear Energy, 111, 65-73.DOI
13 
Binici, H., Aksogan, O., Sevinc, A. H., Kucukonder, A. (2014), Mechanical and radioactivity shielding performances of mortars made with colemanite, barite, ground basaltic pumice and ground blast furnace slag, Construction and Building Materials, 50, 177-183.DOI
14 
Topçu, İ. B. (2003), Properties of heavyweight concrete produced with barite, Cement and Concrete Research, 33(6), 815-822.DOI
15 
Shams, T., Eftekhari, M., Shirani, A. (2018), Investigation of gamma radiation attenuation in heavy concrete shields containing hematite and barite aggregates in multi-layered and mixed forms, Construction and Building Materials, 182, 35-42.DOI
16 
Azreen, N. M., Rashid, R. S. M., Amran, Y. H. M., Voo, Y. L., Haniza, M., Hairie, M., Alyousef, R., Alabduljabbar, H. (2020), Simulation of ultra-high-performance concrete mixed with hematite and barite aggregates using Monte Carlo for dry cask storage, Construction and Building Materials, 263(1)DOI
17 
Tekin, H. O., Kavaz, E., Altunsoy, E. E., Kilicoglu, O., Agar, O., Erguzel, T. T., Sayyed, M. I. (2019), An extensive investigation on gamma-ray and neutron attenuation parameters of cobalt oxide and nickel oxide substituted bioactive glasses, Ceramics International, 45(8)DOI
18 
Khalaf, M. A., Ban, C. C., Ramli, M., Ahmed, N. M., Sern, L. J., Khaleel, H. A. (2020), Physicomechanical and gamma-ray shielding properties of high-strength heavyweight concrete containing steel furnace slag aggregate, Journal of Building Engineering, 30(1)DOI
19 
Lee, Y. C., Kim, G. Y., Nam, J. S., Kim, H. S., Lee, S. K. (2021), The effect of fiber on the pull-out behavior and tensile performance of FRCC, Journal of the Korea Concrete Institute, 33(4), 411-420.DOI
20 
Cheah, C. B., Khalaf, M. A., Ramli, M., Ahmed, N. M., Ahmad, M. S., Ali, A. M. A., Dawood, E. T., Ameri, F. (2021), Modern heavyweight concrete shielding: Principles, industrial applications and future challenges; review, Journal of Building Engineering, 39(1)DOI
21 
Ahmed, R., Hassan, G. S., Scott, T., Bakr, M. (2023), Assessment of Five Concrete Types as Candidate Shielding Materials for a Compact Radiation Source Based on the IECF, Materials, 16(7)DOI
22 
Choi, S.-Y., Kim, I.-S., Choi, Y.-S., Yang, E.-I. (2019), Applicability of heavyweight waste glass and steel slag as aggregate in heavyweight concrete, Journal of the Korea Institute for Structural Maintenance and Inspection, 23(2)Google Search
23 
McAlister, D. R. (2012), Gamma ray attenuation properties of common shielding materialsGoogle Search
24 
Roslan, M. K. A., Ismail, M., Kueh, A. B. H., Zin, M. R. M. (2019), High-density concrete: exploring ferro boron effects in neutron and gamma radiation shielding, Construction and Building Materials, 215DOI
25 
Ahmad, N., Idris, M. I., Hussin, A., Abdul Karim, J., Azreen, N. M., Zainon, R. (2024), Enhancing shielding efficiency of ordinary and barite concrete in radiation shielding utilizations, Scientific Reports, 14DOI
26 
Ramli, N., Rashid, R. S. M., Nasir, N. A. M., Azeem, N. M., Karim, J. A. (2025), Modified ultra-high-performance concrete with boron carbide for neutron and gamma radiation shielding, Construction and Building Materials, 467DOI
27 
McAlister, D. R. (2016), Neutron shielding materialsGoogle Search
28 
Azeez, M. O., Ahmad, S., Al-Dulaijan, S. U., Maslehuddin, M., Naqvi, A. A. (2019), Radiation shielding performance of heavy-weight concrete mixtures, Construction and Building Materials, 224(1)DOI
29 
Esfahani, SMRA, Zareei, S. A., Madhkhan, M., Ameri, F., Rashidiani, J., Taheri, R. A. (2021), Mechanical and gamma-ray shielding properties and environmental benefits of concrete incoporating GGPFS and copper slag, Elsevier, 33DOI
30 
Esen, Y., Doğan, Z. M. (2017), Evaluation of physical and mechanical characteristics of siderite concrete to be used as heavy-weight concrete, Cement and Concrete Composites, 82DOI
31 
Tufekci, M. M., Gokce, A. (2018), Development of heavyweight high performance fiber reinforced cementitious composites (HPFRCC) – Part II: X-ray and gamma radiation shielding properties, Construction and Building Materials, 163DOI
32 
Ouda, Ahmed, S. (2015), Development of high-performance heavy density concrete using different aggregates for gamma-ray shielding, Progress in Nuclear Energy, 79DOI
33 
Azeez, Mukhtar Oluwaseun, Ahmad, Shamsad, Al-Dulaijan, Salah U., Maslehuddin, Mohammed, Naqvi, Akhtar Abbas (2019), Radiation shielding performance of heavy-weight concrete mixtures, Construction and Building Materials, 224DOI
34 
Gharieb, Mahmoud, Mosleh, Youssef A., Alwetaishi, Mamdooh, Hussein, Enas E., Sultan, Mohamed E. (2021), Effect of using heavy aggregates on the high performance concrete used in nuclear facilities, Construction and Building Materials, 310DOI
35 
Aygün, B. (2019), Neutron and gamma radiation shielding properties of high-temperature-resistant heavy concretes including chromite and wolframite, Journal of Radiation Research and Applied Sciences, 12(1)DOI
36 
Gencel, O. (2011), Physical and mechanical properties of concrete containing hematite as aggregatesGoogle Search
37 
Ibrahim, A. M., Mohamed, A. R., El-Khatib, A. M., Alabsy, M. T., Elsalamawy, M. (2021), Effect of hematite and iron slag as aggregate replacement on thermal, mechanical, and gamma-radiation shielding properties of concrete, Construction and Building Materials, 310DOI
38 
Bashter, I. I. (1997), Calculation of radiation attenuation coefficients for shielding concretes, Annals of Nuclear Energy, 24(17)DOI
39 
Daungwilailuk, T., Yenchai, C., Rungjaroenkiti, W., Pheinsusom, P., Panwisawas, C., Pansuk, W. (2022), Use of barite concrete for radiation shielding against gamma-rays and neutrons, Construction and Building Materials, 326DOI
40 
Piotrowski, T., Mazgaj, M., Żak, A., Skubalski, J. (2015), Importance of atomic composition and moisture content of cement-based composites in neutron radiation shielding, Procedia Engineering, 108DOI