Research Article
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Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes

Year 2024, Volume: 7 Issue: 3, 335 - 346, 30.09.2024
https://doi.org/10.35208/ert.1432036

Abstract

Environmental pollution increases due to the large amounts of waste production and raw material consumption depending on the increasing population. Agricultural and industrial wastes which are some of the sources of the pollution need to be reuse to reduce the negative impact on the environment and also contribute positive effect to the economy. In this context, industrial wastes such as clay types (red and green) and agricultural wastes such as egg shell, walnut shell and banana shell were used to prepare materials which can be used as replacement materials for construction industry. Radiation attenuation parameters (mass attenuation coefficients, effective atomic number, linear attenuation coefficients, mean free path, half-value layer, exposure and energy absorption build up factors, fast neutron removal cross-section) were acquired by Phy-X/PSD code. Spectroscopic techniques (XRD, EPR, SEM-EDS) were performed for the structural analysis. The existence of calcite main phase peaks (≈29.7) as well as SiO2 (≈20° and 26°) and cellulose phases (≈16° and 34.7°) were observed by XRD. Mn+2 sextet lines with five weak doublets attributed to the forbidden transition lines of Mn+2 and a singlet with a g value of ≈2.00 and linewidth of ≈10 G were recorded by EPR. Among the samples, it was found that K1 (Red clay (20%)-eggshell waste (60%)-Bayburt stone waste (20%)), K3 (Red clay (60%)-eggshell waste (20%)-Bayburt stone waste (20%)), C3 (Red clay (60%)-eggshell waste (20%)-walnut shell waste (20%)) and Z3 (Green clay (60%)-egg shell waste (20%)-Bayburt stone waste (20%)) have the highest shielding potentials. All samples examined with good protection performances can be used as substitute materials instead of cement or aggregate for the aim of reusing the wastes and supporting the environmental and economic benefits.

Project Number

BEBAP 2023.14

References

  • M. S. Nasr, A. A. Shubbar, Z. A. R. Abed, and M. S. Ibrahim “Properties of eco-friendly cement mortar recycled materials from different sources,” Journal of Building Engineering, Vol. 31, Article 101444, 2020. [CrossRef]
  • Z. He, A. Shen, H. Wu, W. Wang, L. Wang, C. Yao, and J. Wu, “Research progress on recycled clay brick waste as an alternative to cement for sustainable construction materials,” Construction Building Material, Vol. 274, Article 122113, 2021. [CrossRef]
  • N. Sathiparan, and H. T. S. M. De Zoysa, “The effects of using agricultural waste as partial substitute for sand in cement blocks,” Journal of Building Engineering, Vol. 19, pp. 216-227, 2018. [CrossRef]
  • S. F. Olukotun, S. T. Gbenu, F. I. Ibitoye, O. F. Oladejo, H. O. Shittu, M. K. Fasasi, and F. A. Balogun, “Investigation of gamma radiation shielding capability of two clay materials,” Nuclear Engineering and Technology, Vol. 50(6) pp.957–962, 2018. [CrossRef]
  • N. F. N. Zuhairi, H. N. Mohd, A. Ripin, M. I. Idris, and N. A. Mohd Radzali, “Study on clay bentonite and kaoline as shielding material,” Sains Malaysiana Vol. 49(3), pp. 683-691, 2020. [CrossRef]
  • I. Akkurt, A. Alomari, M. Y. Imamoglu, and I. Ekmekçi, “Medical radiation shielding in terms of effective atomic numbers and electron densities of some glasses,” Radiation Physics and Chemistry, Vol. 206, pp. 1-5, 2023. [CrossRef]
  • B. Alım, “A comprehensive study on radiation shielding characteristics of Tin-Silver, Manganin-R, Hastelloy-B, Hastelloy-X and Dilver-P alloys,” Applied Physics A, Vol. 126, pp. 262, 2020. [CrossRef]
  • O. Agar, H.O. Tekin, M. I. Sayyed, M. E. Korkmaz, O. Culfa, and C. Ertugay, “Experimental investigation of photon attenuation behaviors for concretes including natural perlite mineral,” Results in Physics, Vol. 12, pp. 237-243, 2019. [CrossRef]
  • Z. Aygun, M. Aygun, and N. Yarbasi, “A study on radiation shielding potentials of green and red clayey soils in Turkey reinforced with marble dust and waste tire,” Journal of New Results in Science, Vol. 10, pp. 46-59, 2021. [CrossRef]
  • Z. Aygun, N. Yarbasi, and M. Aygun, “Spectroscopic and radiation shielding features of Nemrut, Pasinler, Sarıkamıs and Ikizdere obsidians in Turkey: Experimental and theoretical stud,” Ceramics International, Vol. 47(24), pp. 34207-34217, 2021. [CrossRef]
  • Z. Aygun, and M. Aygun, “A study on usability of Ahlat ignimbrites and pumice as radiation shielding materials, by using EpiXS code,” International Journal of Environmental Science and Technology, Vol. 19, pp. 5675–5688, 2022.
  • M. Aygun, and Z. Aygun, “A comprehensive analysis on radiation shielding characteristics of borogypsum (boron waste) by Phy-X/PSD code,” Revista Mexicana de Física, Vol. 69(4), Article 040401, 2023. [CrossRef]
  • M. I. Sayyed, “The Impact of Chemical Composition, Density and Thickness on the Radiation Shielding Properties of CaO–Al2O3–SiO2 Glasses,” Silicon, Vol. 15 pp. 7917–7926, 2023. [CrossRef]
  • H. M. H. Zakaly, H. A. Saudi, H. O. Tekin, M. Rashad, A. M. Shams, Y. S. Issa, A. I. Rammah, M. M. Elazaka, and H. A. Ene, “Glass fabrication using ceramic and porcelain recycled waste and lithium niobate: physical, structural, optical and nuclear radiation attenuation properties,” Journal of Material Research Technology, Vol. 15, pp. 4074-4085, 2021. [CrossRef]
  • B. Oruncak, “Computation of neutron coefficients for B2O3 reinforced composite,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 50-53, 2023. [CrossRef]
  • R. D. Malidarre, H. O. Tekin, K. Günoğlu, and H. Akyıldırım, “Assessment of gamma ray shielding properties for skin,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 6-10, 2023. [CrossRef]
  • Q. A. A. D. Rwashdi, F. Q. Waheed, K. Günoğlu, and İ. Akkurt, “Experimental testing of the radiation shielding properties for steel,” International Journal of Computational and Experimental Science and and Engineering, Vol. 8, pp. 74-76, 2022.
  • Z. Aygun, and M. Aygun, “An analysis on radiation protection abilities of different colored obsidians,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 170-176, 2023. [CrossRef]
  • E. Sakar, O. F. Ozpolat, B. Alım, M. I. Sayyed, and M. Kurudirek, “Phy-X / PSD: Development of a user friendly online software for calculation of parameters relevant to radiation shielding and dosimetry,” Radiation Physics and Chemistry, Vol. 166, Article 108496, 2020. [CrossRef]
  • C. Xiang, E. H. Han, Z. M. Zhang, H. M. Fu, J. Q. Wang, H.F. Zhang, and G. D. Hu, “Design of single-phase high-entropy alloys composed of low thermal neutron absorption cross-section elements for nuclear power plant application,” Intermetallic, Vol. 104, pp. 143-153, 2019. [CrossRef]
  • D. F. Jackson, and D. J. Hawkes, “X-ray attenuation coefficients of elements and mixtures,” Physics Reports, Vol. 70, pp. 169–233, 1981. [CrossRef]
  • Y. Harima, Y. Sakamoto, S. Tanaka, and M. Kawai, “Validity of geometric progression formula in approximating gamma-ray buildup factors,” Nuclear Science and Engineering, Vol. 94, pp. 24–35, 1986. [CrossRef]
  • Y. Harima, “An historical review and current status of buildup factor calculations and applications,” Radiation Physics and Chemistry, Vol. 41, pp. 631–672, 1993. [CrossRef]
  • ANSI/ANS 6.4.3, “Gamma-ray Attenuation Coefficients and Buildup Factors for Engineering Materials,” American Nucl Soc, La Grange Park, Illinois, 1991.
  • Z. Aygun, “Application of spectroscopic techniques for antioxidant property analysis of various food supplements and ganoderma lucidum coffee,” Pakistan Journal of Science Industrial Research B: Biological Scince, Vol. 60(3), pp. 145-153, 2017. [CrossRef]
  • M. S. El-Mahllawy, A. M. Kandeel, M. L. Abdel Latif, and A. M. El Nagar, “The feasibility of using marble cutting waste in a sustainable building clay industry,” Recycling Vol. 3, Article 39, 2018. [CrossRef]
  • T. Thriveni, S.Y. Nam, J.W. Ahn, “Enhancement of arsenic removal efficiency from mining waste water by accelerated carbonation,” IMPC, 2014.
  • B. Yu, G. Fan, S. Zhao, Y. Lu, Q. He, Q, Cheng, J. Yan, B. Chai, and G. Song, “Simultaneous isolation of cellulose and lignin from wheat straw and catalytic conversion to valuable chemical products,” Applied Biology and Chemistry, Vol. 64, Article 15, 2021. [CrossRef]
  • P. Scherrer, “Bestimmung der Grösse und der inneren Struktur von Kolloidteilchen mittels Röntgenstrahlen,” Nachr Ges Wiss Göttingen, Vol. 26, pp. 98-100, 1918. [Deutsch]
  • M. Aygun, Z. Aygun, and E. Ercan, “Radiation protection efficiency of newly produced W-based alloys: Experimental and computational study,” Radiation Physics and Chemistry, Vol. 212, Article 111147, 2023. [CrossRef]
  • Y. Shimoyama, M. Ukai, H. Nakamura, “Advanced protocol for the detection of irradiated food by electron spin resonance spectroscopy,” Radiation Physics and Chemistry Vol. 76, pp. 1837-1839, 2007. [CrossRef]
  • Y. Shimoyama, M. Ukai, and H. Nakamura, “ESR detection of wheat flour before and after irradiation,” Spectrochimica Acta A, Vol. 63, pp. 888-890, 2006. [CrossRef]
  • M. Ukai, H. Kameya, H. Nakamura, Y. Shimoyam, “An electron spin resonance study of dry vegetables before and after irradiation,” Spectrochimica Acta A, Vol. 69, pp. 1417-1422, 2008. [CrossRef]
  • M. J. Berger, and J. H. Hubbell, “XCOM: Photon Cross Sections Database,” Web Version 1.2. National Institute of Standards and Technology Gaithersburg, MD. 20899 USA 1987. [CrossRef]
  • Z. Aygun, and M. Aygun, “Radiation shielding potentials of rene alloys by Phy-X/PSD code,” Acta Physica Polonica A, Vol. 5(141), pp. 507-515, 2022. [CrossRef]
Year 2024, Volume: 7 Issue: 3, 335 - 346, 30.09.2024
https://doi.org/10.35208/ert.1432036

Abstract

Project Number

BEBAP 2023.14

References

  • M. S. Nasr, A. A. Shubbar, Z. A. R. Abed, and M. S. Ibrahim “Properties of eco-friendly cement mortar recycled materials from different sources,” Journal of Building Engineering, Vol. 31, Article 101444, 2020. [CrossRef]
  • Z. He, A. Shen, H. Wu, W. Wang, L. Wang, C. Yao, and J. Wu, “Research progress on recycled clay brick waste as an alternative to cement for sustainable construction materials,” Construction Building Material, Vol. 274, Article 122113, 2021. [CrossRef]
  • N. Sathiparan, and H. T. S. M. De Zoysa, “The effects of using agricultural waste as partial substitute for sand in cement blocks,” Journal of Building Engineering, Vol. 19, pp. 216-227, 2018. [CrossRef]
  • S. F. Olukotun, S. T. Gbenu, F. I. Ibitoye, O. F. Oladejo, H. O. Shittu, M. K. Fasasi, and F. A. Balogun, “Investigation of gamma radiation shielding capability of two clay materials,” Nuclear Engineering and Technology, Vol. 50(6) pp.957–962, 2018. [CrossRef]
  • N. F. N. Zuhairi, H. N. Mohd, A. Ripin, M. I. Idris, and N. A. Mohd Radzali, “Study on clay bentonite and kaoline as shielding material,” Sains Malaysiana Vol. 49(3), pp. 683-691, 2020. [CrossRef]
  • I. Akkurt, A. Alomari, M. Y. Imamoglu, and I. Ekmekçi, “Medical radiation shielding in terms of effective atomic numbers and electron densities of some glasses,” Radiation Physics and Chemistry, Vol. 206, pp. 1-5, 2023. [CrossRef]
  • B. Alım, “A comprehensive study on radiation shielding characteristics of Tin-Silver, Manganin-R, Hastelloy-B, Hastelloy-X and Dilver-P alloys,” Applied Physics A, Vol. 126, pp. 262, 2020. [CrossRef]
  • O. Agar, H.O. Tekin, M. I. Sayyed, M. E. Korkmaz, O. Culfa, and C. Ertugay, “Experimental investigation of photon attenuation behaviors for concretes including natural perlite mineral,” Results in Physics, Vol. 12, pp. 237-243, 2019. [CrossRef]
  • Z. Aygun, M. Aygun, and N. Yarbasi, “A study on radiation shielding potentials of green and red clayey soils in Turkey reinforced with marble dust and waste tire,” Journal of New Results in Science, Vol. 10, pp. 46-59, 2021. [CrossRef]
  • Z. Aygun, N. Yarbasi, and M. Aygun, “Spectroscopic and radiation shielding features of Nemrut, Pasinler, Sarıkamıs and Ikizdere obsidians in Turkey: Experimental and theoretical stud,” Ceramics International, Vol. 47(24), pp. 34207-34217, 2021. [CrossRef]
  • Z. Aygun, and M. Aygun, “A study on usability of Ahlat ignimbrites and pumice as radiation shielding materials, by using EpiXS code,” International Journal of Environmental Science and Technology, Vol. 19, pp. 5675–5688, 2022.
  • M. Aygun, and Z. Aygun, “A comprehensive analysis on radiation shielding characteristics of borogypsum (boron waste) by Phy-X/PSD code,” Revista Mexicana de Física, Vol. 69(4), Article 040401, 2023. [CrossRef]
  • M. I. Sayyed, “The Impact of Chemical Composition, Density and Thickness on the Radiation Shielding Properties of CaO–Al2O3–SiO2 Glasses,” Silicon, Vol. 15 pp. 7917–7926, 2023. [CrossRef]
  • H. M. H. Zakaly, H. A. Saudi, H. O. Tekin, M. Rashad, A. M. Shams, Y. S. Issa, A. I. Rammah, M. M. Elazaka, and H. A. Ene, “Glass fabrication using ceramic and porcelain recycled waste and lithium niobate: physical, structural, optical and nuclear radiation attenuation properties,” Journal of Material Research Technology, Vol. 15, pp. 4074-4085, 2021. [CrossRef]
  • B. Oruncak, “Computation of neutron coefficients for B2O3 reinforced composite,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 50-53, 2023. [CrossRef]
  • R. D. Malidarre, H. O. Tekin, K. Günoğlu, and H. Akyıldırım, “Assessment of gamma ray shielding properties for skin,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 6-10, 2023. [CrossRef]
  • Q. A. A. D. Rwashdi, F. Q. Waheed, K. Günoğlu, and İ. Akkurt, “Experimental testing of the radiation shielding properties for steel,” International Journal of Computational and Experimental Science and and Engineering, Vol. 8, pp. 74-76, 2022.
  • Z. Aygun, and M. Aygun, “An analysis on radiation protection abilities of different colored obsidians,” International Journal of Computational and Experimental Science and Engineering, Vol. 9, pp. 170-176, 2023. [CrossRef]
  • E. Sakar, O. F. Ozpolat, B. Alım, M. I. Sayyed, and M. Kurudirek, “Phy-X / PSD: Development of a user friendly online software for calculation of parameters relevant to radiation shielding and dosimetry,” Radiation Physics and Chemistry, Vol. 166, Article 108496, 2020. [CrossRef]
  • C. Xiang, E. H. Han, Z. M. Zhang, H. M. Fu, J. Q. Wang, H.F. Zhang, and G. D. Hu, “Design of single-phase high-entropy alloys composed of low thermal neutron absorption cross-section elements for nuclear power plant application,” Intermetallic, Vol. 104, pp. 143-153, 2019. [CrossRef]
  • D. F. Jackson, and D. J. Hawkes, “X-ray attenuation coefficients of elements and mixtures,” Physics Reports, Vol. 70, pp. 169–233, 1981. [CrossRef]
  • Y. Harima, Y. Sakamoto, S. Tanaka, and M. Kawai, “Validity of geometric progression formula in approximating gamma-ray buildup factors,” Nuclear Science and Engineering, Vol. 94, pp. 24–35, 1986. [CrossRef]
  • Y. Harima, “An historical review and current status of buildup factor calculations and applications,” Radiation Physics and Chemistry, Vol. 41, pp. 631–672, 1993. [CrossRef]
  • ANSI/ANS 6.4.3, “Gamma-ray Attenuation Coefficients and Buildup Factors for Engineering Materials,” American Nucl Soc, La Grange Park, Illinois, 1991.
  • Z. Aygun, “Application of spectroscopic techniques for antioxidant property analysis of various food supplements and ganoderma lucidum coffee,” Pakistan Journal of Science Industrial Research B: Biological Scince, Vol. 60(3), pp. 145-153, 2017. [CrossRef]
  • M. S. El-Mahllawy, A. M. Kandeel, M. L. Abdel Latif, and A. M. El Nagar, “The feasibility of using marble cutting waste in a sustainable building clay industry,” Recycling Vol. 3, Article 39, 2018. [CrossRef]
  • T. Thriveni, S.Y. Nam, J.W. Ahn, “Enhancement of arsenic removal efficiency from mining waste water by accelerated carbonation,” IMPC, 2014.
  • B. Yu, G. Fan, S. Zhao, Y. Lu, Q. He, Q, Cheng, J. Yan, B. Chai, and G. Song, “Simultaneous isolation of cellulose and lignin from wheat straw and catalytic conversion to valuable chemical products,” Applied Biology and Chemistry, Vol. 64, Article 15, 2021. [CrossRef]
  • P. Scherrer, “Bestimmung der Grösse und der inneren Struktur von Kolloidteilchen mittels Röntgenstrahlen,” Nachr Ges Wiss Göttingen, Vol. 26, pp. 98-100, 1918. [Deutsch]
  • M. Aygun, Z. Aygun, and E. Ercan, “Radiation protection efficiency of newly produced W-based alloys: Experimental and computational study,” Radiation Physics and Chemistry, Vol. 212, Article 111147, 2023. [CrossRef]
  • Y. Shimoyama, M. Ukai, H. Nakamura, “Advanced protocol for the detection of irradiated food by electron spin resonance spectroscopy,” Radiation Physics and Chemistry Vol. 76, pp. 1837-1839, 2007. [CrossRef]
  • Y. Shimoyama, M. Ukai, and H. Nakamura, “ESR detection of wheat flour before and after irradiation,” Spectrochimica Acta A, Vol. 63, pp. 888-890, 2006. [CrossRef]
  • M. Ukai, H. Kameya, H. Nakamura, Y. Shimoyam, “An electron spin resonance study of dry vegetables before and after irradiation,” Spectrochimica Acta A, Vol. 69, pp. 1417-1422, 2008. [CrossRef]
  • M. J. Berger, and J. H. Hubbell, “XCOM: Photon Cross Sections Database,” Web Version 1.2. National Institute of Standards and Technology Gaithersburg, MD. 20899 USA 1987. [CrossRef]
  • Z. Aygun, and M. Aygun, “Radiation shielding potentials of rene alloys by Phy-X/PSD code,” Acta Physica Polonica A, Vol. 5(141), pp. 507-515, 2022. [CrossRef]
There are 35 citations in total.

Details

Primary Language English
Subjects Waste Management, Reduction, Reuse and Recycling, Environmental Pollution and Prevention
Journal Section Research Articles
Authors

Zeynep Aygun 0000-0002-2979-0283

Murat Aygün 0000-0002-4276-3511

Project Number BEBAP 2023.14
Publication Date September 30, 2024
Submission Date February 5, 2024
Acceptance Date March 18, 2024
Published in Issue Year 2024 Volume: 7 Issue: 3

Cite

APA Aygun, Z., & Aygün, M. (2024). Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes. Environmental Research and Technology, 7(3), 335-346. https://doi.org/10.35208/ert.1432036
AMA Aygun Z, Aygün M. Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes. ERT. September 2024;7(3):335-346. doi:10.35208/ert.1432036
Chicago Aygun, Zeynep, and Murat Aygün. “Radiation Shielding and Spectroscopic Features of Replacement Materials: Reusing of Agricultural and Industrial Wastes”. Environmental Research and Technology 7, no. 3 (September 2024): 335-46. https://doi.org/10.35208/ert.1432036.
EndNote Aygun Z, Aygün M (September 1, 2024) Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes. Environmental Research and Technology 7 3 335–346.
IEEE Z. Aygun and M. Aygün, “Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes”, ERT, vol. 7, no. 3, pp. 335–346, 2024, doi: 10.35208/ert.1432036.
ISNAD Aygun, Zeynep - Aygün, Murat. “Radiation Shielding and Spectroscopic Features of Replacement Materials: Reusing of Agricultural and Industrial Wastes”. Environmental Research and Technology 7/3 (September 2024), 335-346. https://doi.org/10.35208/ert.1432036.
JAMA Aygun Z, Aygün M. Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes. ERT. 2024;7:335–346.
MLA Aygun, Zeynep and Murat Aygün. “Radiation Shielding and Spectroscopic Features of Replacement Materials: Reusing of Agricultural and Industrial Wastes”. Environmental Research and Technology, vol. 7, no. 3, 2024, pp. 335-46, doi:10.35208/ert.1432036.
Vancouver Aygun Z, Aygün M. Radiation shielding and spectroscopic features of replacement materials: Reusing of agricultural and industrial wastes. ERT. 2024;7(3):335-46.