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http://dx.doi.org/10.1016/j.net.2021.08.006

On the use of flyash-lime-gypsum (FaLG) bricks in the storage facilities for low level nuclear waste  

Sidhu, Baltej Singh (Department of Physics, S.D. College)
Dhaliwal, A.S. (Department of Physics, Sant Longowal Institute of Engineering & Technology. Deemed University)
Kahlon, K.S. (Department of Physics, Sant Longowal Institute of Engineering & Technology. Deemed University)
Singh, Suhkpal (Department of Basic and Applied Sciences, Physics, Punjabi University)
Publication Information
Nuclear Engineering and Technology / v.54, no.2, 2022 , pp. 674-680 More about this Journal
Abstract
In the present study, radiation shielding and protection ability of prepared Flyash-lime-Gypsum (FaLG) bricks has been studied in terms of energy exposure build up factors and dose parameters. The energy exposure build up factors of Flyash-lime-Gypsum (FaLG) bricks have been calculated for the energy range of 0.015 MeV-15 MeV and for penetration depth upto 40 mfp directly using a new and simplified Piecewise Linear Spline Interpolation Method (PLSIM). In this new method, the calculations of G.P fitting parameters are not required. The verification and accuracy of this new method has been checked by comparing the results of exposure build up factor for NBS concrete calculated using present method with the results obtained by using G.P fitting method. Further, the relative dose distribution and reduced exposure dose rate for various radioactive isotopes without any shielding material and with Flyash-lime-Gypsum (FaLG) bricks have been calculated in the energy range of 59.59-1332 keV. On the basis of the obtained results, it has been reported that the prepared Flyash-lime-Gypsum (FaLG) bricks possess satisfactory radiation shielding properties and can be used as environmentally safe storage facilities for low level nuclear waste.
Keywords
Environmentally safe storage of low level nuclear waste; Flyash-lime-gypsum (FaLG) bricks; Energy exposure build up factors (EBF); Relative dose distribution and exposure dose rate; Piecewise linear spline interpolation method (PLSIM);
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