Mechanical and Gamma-Ray Interaction Studies of PbO–MoO3–Li2O–B2O3 Glass System for Shielding Applications in The Low Energy Region: A Theoretical Approach
Abstract
:1. Introduction
2. Materials and Methods
2.1. Preparation of the Glass Samples
- Pb-S1: 30 PbO–5 MoO3–25 Li2O–40 B2O3 (density = 4.354 g/cm3)
- Pb-S2: 35 PbO–5 MoO3–20 Li2O–40 B2O3 (density = 4.838 g/cm3)
- Pb-S3: 40 PbO–5 MoO3–15 Li2O–40 B2O3 (density = 5.327 g/cm3)
- Pb-S4: 45 PbO–5 MoO3–10 Li2O–40 B2O3 (density = 5.853 g/cm3)
- Pb-S5: 50 PbO–5 MoO3–5 Li2O–40 B2O3 (density = 6.578 g/cm3)
2.2. Physical Properties
2.3. Mechanical Properties
2.4. Gamma Ray Shielding Properties
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Glass Code | Mole % of Oxides Present | Density (g/cm3) | Vm (cm3/mol) | OPD (mol/L) | OMV (cm3/mol) | |||
---|---|---|---|---|---|---|---|---|
PbO | MoO3 | Li2O | B2O3 | |||||
Pb-S1 | 30 | 5 | 25 | 40 | 4.354 | 25.144 | 75.563 | 13.234 |
Pb-S2 | 35 | 5 | 20 | 40 | 4.838 | 24.626 | 77.151 | 12.962 |
Pb-S3 | 40 | 5 | 15 | 40 | 5.327 | 24.180 | 78.575 | 12.727 |
Pb-S4 | 45 | 5 | 10 | 40 | 5.853 | 23.658 | 80.307 | 12.452 |
Pb-S5 | 50 | 5 | 5 | 40 | 6.578 | 22.520 | 84.366 | 11.853 |
Glass Code | Mechanical Properties | ||||||||
---|---|---|---|---|---|---|---|---|---|
nb (cm−3) | nc | E (GPa) | B (GPa) | G (GPa) | L (GPa) | σ | d | H (GPa) | |
Pb-S1 | 1.030 × 1023 | 1.939 | 47.06 | 33.51 | 19.82 | 59.94 | 0.266 | 2.37 | 2.89 |
Pb-S2 | 1.076 × 1023 | 2.000 | 45.17 | 33.07 | 18.93 | 58.30 | 0.273 | 2.29 | 2.68 |
Pb-S3 | 1.121 × 1023 | 2.064 | 43.03 | 32.30 | 17.94 | 56.23 | 0.279 | 2.22 | 2.48 |
Pb-S4 | 1.171 × 1023 | 2.133 | 40.89 | 31.59 | 16.96 | 54.21 | 0.285 | 2.15 | 2.28 |
Pb-S5 | 1.257 × 1023 | 2.207 | 39.67 | 32.41 | 16.29 | 54.14 | 0.297 | 2.01 | 2.07 |
Energy (keV) | Pb-S1 | Pb-S2 | Pb-S3 | ||||||
EPICS2017, ENDF/B-VIII (EpiXS) | EPDL97, ENDF/B-VI.8 (EpiXS) | Phy-X/PSD | EPICS2017, ENDF/B-VIII (EpiXS) | EPDL97, ENDF/B-VI.8 (EpiXS) | Phy-X/PSD | EPICS2017, ENDF/B-VIII (EpiXS) | EPDL97, ENDF/B-VI.8 (EpiXS) | Phy-X/PSD | |
20 | 49.703 | 52.619 | 52.799 | 53.155 | 55.827 | 56.025 | 56.089 | 58.554 | 58.767 |
40 | 8.808 | 8.791 | 8.811 | 9.340 | 9.323 | 9.344 | 9.792 | 9.774 | 9.797 |
60 | 3.085 | 3.084 | 3.107 | 3.267 | 3.266 | 3.291 | 3.421 | 3.421 | 3.447 |
80 | 1.486 | 1.494 | 1.522 | 1.570 | 1.578 | 1.608 | 1.641 | 1.650 | 1.682 |
Energy (keV) | Pb-S4 | Pb-S5 | |||||||
EPICS2017, ENDF/B-VIII (EpiXS) | EPDL97, ENDF/B-VI.8 (EpiXS) | Phy-X/PSD | EPICS2017, ENDF/B-VIII (EpiXS) | EPDL97, ENDF/B-VI.8 (EpiXS) | Phy-X/PSD | ||||
20 | 58.613 | 60.900 | 61.126 | 60.808 | 62.939 | 63.177 | |||
40 | 10.182 | 10.163 | 10.187 | 10.520 | 10.501 | 10.526 | |||
60 | 3.554 | 3.554 | 3.581 | 3.670 | 3.669 | 3.698 | |||
80 | 1.702 | 1.711 | 1.744 | 1.755 | 1.765 | 1.799 |
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Almuqrin, A.H.; Sayyed, M.I.; Albarzan, B.; Javier-Hila, A.M.V.; Alwadai, N.; Kumar, A. Mechanical and Gamma-Ray Interaction Studies of PbO–MoO3–Li2O–B2O3 Glass System for Shielding Applications in The Low Energy Region: A Theoretical Approach. Appl. Sci. 2021, 11, 5538. https://doi.org/10.3390/app11125538
Almuqrin AH, Sayyed MI, Albarzan B, Javier-Hila AMV, Alwadai N, Kumar A. Mechanical and Gamma-Ray Interaction Studies of PbO–MoO3–Li2O–B2O3 Glass System for Shielding Applications in The Low Energy Region: A Theoretical Approach. Applied Sciences. 2021; 11(12):5538. https://doi.org/10.3390/app11125538
Chicago/Turabian StyleAlmuqrin, Aljawhara H., M. I. Sayyed, Badriah Albarzan, Abigaile Mia V. Javier-Hila, Norah Alwadai, and Ashok Kumar. 2021. "Mechanical and Gamma-Ray Interaction Studies of PbO–MoO3–Li2O–B2O3 Glass System for Shielding Applications in The Low Energy Region: A Theoretical Approach" Applied Sciences 11, no. 12: 5538. https://doi.org/10.3390/app11125538
APA StyleAlmuqrin, A. H., Sayyed, M. I., Albarzan, B., Javier-Hila, A. M. V., Alwadai, N., & Kumar, A. (2021). Mechanical and Gamma-Ray Interaction Studies of PbO–MoO3–Li2O–B2O3 Glass System for Shielding Applications in The Low Energy Region: A Theoretical Approach. Applied Sciences, 11(12), 5538. https://doi.org/10.3390/app11125538