Thermal neutron shielding properties of rare-earth nickel alloy materials
The thermal neutron shielding performance of rare-earth nickel alloys are investigated, specifically focusing on the influence of various rare-earth elements and their concentrations on neutron transmission coefficients. The nickel-based alloy GH3535, with a thickness of 0.5 cm, was doped with mono...
Saved in:
Main Authors: | , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Elsevier
2025-09-01
|
Series: | Nuclear Materials and Energy |
Subjects: | |
Online Access: | http://www.sciencedirect.com/science/article/pii/S2352179125001115 |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
_version_ | 1839623711096832000 |
---|---|
author | Junze Lin Deyang Cui Xiaoxiao Li Chunyan Zou Jianhui Wu Cuilan Ren Jingen Chen |
author_facet | Junze Lin Deyang Cui Xiaoxiao Li Chunyan Zou Jianhui Wu Cuilan Ren Jingen Chen |
author_sort | Junze Lin |
collection | DOAJ |
description | The thermal neutron shielding performance of rare-earth nickel alloys are investigated, specifically focusing on the influence of various rare-earth elements and their concentrations on neutron transmission coefficients. The nickel-based alloy GH3535, with a thickness of 0.5 cm, was doped with mono or binary rare-earth elements. The thermal neutron transmission coefficients were assessed using Monte Carlo simulation methods. Key parameters analyzed included macroscopic absorption and scattering cross-sections, secondary gamma dose, and displacement radiation damage from recoil electrons. The results reveal that thermal neutrons in GH3535 primarily lose energy through scattering, allowing for a high transmission coefficient of 7.24 × 10−1. The incorporation of gadolinium (Gd), a rare-earth element with the largest thermal neutron microscopic absorption cross-section, into GH3535 forms a mono rare-earth nickel alloy, Gd-Ni. The introduction of Gd significantly enhanced the Gd-Ni alloy’s absorption capacity, achieving a transmission coefficient of 2.52 × 10−6 at 1.50 wt% Gd, with a secondary gamma dose of 2.32 × 10−5 pSv·s−1. Further doping of binary Gd-Ni alloys with other rare-earth elements, such as samarium (Sm), europium (Eu), and dysprosium (Dy), formed binary rare-earth nickel alloys Gd-Re-Ni and substantially improved shielding effectiveness. Compared to the Gd-Ni alloy (1.5 wt% Gd), the thermal neutron transmission coefficients were reduced by 64.47 % (1.0 wt% Sm), 54.68 % (1.0 wt%, Eu), and 15.13 % (1.0 wt%, Dy). The secondary gamma dose varied with different dopants and Eu notably minimized gamma exposure yielding a dose of 2.29 × 10−5 pSv·s−1 at 1.0 wt% Eu. Meanwhile, doping with Eu, Sm and Dy reduced the displacement per atom (DPA) in the Gd-Re-Ni alloy, thereby enhancing its resistance to irradiation damage. The study demonstrates that the incorporation of rare-earth elements, particularly Eu and Dy, significantly enhances the thermal neutron shielding capabilities of nickel alloys while reducing secondary gamma radiation and irradiation damage. These findings provide essential theoretical support for the design and application of advanced neutron shielding materials. |
format | Article |
id | doaj-art-1b9f2740d8b24e2a81b6c8c9f6a0267d |
institution | Matheson Library |
issn | 2352-1791 |
language | English |
publishDate | 2025-09-01 |
publisher | Elsevier |
record_format | Article |
series | Nuclear Materials and Energy |
spelling | doaj-art-1b9f2740d8b24e2a81b6c8c9f6a0267d2025-07-19T04:38:23ZengElsevierNuclear Materials and Energy2352-17912025-09-0144101969Thermal neutron shielding properties of rare-earth nickel alloy materialsJunze Lin0Deyang Cui1Xiaoxiao Li2Chunyan Zou3Jianhui Wu4Cuilan Ren5Jingen Chen6Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, ChinaShanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, ChinaShanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, China; Corresponding authors at: Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China.Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, ChinaShanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, ChinaShanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, ChinaShanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China; University of Chinese Academy of Sciences, Beijing 100049, China; Corresponding authors at: Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China.The thermal neutron shielding performance of rare-earth nickel alloys are investigated, specifically focusing on the influence of various rare-earth elements and their concentrations on neutron transmission coefficients. The nickel-based alloy GH3535, with a thickness of 0.5 cm, was doped with mono or binary rare-earth elements. The thermal neutron transmission coefficients were assessed using Monte Carlo simulation methods. Key parameters analyzed included macroscopic absorption and scattering cross-sections, secondary gamma dose, and displacement radiation damage from recoil electrons. The results reveal that thermal neutrons in GH3535 primarily lose energy through scattering, allowing for a high transmission coefficient of 7.24 × 10−1. The incorporation of gadolinium (Gd), a rare-earth element with the largest thermal neutron microscopic absorption cross-section, into GH3535 forms a mono rare-earth nickel alloy, Gd-Ni. The introduction of Gd significantly enhanced the Gd-Ni alloy’s absorption capacity, achieving a transmission coefficient of 2.52 × 10−6 at 1.50 wt% Gd, with a secondary gamma dose of 2.32 × 10−5 pSv·s−1. Further doping of binary Gd-Ni alloys with other rare-earth elements, such as samarium (Sm), europium (Eu), and dysprosium (Dy), formed binary rare-earth nickel alloys Gd-Re-Ni and substantially improved shielding effectiveness. Compared to the Gd-Ni alloy (1.5 wt% Gd), the thermal neutron transmission coefficients were reduced by 64.47 % (1.0 wt% Sm), 54.68 % (1.0 wt%, Eu), and 15.13 % (1.0 wt%, Dy). The secondary gamma dose varied with different dopants and Eu notably minimized gamma exposure yielding a dose of 2.29 × 10−5 pSv·s−1 at 1.0 wt% Eu. Meanwhile, doping with Eu, Sm and Dy reduced the displacement per atom (DPA) in the Gd-Re-Ni alloy, thereby enhancing its resistance to irradiation damage. The study demonstrates that the incorporation of rare-earth elements, particularly Eu and Dy, significantly enhances the thermal neutron shielding capabilities of nickel alloys while reducing secondary gamma radiation and irradiation damage. These findings provide essential theoretical support for the design and application of advanced neutron shielding materials.http://www.sciencedirect.com/science/article/pii/S2352179125001115Thermal neutron shieldingRare-earth elementsNickel alloyGH3535Secondary gamma doseDisplacement irradiation damage |
spellingShingle | Junze Lin Deyang Cui Xiaoxiao Li Chunyan Zou Jianhui Wu Cuilan Ren Jingen Chen Thermal neutron shielding properties of rare-earth nickel alloy materials Nuclear Materials and Energy Thermal neutron shielding Rare-earth elements Nickel alloy GH3535 Secondary gamma dose Displacement irradiation damage |
title | Thermal neutron shielding properties of rare-earth nickel alloy materials |
title_full | Thermal neutron shielding properties of rare-earth nickel alloy materials |
title_fullStr | Thermal neutron shielding properties of rare-earth nickel alloy materials |
title_full_unstemmed | Thermal neutron shielding properties of rare-earth nickel alloy materials |
title_short | Thermal neutron shielding properties of rare-earth nickel alloy materials |
title_sort | thermal neutron shielding properties of rare earth nickel alloy materials |
topic | Thermal neutron shielding Rare-earth elements Nickel alloy GH3535 Secondary gamma dose Displacement irradiation damage |
url | http://www.sciencedirect.com/science/article/pii/S2352179125001115 |
work_keys_str_mv | AT junzelin thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT deyangcui thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT xiaoxiaoli thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT chunyanzou thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT jianhuiwu thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT cuilanren thermalneutronshieldingpropertiesofrareearthnickelalloymaterials AT jingenchen thermalneutronshieldingpropertiesofrareearthnickelalloymaterials |