Modelling of effective irradiation swelling for inert matrix fuels
The results of effective irradiation swelling in a wide range of burnup levels are numerically obtained for an inert matrix fuel, which are verified with DART model. The fission gas swelling of fuel particles is calculated with a mechanistic model, which depends on the external hydrostatic pressure....
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2021-08-01
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doaj-1b47e7a5e51a43418e7f9e5bafd14c232021-07-03T04:44:57ZengElsevierNuclear Engineering and Technology1738-57332021-08-0153826162628Modelling of effective irradiation swelling for inert matrix fuelsJing Zhang0Haoyu Wang1Hongyang Wei2Jingyu Zhang3Changbing Tang4Chuan Lu5Chunlan Huang6Shurong Ding7Yuanming Li8Institute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai, 200433, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, ChinaInstitute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai, 200433, China; Science and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, ChinaInstitute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai, 200433, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, ChinaInstitute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai, 200433, China; Corresponding author.Science and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institute of China, Chengdu, 610213, China; Corresponding author.The results of effective irradiation swelling in a wide range of burnup levels are numerically obtained for an inert matrix fuel, which are verified with DART model. The fission gas swelling of fuel particles is calculated with a mechanistic model, which depends on the external hydrostatic pressure. Additionally, irradiation and thermal creep effects are included in the inert matrix. The effects of matrix creep strains, external hydrostatic pressure and temperature on the effective irradiation swelling are investigated. The research results indicate that (1) the above effects are coupled with each other; (2) the matrix creep effects at high temperatures should be involved; and (3) ranged from 0 to 300 MPa, a remarkable dependence of external hydrostatic pressure can be found. Furthermore, an explicit multi-variable mathematic model is established for the effective irradiation swelling, as a function of particle volume fraction, temperature, external hydrostatic pressure and fuel particle fission density, which can well reproduce the finite element results. The mathematic model for the current volume fraction of fuel particles can help establish other effective performance models.http://www.sciencedirect.com/science/article/pii/S1738573321001091Inert matrix fuelEquivalent spherical modelEffective irradiation swellingHydrostatic pressureIrradiation and thermal creep |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jing Zhang Haoyu Wang Hongyang Wei Jingyu Zhang Changbing Tang Chuan Lu Chunlan Huang Shurong Ding Yuanming Li |
spellingShingle |
Jing Zhang Haoyu Wang Hongyang Wei Jingyu Zhang Changbing Tang Chuan Lu Chunlan Huang Shurong Ding Yuanming Li Modelling of effective irradiation swelling for inert matrix fuels Nuclear Engineering and Technology Inert matrix fuel Equivalent spherical model Effective irradiation swelling Hydrostatic pressure Irradiation and thermal creep |
author_facet |
Jing Zhang Haoyu Wang Hongyang Wei Jingyu Zhang Changbing Tang Chuan Lu Chunlan Huang Shurong Ding Yuanming Li |
author_sort |
Jing Zhang |
title |
Modelling of effective irradiation swelling for inert matrix fuels |
title_short |
Modelling of effective irradiation swelling for inert matrix fuels |
title_full |
Modelling of effective irradiation swelling for inert matrix fuels |
title_fullStr |
Modelling of effective irradiation swelling for inert matrix fuels |
title_full_unstemmed |
Modelling of effective irradiation swelling for inert matrix fuels |
title_sort |
modelling of effective irradiation swelling for inert matrix fuels |
publisher |
Elsevier |
series |
Nuclear Engineering and Technology |
issn |
1738-5733 |
publishDate |
2021-08-01 |
description |
The results of effective irradiation swelling in a wide range of burnup levels are numerically obtained for an inert matrix fuel, which are verified with DART model. The fission gas swelling of fuel particles is calculated with a mechanistic model, which depends on the external hydrostatic pressure. Additionally, irradiation and thermal creep effects are included in the inert matrix. The effects of matrix creep strains, external hydrostatic pressure and temperature on the effective irradiation swelling are investigated. The research results indicate that (1) the above effects are coupled with each other; (2) the matrix creep effects at high temperatures should be involved; and (3) ranged from 0 to 300 MPa, a remarkable dependence of external hydrostatic pressure can be found. Furthermore, an explicit multi-variable mathematic model is established for the effective irradiation swelling, as a function of particle volume fraction, temperature, external hydrostatic pressure and fuel particle fission density, which can well reproduce the finite element results. The mathematic model for the current volume fraction of fuel particles can help establish other effective performance models. |
topic |
Inert matrix fuel Equivalent spherical model Effective irradiation swelling Hydrostatic pressure Irradiation and thermal creep |
url |
http://www.sciencedirect.com/science/article/pii/S1738573321001091 |
work_keys_str_mv |
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