Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel

An understanding of the coarsening process of the large fission gas pores in the high burn-up structure (HBS) of irradiated UO2 fuel is very necessary for analyzing the safety and reliability of fuel rods in a reactor. A numerical model for the description of pore coarsening in the HBS based on the...

Full description

Bibliographic Details
Main Authors: Hongxing Xiao, Chongsheng Long
Format: Article
Language:English
Published: Elsevier 2016-08-01
Series:Nuclear Engineering and Technology
Subjects:
UO2
Online Access:http://www.sciencedirect.com/science/article/pii/S1738573316000759
id doaj-d0049ae28f344fb78fc6439d962be4b4
record_format Article
spelling doaj-d0049ae28f344fb78fc6439d962be4b42020-11-24T23:01:55ZengElsevierNuclear Engineering and Technology1738-57332016-08-014841002100810.1016/j.net.2016.02.013Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 FuelHongxing XiaoChongsheng LongAn understanding of the coarsening process of the large fission gas pores in the high burn-up structure (HBS) of irradiated UO2 fuel is very necessary for analyzing the safety and reliability of fuel rods in a reactor. A numerical model for the description of pore coarsening in the HBS based on the Ostwald ripening mechanism, which has successfully explained the coarsening process of precipitates in solids is developed. In this model, the fission gas atoms are treated as the special precipitates in the irradiated UO2 fuel matrix. The calculated results indicate that the significant pore coarsening and mean pore density decrease in the HBS occur upon surpassing a local burn-up of 100 GWd/tM. The capability of this model is successfully validated against irradiation experiments of UO2 fuel, in which the average pore radius, pore density, and porosity are directly measured as functions of local burn-up. Comparisons with experimental data show that, when the local burn-up exceeds 100 GWd/tM, the calculated results agree well with the measured data.http://www.sciencedirect.com/science/article/pii/S1738573316000759High Burn-Up StructureModelPore CoarseningUO2
collection DOAJ
language English
format Article
sources DOAJ
author Hongxing Xiao
Chongsheng Long
spellingShingle Hongxing Xiao
Chongsheng Long
Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
Nuclear Engineering and Technology
High Burn-Up Structure
Model
Pore Coarsening
UO2
author_facet Hongxing Xiao
Chongsheng Long
author_sort Hongxing Xiao
title Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
title_short Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
title_full Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
title_fullStr Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
title_full_unstemmed Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel
title_sort modeling of pore coarsening in the rim region of high burn-up uo2 fuel
publisher Elsevier
series Nuclear Engineering and Technology
issn 1738-5733
publishDate 2016-08-01
description An understanding of the coarsening process of the large fission gas pores in the high burn-up structure (HBS) of irradiated UO2 fuel is very necessary for analyzing the safety and reliability of fuel rods in a reactor. A numerical model for the description of pore coarsening in the HBS based on the Ostwald ripening mechanism, which has successfully explained the coarsening process of precipitates in solids is developed. In this model, the fission gas atoms are treated as the special precipitates in the irradiated UO2 fuel matrix. The calculated results indicate that the significant pore coarsening and mean pore density decrease in the HBS occur upon surpassing a local burn-up of 100 GWd/tM. The capability of this model is successfully validated against irradiation experiments of UO2 fuel, in which the average pore radius, pore density, and porosity are directly measured as functions of local burn-up. Comparisons with experimental data show that, when the local burn-up exceeds 100 GWd/tM, the calculated results agree well with the measured data.
topic High Burn-Up Structure
Model
Pore Coarsening
UO2
url http://www.sciencedirect.com/science/article/pii/S1738573316000759
work_keys_str_mv AT hongxingxiao modelingofporecoarseningintherimregionofhighburnupuo2fuel
AT chongshenglong modelingofporecoarseningintherimregionofhighburnupuo2fuel
_version_ 1725638434418065408