A new gas–solid reaction model for voloxidation process with spallation

A new methodology, the crack–spallation model, has been developed to analyze gas–solid reactions dominated by crack growth inside of the solid reactant and spallation phenomena. The new model physically represents three processes of the reaction progress: (1) diffusion of gas reactant through pores;...

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Main Authors: Je Ir Ryu, Seung Min Woo
Format: Article
Language:English
Published: Elsevier 2018-02-01
Series:Nuclear Engineering and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1738573317305430
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spelling doaj-49943b72e29540ca9475e0f5ba2714642020-11-24T22:31:50ZengElsevierNuclear Engineering and Technology1738-57332018-02-0150114515010.1016/j.net.2017.11.005A new gas–solid reaction model for voloxidation process with spallationJe Ir Ryu0Seung Min Woo1Department of Mechanical Engineering, University of California – Berkeley, Berkeley, CA 94720, USADepartment of Nuclear Engineering, University of California – Berkeley, Berkeley, CA 94720, USAA new methodology, the crack–spallation model, has been developed to analyze gas–solid reactions dominated by crack growth inside of the solid reactant and spallation phenomena. The new model physically represents three processes of the reaction progress: (1) diffusion of gas reactant through pores; (2) growth of product particle in pores; and (3) crack and spallation of solid reactant. The validation of this method has been conducted by comparison of results obtained in an experiment for oxidation of UO2 and the shrinking core model. The reaction progress evaluated by the crack–spallation model shows better agreement with the experimental data than that evaluated by the shrinking core model. To understand the trigger point during the reaction progress, a detailed analysis has been conducted. A parametric study also has been performed to determine mass diffusivities of the gas reactant and volume increase constants of the product particles. This method can be appropriately applied to the gas–solid reaction based on the crack and spallation phenomena such as the voloxidation process.http://www.sciencedirect.com/science/article/pii/S1738573317305430Crack–Spallation ModelGas–Solid ReactionsShrinking Core ModelVoloxidation
collection DOAJ
language English
format Article
sources DOAJ
author Je Ir Ryu
Seung Min Woo
spellingShingle Je Ir Ryu
Seung Min Woo
A new gas–solid reaction model for voloxidation process with spallation
Nuclear Engineering and Technology
Crack–Spallation Model
Gas–Solid Reactions
Shrinking Core Model
Voloxidation
author_facet Je Ir Ryu
Seung Min Woo
author_sort Je Ir Ryu
title A new gas–solid reaction model for voloxidation process with spallation
title_short A new gas–solid reaction model for voloxidation process with spallation
title_full A new gas–solid reaction model for voloxidation process with spallation
title_fullStr A new gas–solid reaction model for voloxidation process with spallation
title_full_unstemmed A new gas–solid reaction model for voloxidation process with spallation
title_sort new gas–solid reaction model for voloxidation process with spallation
publisher Elsevier
series Nuclear Engineering and Technology
issn 1738-5733
publishDate 2018-02-01
description A new methodology, the crack–spallation model, has been developed to analyze gas–solid reactions dominated by crack growth inside of the solid reactant and spallation phenomena. The new model physically represents three processes of the reaction progress: (1) diffusion of gas reactant through pores; (2) growth of product particle in pores; and (3) crack and spallation of solid reactant. The validation of this method has been conducted by comparison of results obtained in an experiment for oxidation of UO2 and the shrinking core model. The reaction progress evaluated by the crack–spallation model shows better agreement with the experimental data than that evaluated by the shrinking core model. To understand the trigger point during the reaction progress, a detailed analysis has been conducted. A parametric study also has been performed to determine mass diffusivities of the gas reactant and volume increase constants of the product particles. This method can be appropriately applied to the gas–solid reaction based on the crack and spallation phenomena such as the voloxidation process.
topic Crack–Spallation Model
Gas–Solid Reactions
Shrinking Core Model
Voloxidation
url http://www.sciencedirect.com/science/article/pii/S1738573317305430
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