Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes

In the high-temperature and high-pressure irradiation environments, the multi-field coupling processes of hydrogen diffusion, hydride precipitation and mechanical deformation in Zircaloy cladding tubes occur. To simulate this hydrogen-induced complex behavior, a multi-field coupling method is develo...

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Main Authors: Zhongjia Xia, Bingzhong Wang, Jingyu Zhang, Shurong Ding, Liang Chen, Hua Pang, Xiaoming Song
Format: Article
Language:English
Published: Elsevier 2019-02-01
Series:Nuclear Engineering and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S1738573318305138
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spelling doaj-eacbf0b8450d4b0ca4a760a47564db742020-11-24T23:13:30ZengElsevierNuclear Engineering and Technology1738-57332019-02-01511238248Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubesZhongjia Xia0Bingzhong Wang1Jingyu Zhang2Shurong Ding3Liang Chen4Hua Pang5Xiaoming Song6Institute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai 200433, ChinaInstitute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai 200433, ChinaInstitute of Mechanics and Computational Engineering, Department of Aeronautics and Astronautics, Fudan University, Shanghai 200433, 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 Institution of China, Chengdu 610041, Sichuan, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institution of China, Chengdu 610041, Sichuan, ChinaScience and Technology on Reactor System Design Technology Laboratory, Nuclear Power Institution of China, Chengdu 610041, Sichuan, ChinaIn the high-temperature and high-pressure irradiation environments, the multi-field coupling processes of hydrogen diffusion, hydride precipitation and mechanical deformation in Zircaloy cladding tubes occur. To simulate this hydrogen-induced complex behavior, a multi-field coupling method is developed, with the irradiation hardening effects and hydride-precipitation-induced expansion and hardening effects involved in the mechanical constitutive relation. The out-pile tests for a cracked cladding tube after irradiation are simulated, and the numerical results of the multi-fields at different temperatures are obtained and analyzed. The results indicate that: (1) the hydrostatic stress gradient is the fundamental factor to activate the hydrogen-induced multi-field coupling behavior excluding the temperature gradient; (2) in the local crack-tip region, hydrides will precipitate faster at the considered higher temperatures, which can be fundamentally attributed to the sensitivity of TSSP and hydrogen diffusion coefficient to temperature. The mechanism is partly explained for the enlarged velocity values of delayed hydride cracking (DHC) at high temperatures before crack arrest. This work lays a foundation for the future research on DHC. Keywords: Numerical simulation, Multi-field coupling, DHC, Irradiation effects, Hydride-precipitation-induced effectshttp://www.sciencedirect.com/science/article/pii/S1738573318305138
collection DOAJ
language English
format Article
sources DOAJ
author Zhongjia Xia
Bingzhong Wang
Jingyu Zhang
Shurong Ding
Liang Chen
Hua Pang
Xiaoming Song
spellingShingle Zhongjia Xia
Bingzhong Wang
Jingyu Zhang
Shurong Ding
Liang Chen
Hua Pang
Xiaoming Song
Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
Nuclear Engineering and Technology
author_facet Zhongjia Xia
Bingzhong Wang
Jingyu Zhang
Shurong Ding
Liang Chen
Hua Pang
Xiaoming Song
author_sort Zhongjia Xia
title Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
title_short Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
title_full Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
title_fullStr Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
title_full_unstemmed Three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
title_sort three-dimensional numerical simulation of hydrogen-induced multi-field coupling behavior in cracked zircaloy cladding tubes
publisher Elsevier
series Nuclear Engineering and Technology
issn 1738-5733
publishDate 2019-02-01
description In the high-temperature and high-pressure irradiation environments, the multi-field coupling processes of hydrogen diffusion, hydride precipitation and mechanical deformation in Zircaloy cladding tubes occur. To simulate this hydrogen-induced complex behavior, a multi-field coupling method is developed, with the irradiation hardening effects and hydride-precipitation-induced expansion and hardening effects involved in the mechanical constitutive relation. The out-pile tests for a cracked cladding tube after irradiation are simulated, and the numerical results of the multi-fields at different temperatures are obtained and analyzed. The results indicate that: (1) the hydrostatic stress gradient is the fundamental factor to activate the hydrogen-induced multi-field coupling behavior excluding the temperature gradient; (2) in the local crack-tip region, hydrides will precipitate faster at the considered higher temperatures, which can be fundamentally attributed to the sensitivity of TSSP and hydrogen diffusion coefficient to temperature. The mechanism is partly explained for the enlarged velocity values of delayed hydride cracking (DHC) at high temperatures before crack arrest. This work lays a foundation for the future research on DHC. Keywords: Numerical simulation, Multi-field coupling, DHC, Irradiation effects, Hydride-precipitation-induced effects
url http://www.sciencedirect.com/science/article/pii/S1738573318305138
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