Numerical simulation of chloride diffusion in cementitious materials by lattice type model

The chloride ingress is one of the most significant problems to reinforced concrete structures in coastal areas and cold regions where the de-icing salt is commonly used. In this paper, the lattice type model which has been widely used in fracture analysis of brittle materials is applied to simulate...

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Main Authors: Li Tianhua, Pan Zichao, Bai Wenying, Zhang Kejia
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2019/24/matecconf_acem2019_02008.pdf
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spelling doaj-55caa385f52249ef8b9dffe25e1564ac2021-02-02T02:16:55ZengEDP SciencesMATEC Web of Conferences2261-236X2019-01-012750200810.1051/matecconf/201927502008matecconf_acem2019_02008Numerical simulation of chloride diffusion in cementitious materials by lattice type modelLi Tianhua0Pan Zichao1Bai Wenying2Zhang Kejia3Xinjiang urban construction and test Co., Ltd.Department of Bridge Engineering, Tongji UniversityXinjiang urban construction and test Co., Ltd.Xinjiang urban construction and test Co., Ltd.The chloride ingress is one of the most significant problems to reinforced concrete structures in coastal areas and cold regions where the de-icing salt is commonly used. In this paper, the lattice type model which has been widely used in fracture analysis of brittle materials is applied to simulate the chloride diffusion process in cementitious materials. The theoretical background of the lattice type model in solving the mass transport problem is briefly presented. The analytical solution of the Fick’s law is adopted to theoretically validate the developed lattice type model. After that, two typical case studies are included to demonstrate the application of the lattice type model in the chloride ingress issue. In the first case, the tortuosity effect of the aggregates on the chloride diffusion front at meso-scale is studied by the lattice model. In the second case, the lattice model is applied in the simulation of the chloride diffusion in cracked concrete. The results show that the lattice type model can be a useful tool to simulate the chloride ingress in the cementitious materials.https://www.matec-conferences.org/articles/matecconf/pdf/2019/24/matecconf_acem2019_02008.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Li Tianhua
Pan Zichao
Bai Wenying
Zhang Kejia
spellingShingle Li Tianhua
Pan Zichao
Bai Wenying
Zhang Kejia
Numerical simulation of chloride diffusion in cementitious materials by lattice type model
MATEC Web of Conferences
author_facet Li Tianhua
Pan Zichao
Bai Wenying
Zhang Kejia
author_sort Li Tianhua
title Numerical simulation of chloride diffusion in cementitious materials by lattice type model
title_short Numerical simulation of chloride diffusion in cementitious materials by lattice type model
title_full Numerical simulation of chloride diffusion in cementitious materials by lattice type model
title_fullStr Numerical simulation of chloride diffusion in cementitious materials by lattice type model
title_full_unstemmed Numerical simulation of chloride diffusion in cementitious materials by lattice type model
title_sort numerical simulation of chloride diffusion in cementitious materials by lattice type model
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2019-01-01
description The chloride ingress is one of the most significant problems to reinforced concrete structures in coastal areas and cold regions where the de-icing salt is commonly used. In this paper, the lattice type model which has been widely used in fracture analysis of brittle materials is applied to simulate the chloride diffusion process in cementitious materials. The theoretical background of the lattice type model in solving the mass transport problem is briefly presented. The analytical solution of the Fick’s law is adopted to theoretically validate the developed lattice type model. After that, two typical case studies are included to demonstrate the application of the lattice type model in the chloride ingress issue. In the first case, the tortuosity effect of the aggregates on the chloride diffusion front at meso-scale is studied by the lattice model. In the second case, the lattice model is applied in the simulation of the chloride diffusion in cracked concrete. The results show that the lattice type model can be a useful tool to simulate the chloride ingress in the cementitious materials.
url https://www.matec-conferences.org/articles/matecconf/pdf/2019/24/matecconf_acem2019_02008.pdf
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