3D Multi-Ion Corrosion Model in Hierarchically Structured Cementitious Materials Obtained from Nano-XCT Data

Author:

Szyszkiewicz-Warzecha Krzysztof1,Stec Jakub1,Deja Jan1ORCID,Łagosz Artur1,Górska Anna1,Kutukova Kristina2,Zschech Ehrenfried23ORCID,Filipek Robert1

Affiliation:

1. Faculty of Materials Science and Ceramics, AGH-University of Krakow, al. Mickiewicza 30, 30-059 Krakow, Poland

2. deepXscan GmbH, Zeppelinstr. 1, 01324 Dresden, Germany

3. Research Area Nanomaterials, Brandenburg University of Technology Cottbus-Senftenberg, Platz der Deutschen Einheit 1, 03046 Cottbus, Germany

Abstract

Corrosion of steel reinforcements in concrete constructions is a worldwide problem. To assess the degradation of rebars in reinforced concrete, an accurate description of electric current, potential and concentrations of various species present in the concrete matrix is necessary. Although the concrete matrix is a heterogeneous porous material with intricate microstructure, mass transport has been treated in a homogeneous material so far, modifying bulk transport coefficients by additional factors (porosity, constrictivity, tortuosity), which led to so-called effective coefficients (e.g., diffusivity). This study presents an approach where the real 3D microstructure of concrete is obtained from high-resolution X-ray computed tomography (XCT), processed to generate a mesh for finite element method (FEM) computations, and finally combined with a multi-species system of transport and electric potential equations. This methodology allows for a more realistic description of ion movements and reactions in the bulk concrete and on the rebar surface and, consequently, a better evaluation of anodic and cathodic currents, ultimately responsible for the loss of reinforcement mass and its location. The results of this study are compared with a state-of-the-art model and numerical calculations for 2D and 3D geometries.

Funder

National Science Centre, Poland

Publisher

MDPI AG

Subject

General Materials Science

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