The aim of this paper was to use the surface fractal dimension (Ds) to evaluate the chloride ion penetration of cement mortar in extremely cold regions. Pore structure is a critical factor that influences the permeability of cement mortar. This study investigated surface fractal dimensions of the pore structure of cement mortars, which were subject to one-time freezing for 7 days after casting. A thermodynamic model was applied to calculate Ds on the basis of mercury intrusion porosimetry data. The results show that the pore structures of all specimens exhibit the scale-dependent fractal property, and three distinct fractal regions (I, II, III) are obtained. According to the regression analysis results of fractal dimension and pore structure parameters, it was found that the fractal dimension can characterise the complexity and chaos of pore structure and predict pore size distribution. Based on this, a linear regression between chloride diffusion coefficient (Dnssm) and Ds in fractal regions was carried out. The results show that Ds of micro pores (region I) have good correlation with Dnssm, up to 0.92908, which is more accurate than the porosity. An index of surface fractal dimension is proposed to evaluate the durability of concrete buildings in extremely cold regions.
Article navigation
July 2021
Research Article|
September 09 2020
New approach for evaluating chloride ion penetration of mortar in cold environments
Shuai Bai;
Shuai Bai
PhD student, School of Civil Engineering, Harbin Institute of Technology, Harbin, P. R. China
Search for other works by this author on:
Xinchun Guan
Xinchun Guan
Professor, School of Civil Engineering, Harbin Institute of Technology, Harbin, P. R. China (corresponding author: guanxch@hit.edu.cn)
Search for other works by this author on:
Publisher: Emerald Publishing
Received:
June 20 2019
Accepted:
July 22 2020
Online ISSN: 1751-7605
Print ISSN: 0951-7197
ICE Publishing: All rights reserved
2020
Advances in Cement Research (2021) 33 (7): 285–294.
Article history
Received:
June 20 2019
Accepted:
July 22 2020
Citation
Bai S, Guan X (2021), "New approach for evaluating chloride ion penetration of mortar in cold environments". Advances in Cement Research, Vol. 33 No. 7 pp. 285–294, doi: https://doi.org/10.1680/jadcr.19.00100
Download citation file:
New and popular articles
Suggested Reading
A water permeability model of nano-reinforced cement pastes based on general effective media theory and multifractals
Advances in Cement Research (December,2021)
Progressive internal erosion during triaxial shearing: an X-ray micro-computed tomography study
Geotechnique (February,2025)
Investigation of the pore structure performance of dune sand mortar with ceramic waste
Proceedings of the Institution of Civil Engineers - Engineering Sustainability (October,2024)
Influence of soil-contaminated water on clogging phenomenon of pervious concretes with different void contents
Magazine of Concrete Research (September,2024)
Erosion of aerial lime and sticky rice mortars by cyclic wetting–drying and dilute sulfate acid actions
Advances in Cement Research (January,2019)
Related Chapters
EXPERIENCE WITH SELF COMPACTING CONCRETE MADE FROM LOCAL MATERIALS
Innovations and Developments In Concrete Materials And Construction: Proceedings of the International Conference held at the University of Dundee, Scotland, UK on 9–11 September 2002
INFLUENCE OF CALCIUM NITRITE INHIBITOR ON THE CORROSION OF STEEL REINFORCEMENT DUE TO CARBONATION
Innovations and Developments In Concrete Materials And Construction: Proceedings of the International Conference held at the University of Dundee, Scotland, UK on 9–11 September 2002
NUMERICAL AND EXPERIMENTAL STUDIES OF PERCOLATION PHENOMENA OF HARDENING CEMENT PASTES
Role of Cement Science in Sustainable Development: Proceedings of the International Symposium held at the University of Dundee, Scotland, UK on 3–4 September 2003
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
