A Numerical Study of ITZ Percolation in Polyphase Concrete Systems Considering the Synergetic Effect of Aggregate Shape- and Size-Diversities

Author:

Lin Jianjun123ORCID,Zhao Qingxin13,Chen Huisu2ORCID,Li Mingqi4,Yuan Lili5

Affiliation:

1. State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao 066000, China

2. Jiangsu Key Laboratory of Construction Materials, School of Materials Science and Engineering, Southeast University, Nanjing 211189, China

3. Hebei Province Engineering Research Center for Harmless Synergistic Treatment and Recycling of Municipal Solid Waste, Yanshan University, Qinhuangdao 066000, China

4. School of Civil and Transportation Engineering, Hebei University of Technology, Tianjin 300401, China

5. Shenzhen Guoyi Park Construction Co., Ltd., Research and Development Center, Shenzhen 518040, China

Abstract

The percolation of the interfacial transition zone (ITZ) is generally regarded as an important factor that may accelerate the penetration of aggressive agents in concrete materials, and its threshold is largely determined by the features of aggregates. In most numerical studies about ITZ percolation, both fine aggregates and coarse aggregates are assumed to be the particles of uniform shape, and their size distributions are generally strung together by a single function, which is quite different from reality. To quantify the ITZ percolation associated with the polydispersity of aggregate shapes and size gradations in a more realistic way, the two-dimensional (2D) meso-scale model of concrete is generated by simplifying coarse aggregates and fine aggregates as polygons and ovals, respectively. Moreover, the size gradations of them are also represented by two separate expressions. By combining these models with percolation theory, the percolation of ITZ in the 2D case is explicitly simulated, and the influence of aggregate shape- and size-diversities on the critical threshold ϕagg,c is studied in detail. Based on the simulated results of ϕagg,c, an empirically analytical expression is further proposed to fast predict the ITZ percolation, and its reliability is verified. The results show that the ITZ thickness, average aggregate fineness, coarse aggregate shape, and fine aggregate shapes are the four main contributing factors to the ITZ percolation. Compared with the existing literature, the proposed model here has a broader range of applications (e.g., mortar, concrete, and other granular systems) in the 2D case and can provide the larger predicted results, which may be closer to reality.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hebei Province

open research fund of Jiangsu Key Laboratory of Construction Materials, Southeast University

Science and Technology Project of Hebei Education Department

Tianjin Education Commission Scientific Research Project

Shenzhen Science and technology R & D fund

Publisher

MDPI AG

Subject

General Materials Science

Reference38 articles.

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