Mesoscale modeling of flexural fracture behavior in steel fiber reinforced concrete

Author:

Yu Yong12,Xu Jinjun3ORCID,Chen Weisen2,Wu Bo4ORCID

Affiliation:

1. School of Civil Engineering and Engineering Management, Guangzhou Maritime University, Guangzhou, China

2. School of Environment and Civil Engineering, Dongguan University of Technology, Dongguan, China

3. College of Civil Engineering, Nanjing Tech University, Nanjing, China

4. State Key Laboratory of Subtropical Building and Urban Science, South China University of Technology, Guangzhou, China

Abstract

This paper presents a computational study on the flexural fracture behaviors of steel fiber reinforced concrete (SFRC). The focus is on investigating the impacts of various factors on SFRC, utilizing a discrete-continuum coupled finite element method. This method explicitly models each material phase, including coarse aggregates, mortar paste, steel fibers and interfacial transition zones (ITZs), allowing precise tracking of mesoscale cracking during bending. The simulation method is developed, calibrated and validated before conducting a parametric investigation. Critical factors considered include the spatial positioning of coarse aggregates and steel fibers, fiber content, length and diameter, and the bonding property of fiber-mortar ITZs. Results indicate that steel fibers modify crack development in notched beams, causing greater distortion in the primary crack. Increasing fiber content from 0 to 2% enhances flexural tensile strength but introduces more variability. Longer fibers initially increase strength, then decrease, while thicker fibers consistently reduce strength. Improving the bond between fibers and mortar does not substantially increase the load-bearing capacity of the beam. In conclusion, this study shows how the established approach enhances understanding of the mechanical responses of SFRC under flexural-fracture loading.

Publisher

SAGE Publications

Subject

Building and Construction,Civil and Structural Engineering

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