Discrete element analysis of the strength anisotropy of fiber-reinforced sands subjected to direct shear load

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Abstract

Soil reinforcement with natural or synthetic fibers enhances its mechanical behavior in various applications. Fiber-reinforced sands (FRS) can be relatively anisotropic because of the fiber self-weight and the compaction technique. However, the microscopic mechanisms underlying the anisotropy are still poorly understood. This study used a discrete element approach to analyze the microscopic mechanisms underlying the strength anisotropy of FRS due to fiber orientation. Analysis of contact networks revealed that the optimum fiber orientation angle is perpendicular to the main direction of strong contact force in direct shear testing. These fibers produced the largest increase in shear zone thickness, normal force around the fiber body, effective contact area, tensile force along fibers, and energy storage/dissipation. This study is valuable for further understanding of the mechanical behaviors of FRS.

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Gong, L., Nie, L., & Xu, Y. (2020). Discrete element analysis of the strength anisotropy of fiber-reinforced sands subjected to direct shear load. Applied Sciences (Switzerland), 10(11). https://doi.org/10.3390/app10113693

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