4.7 Article

Research on the Macro-Mesoscopic Response Mechanism of Multisphere Approximated Heteromorphic Tailing Particles

期刊

LITHOSPHERE
卷 2022, 期 -, 页码 -

出版社

GEOSCIENCEWORLD
DOI: 10.2113/2022/1977890

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资金

  1. Open Fund Project of the National Engineering and Technology Research Center for Development & Utilizationof Phosphate Resources [NECP2022-07]
  2. National Natural Science Foundation of China [52174114]

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The shape of tailing particles is crucial for their macroscopic mechanical properties. This study investigates the macro-mesoscopic response of heteromorphic tailing particles using multisphere approximation and numerical simulation. The research reveals the relationship between mesostructure evolution and macroscopic engineering characteristics of heteromorphic tailing particles. The results show that changes in angularity affect particle rearrangements, porosity, and stress characteristics. The study also suggests that rigid boundary simulations are feasible for macroscopic mechanical behaviors. These findings provide important insights into the response and mechanical mechanisms of nonspherical particles and can be applied in microscopic simulations of tailings.
The shape of tailing particles is essential factors of their macroscopic mechanical properties. Scholars have studied the effects of controllable factors, such as loading method, confining pressure, and strain rate, on the strength of tailing sand. However, research on the tailing particle structure and shape through laboratory tests has proved to be difficult due to the uncertain and discrete tailing particle distribution. Thus, the macro-mesoscopic response of heteromorphic tailing particles is rarely investigated. In this paper, the macro-mesoscopic response of heteromorphic tailing particles is studied using multisphere approximation, and numerical simulation of triaxial tests on the particles is conducted. Nonlinear evolution patterns of porosity, internal friction angle, and cohesion of heteromorphic tailing particles with the variation of angularity were investigated using the flexible boundary program developed in this study, which revealed the intrinsic relationship between the mesostructure evolution mechanism and the macroscopic engineering characteristics of heteromorphic tailing particles. The research results showed that (1) changes in angularity led to tailing particle rearrangements and, in turn, porosity changes. With increased angularity and confining pressure, particle sphericity decreased, and the deviatoric and peak stress increased accordingly. In the meantime, the softening was more significant as the peak stress was exceeded, while the cohesive force generally increased. (2) With fixed particle shape and angularity, the internal friction angle decreased slightly as the effective confining pressure increased. (3) In the shearing process, the simulated contact force chain evolution of tailing particles with different shapes was similar. The disordered contact force chains gradually undergo directional connection, i.e., the increased confining pressure reduced the number of free tailing particles and increased the number of stressed particles. (4) The triaxial stress-strain and peak stress in rigid boundary simulations under different confining pressures were slightly lower than those in the flexible boundary simulations. However, the difference was insignificant, indicating the good feasibility and reasonability of rigid boundary simulations for the macroscopic mechanical behaviors in triaxial tests. The research results could offer more direct insights into the macro-mesoscopic response and mechanical mechanisms of nonspherical particles and provide references for the simulation of tailings at the microscopic levels.

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