Cite this article as:

Ruofan Wang, Yujie Zhu, Lang Liu, Mengbo Zhu, Baoxu Yan, and Hao Cui, Time-dependent ground stability of inclined backfilled stope characterized by creep behavior, Int. J. Miner. Metall. Mater., (2025). https://doi.org/10.1007/s12613-025-3236-1
Ruofan Wang, Yujie Zhu, Lang Liu, Mengbo Zhu, Baoxu Yan, and Hao Cui, Time-dependent ground stability of inclined backfilled stope characterized by creep behavior, Int. J. Miner. Metall. Mater., (2025). https://doi.org/10.1007/s12613-025-3236-1
引用本文 PDF XML SpringerLink

倾斜充填采场蠕变围岩时效稳定性研究

摘要: 充填体广泛用于地下矿山支护,但其对采场围岩稳定性的长期作用研究较少,主要因传统观点认为充填体刚度远低于围岩。近期研究表明,竖直充填采场围岩稳定性具有明显时间依赖性,而实际采场多具有一定倾角,易导致上盘围岩失稳与矿石贫化。本文基于FLAC3D并耦合充填体固结与围岩蠕变变形影响,系统分析倾斜充填采场的长期稳定性。研究中围岩稳定性的分析主要包含围压效应、强度–应力比、应力路径相对于屈服面位置,以及岩石应力时效性分布规律。结果表明:当围岩蠕变较弱时,倾角增大会降低围岩约束效果,加剧围岩剥落风险;当蠕变显著时,较小倾角可通过激发充填体固结升阻特性,更有效发挥其被动支护能力。此外,还探讨了采场尺寸、埋深、岩体力学特性、充填体压缩性等因素对围岩应力重分布与长期稳定性的影响。

 

Time-dependent ground stability of inclined backfilled stope characterized by creep behavior

Abstract: Backfill is routinely adopted as a ground support measure for underground mines. However, ground stability enhancement by backfill has received limited research attention. This is likely to be because of the conventional assumption that the fill material exhibits a significantly lower stiffness than the host rocks. Significantly, a recent pioneering work revealed the time-dependent ground stability around a backfilled stope with vertical walls through numerical modeling. In practice, underground stopes typically exhibit a higher or lower degree of inclination. This alters the stress state in peripheral rocks and may induce severe instability and dilution, particularly in stope-hanging walls. Hence, it is imperative to analyze the time-dependent ground stability of inclined backfilled stopes for backfill structure design. Therefore, comprehensive numerical simulations were performed using FLAC3D to address this knowledge deficiency by incorporating a coupled analysis of the backfill consolidation behavior and long-term creep deformation in surrounding rocks. The ground stability was evaluated based on the confinement effectiveness, strength–stress ratio, stress path relative to the yield surface, and time-dependent stress redistribution in the rocks. A parametric study revealed that the inclination angle of the backfilled stope reduced the confinement effectiveness in the host rocks when the wall creep was minor. This exacerbated the rock mass sloughing potential. However, a backfilled stope with a shallower dip angle achieved superior ground stability enhancement when the creep deformation was substantial, by applying a more significant compression on the backfill and effectively mobilizing its passive support performance during consolidation. Additional simulations were conducted to analyze the effects of stope height and width, mine depth, mechanical properties of rocks, backfill compressibility, and filling gap on the time-dependent stress redistribution and stability around the inclined backfilled stope.

 

/

返回文章
返回