Hu Yu, Li Zhuo, Su Yawen, Wu Yongbo, Li Xiaoshuai, Gao Wenxue, Zhang Xiaojun
Faculty of Architecture, Civil and Transportation Engineering, Beijing University of Technology, Beijing 100124, China.
The Seventh Metallurgical Construction Co., Ltd., Guiyang 550014, China.
Materials (Basel). 2023 Aug 18;16(16):5677. doi: 10.3390/ma16165677.
The dynamic characteristics of the filling body are the key parameters for designing the filling ratio and evaluating the stability of an underground stope. The different environment (water-bearing state) of the filling body in the underground stope exerts a complex impact on the mechanical behavior of the filling body. Therefore, six groups of cemented filling body specimens with different states were formed and subjected to dynamic uniaxial impact tests. The effects of water content on the mechanical properties, fractal dimension, and deformation damage characteristics of the cemented backfill under dynamic load were analyzed in depth, and a dynamic damage constitutive model that considers water damage and the compaction stage was established. The results indicate the following: (1) Due to the change of the specimen from the dry state to the water saturation state, the dynamic compressive strength of the cemented filling body decreases from 5.03 Mpa to 1.79 Mpa; however, the ductility of the specimen generally increases, and the filling body specimens with different water contents mainly exhibit tensile failure. (2) There is a significant nonlinear relationship between the water content and the fractal dimension of the cemented backfill specimen, and the growth rate of the fractal dimension tends to slow down with the increase in the water content. (3) From the energy evolution perspective, the water content of the specimen exerts a significant effect on the elastic deformation and failure stage of the stress-strain curve, and the slope of the dissipated energy-strain curve decreases with the increase in water content. (4) Based on the Weibull distribution and damage theory, a statistical damage constitutive model of cemented backfill was established, and it was compared with the experimental curve to verify the rationality of the model. Therefore, the relationship between stress and damage and the strain curves is discussed, and it is inferred that the damage evolution curve of cemented backfill is a typical -shaped curve that exhibits a stable development-rapid increase-tending to be gentle. This study can provide a theoretical reference for further understanding the dynamic behavior and stability of backfill under different water conditions.
充填体的动力学特性是设计充填率和评价地下采场稳定性的关键参数。地下采场中充填体所处的不同环境(含水状态)对充填体的力学行为产生复杂影响。因此,制备了六组不同状态的胶结充填体试样并进行动态单轴冲击试验。深入分析了含水量对动态荷载作用下胶结充填体力学性能、分形维数及变形破坏特征的影响,建立了考虑水损伤和压实阶段的动态损伤本构模型。结果表明:(1)随着试样从干燥状态变为饱水状态,胶结充填体的动态抗压强度从5.03MPa降至1.79MPa;然而,试样的延性总体增加,不同含水量的充填体试样主要表现为拉伸破坏。(2)胶结充填体试样的含水量与分形维数之间存在显著的非线性关系,且分形维数的增长率随含水量的增加而趋于减缓。(3)从能量演化角度看,试样的含水量对应力 - 应变曲线的弹性变形和破坏阶段有显著影响,耗散能 - 应变曲线的斜率随含水量的增加而减小。(4)基于 Weibull 分布和损伤理论,建立了胶结充填体的统计损伤本构模型,并与试验曲线进行对比以验证模型的合理性。因此,讨论了应力与损伤和应变曲线之间的关系,推断胶结充填体的损伤演化曲线是一条典型的“稳定发展 - 快速增加 - 趋于平缓”的S形曲线。本研究可为进一步了解不同水条件下充填体的动态行为和稳定性提供理论参考。