Numerical characterization on fracture evolution behavior of pre-flawed sandstone under monotonic and multilevel cyclic loading

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
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Abstract

This study employed an improved stress corrosion model within a three-dimensional particle flow program to investigate the mechanical and cracking behavior of fractured sandstone samples with varying rock bridge angles under both monotonic loading and multilevel cyclic loading. Firstly, using the experimental results from intact sandstone under uniaxial compression, we calibrated the microscopic mechanical parameters of the parallel bond model. Then, the model was validated using the experimental results of fractured sandstone under monotonic and cyclic loading. Finally, the initiation, propagation, and coalescence behavior of cracks in fractured sandstone samples under the above two loading paths, as well as the evolution process of the stress field, displacement field, and force chain distribution, were discussed in detail. The results show that the stress–strain curves, strength, deformation parameters, and macroscopic failure modes obtained from numerical simulations are consistent with those from laboratory mechanical tests. The mechanical behavior of fractured sandstone is influenced by both the rock bridge angle and the loading path. As the rock bridge angle decreases, the mechanical parameters of the sample show an increasing trend, and the influence of rock bridge angle on the failure mode is reduced. Cracks in the samples all initiate at the tips of pre-existing flaws, and the rock bridge angle affects the crack propagation and coalescence process: for sandstones with smaller rock bridge angles, cracks gradually extend to the sample’s ends; for sandstones with larger rock bridge angles, direct coalescence of cracks at the rock bridge is observed, then extending to the sample’s ends. Compared with monotonic loading, the damage degree of sandstone samples under multilevel cyclic loading is more severe, and even obvious block spalling is observed. The experimental and numerical simulation results are expected to improve the understanding of the mechanical behavior and fracture behavior of fractured rocks under monotonic and multilevel cyclic loading.

单级和多级循环加载下预成孔砂岩断裂演化行为的数值表征
本研究在三维粒子流程序中采用了改进的应力腐蚀模型,研究了不同岩桥角的断裂砂岩样品在单调加载和多级循环加载下的力学和开裂行为。首先,我们利用完整砂岩在单轴压缩下的实验结果,校准了平行粘结模型的微观力学参数。然后,利用单轴和循环加载下断裂砂岩的实验结果对模型进行了验证。最后,详细讨论了上述两种加载路径下断裂砂岩样品裂缝的起始、扩展和凝聚行为,以及应力场、位移场和力链分布的演变过程。结果表明,数值模拟得到的应力应变曲线、强度、变形参数和宏观破坏模式与实验室力学试验结果一致。断裂砂岩的力学行为受岩桥角和加载路径的影响。随着岩桥角的减小,样品的力学参数呈上升趋势,岩桥角对破坏模式的影响减小。样品中的裂纹都是在原有缺陷的顶端产生的,岩桥角会影响裂纹的扩展和凝聚过程:对于岩桥角较小的砂岩,裂纹会逐渐扩展到样品的两端;对于岩桥角较大的砂岩,裂纹会在岩桥处直接凝聚,然后扩展到样品的两端。与单调加载相比,砂岩样品在多级循环加载下的破坏程度更为严重,甚至出现明显的块体剥落。实验和数值模拟结果有望加深人们对单调加载和多级循环加载下断裂岩石力学行为和断裂行为的理解。
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来源期刊
Theoretical and Applied Fracture Mechanics
Theoretical and Applied Fracture Mechanics 工程技术-工程:机械
CiteScore
8.40
自引率
18.90%
发文量
435
审稿时长
37 days
期刊介绍: Theoretical and Applied Fracture Mechanics'' aims & scopes have been re-designed to cover both the theoretical, applied, and numerical aspects associated with those cracking related phenomena taking place, at a micro-, meso-, and macroscopic level, in materials/components/structures of any kind. The journal aims to cover the cracking/mechanical behaviour of materials/components/structures in those situations involving both time-independent and time-dependent system of external forces/moments (such as, for instance, quasi-static, impulsive, impact, blasting, creep, contact, and fatigue loading). Since, under the above circumstances, the mechanical behaviour of cracked materials/components/structures is also affected by the environmental conditions, the journal would consider also those theoretical/experimental research works investigating the effect of external variables such as, for instance, the effect of corrosive environments as well as of high/low-temperature.
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