School of Resources and Environmental Engineering, Wuhan University of Science and Technology, Wuhan, China.
Hubei Key Laboratory for Efficient Utilization and Agglomeration of Metallurgic Mineral Resources, Wuhan, China.
PLoS One. 2023 Mar 27;18(3):e0280793. doi: 10.1371/journal.pone.0280793. eCollection 2023.
For a long time, one of the important safety problems in open-pit mines is the stability of a large number of high slopes with gently inclined soft interlayer. Rock masses formed after long geological processes generally have some initial damage. Mining works also cause varying degrees of disturbance and damage to rock masses in the mining area during the mining process. This phenomenon means that accurate characterization of the time-dependent creep damage for rock masses under shear load is necessary. The damage variable D is defined based on the spatial and temporal evolution laws of shear modulus and initial level of damage for the rock mass. In addition, a coupling damage equation between the initial damage of the rock mass and shear creep damage is established based on Lemaitre's strain equivalence assumption. Kachanov's damage theory is also incorporated to describe the entire process of time-dependent creep damage evolution for rock masses. A creep damage constitutive model that can reasonably reflect the actual mechanical properties of rock masses under multi-stage shear creep loading conditions is established. This takes into account multi-stage shear creep loading conditions, instantaneous creep damage during the shear load phase, staged creep damage and factors influencing the initial damage of rock masses. The reasonableness, reliability and applicability of this model are verified by comparing the results of the multi-stage shear creep test with calculated values from the proposed model. As opposed to the traditional creep damage model, the shear creep model established in this present study takes into account the initial damage of rock masses and can describe the multi-stage shear creep damage characteristics of rock masses more convincingly.
长期以来,露天矿的一个重要安全问题是大量缓倾斜软弱夹层的高边坡稳定性。经过长期地质作用形成的岩体一般具有一定的初始损伤。在开采过程中,采动也会对采场周围的岩体造成不同程度的扰动和破坏。这意味着需要准确描述剪切载荷作用下岩体的时变蠕变损伤。基于岩体剪切模量和初始损伤水平的时空演化规律,定义损伤变量 D。此外,根据 Lemaitre 的应变等效假设,建立了岩体初始损伤与剪切蠕变损伤之间的耦合损伤方程。还采用了 Kachanov 的损伤理论来描述岩体的时变蠕变损伤演化全过程。建立了一个能够合理反映岩体在多级剪切蠕变加载条件下实际力学性能的蠕变损伤本构模型。该模型考虑了多级剪切蠕变加载条件、剪切载荷阶段的瞬时蠕变损伤、分级蠕变损伤以及影响岩体初始损伤的因素。通过将多级剪切蠕变试验结果与所提出模型的计算值进行比较,验证了该模型的合理性、可靠性和适用性。与传统的蠕变损伤模型不同,本研究建立的剪切蠕变模型考虑了岩体的初始损伤,可以更逼真地描述岩体的多级剪切蠕变损伤特征。