Creep behavior of sandstone under the coupling action of stress and pore water pressure using three-dimensional digital image correlation

IF 4 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Damage Mechanics Pub Date : 2023-11-03 DOI:10.1177/10567895231209838
Cancan Chen, Heping Xie, Jiang Xu, Shoujian Peng, Cunbao Li, Minghui Li
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Abstract

Understanding the damage evolution and time-dependent property of rock creep is of great significance for predicting geohazards and evaluating the long-term stability of geotechnical structures. In this study, a three-dimensional digital image correlation system was adopted to investigate the creep behavior of sandstone under the coupling action of stress and pore water pressure. The apparent strain fields, deformation characteristics of the localization zone, and micromorphology of the fracture surface were analyzed. The results demonstrated that when the applied deviatoric stress level was above σ ci (crack initial stress) or σ cd (crack damage stress), the increase in pore water pressure promoted creep deformation evidently, improved the creep rate significantly and shortened the time-to-failure of the rock obviously. In the radial strain field, the localized development of substantial microcracks on the rock surface was concentrated in the steady-state creep, while the microcracks interconnected to form macroscopic shear cracks that dominated the accelerating creep, and this damage evolution characteristic can be used as a precursor and early warning of rock creep failure. Besides, increasing the pore water pressure also would cause the divergence point of strain curves inside and outside the localization zone to appear earlier at the secondary creep, and produce a wider localization zone at the tertiary creep. The creep fracture surface of the rock was dominated by intergranular microcracks. Increasing the pore water pressure would result in the deterioration of the cemented structure and breakage of the cemented matrix more seriously, thus stimulating the generation of more microcracks.
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利用三维数字图像相关技术研究应力与孔隙水压力耦合作用下砂岩的蠕变行为
了解岩石蠕变的损伤演化和随时间变化的特性,对于预测地质灾害和评价岩土结构的长期稳定性具有重要意义。本文采用三维数字图像相关系统,研究了砂岩在应力和孔隙水压力耦合作用下的蠕变行为。分析了断口局部化区的视应变场、变形特征和断口表面的微观形貌。结果表明:当施加偏应力水平大于σ ci(裂纹初始应力)或σ cd(裂纹损伤应力)时,孔隙水压力的增加明显促进了岩石的蠕变变形,显著提高了岩石的蠕变速率,明显缩短了岩石的破坏时间;在径向应变场中,岩石表面大量微裂纹的局部发育集中在稳态蠕变中,而微裂纹相互联结形成宏观剪切裂纹以加速蠕变为主,这种损伤演化特征可作为岩石蠕变破坏的前兆和预警。此外,孔隙水压力的增大也会使二次蠕变局部化区内外应变曲线的发散点出现得更早,三级蠕变局部化区出现得更宽。岩石蠕变断口以晶间微裂纹为主。孔隙水压力的增加会导致胶结结构的恶化和胶结基体的破坏更加严重,从而刺激更多微裂纹的产生。
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来源期刊
International Journal of Damage Mechanics
International Journal of Damage Mechanics 工程技术-材料科学:综合
CiteScore
8.70
自引率
26.20%
发文量
48
审稿时长
5.4 months
期刊介绍: Featuring original, peer-reviewed papers by leading specialists from around the world, the International Journal of Damage Mechanics covers new developments in the science and engineering of fracture and damage mechanics. Devoted to the prompt publication of original papers reporting the results of experimental or theoretical work on any aspect of research in the mechanics of fracture and damage assessment, the journal provides an effective mechanism to disseminate information not only within the research community but also between the reseach laboratory and industrial design department. The journal also promotes and contributes to development of the concept of damage mechanics. This journal is a member of the Committee on Publication Ethics (COPE).
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