Deterioration Effect of Sandstone Tensile Strength and Its Mesoscopic Mechanism under Dry-wet Cycles

IF 1.4 4区 工程技术 Q3 ENGINEERING, CIVIL Periodica Polytechnica-Civil Engineering Pub Date : 2023-04-12 DOI:10.3311/ppci.22007
Jianfei Yang, Guodong Zhang, Lixu Deng, Yaxin Zhang, Zheng Li, Y. Ye
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Abstract

The rock mass in the hydro-fluctuating zone of the reservoir bank slope is under dry-wet cycles for a long time, which will cause the deterioration of rock mass and induce geological disasters. In this study, a series of dry-wet cycle tests on the argillaceous quartz sandstone in the Three Gorges Reservoir area was carried out. Then, after different dry-wet cycles, the sandstone specimens were used to conduct the Brazilian splitting, scanning electron microscope, and 3D laser scanning tests. Herein, we provided detailed physical and microscopy image data to analyze the deterioration effect of tensile strength and mesostructure deterioration process of sandstone. With the increase of dry-wet cycles, the tensile strength of sandstone initially decreases rapidly, and then the decline rate tends to slow down. The evolution laws of fractal dimension and porosity are also significantly consistent with the deterioration of tensile strength. Moreover, further mesostructural analysis has revealed the repeated “absorption and swelling-dehydration and contraction” of clay minerals. This results in the breakage of framework mineral quartz and the expansion and connectivity of internal cracks, which ultimately deteriorates sandstone’s tensile strength.
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干湿循环作用下砂岩抗拉强度劣化效应及其细观机制
水库岸坡水力波动带岩体长期处于干湿循环状态,会造成岩体劣化,诱发地质灾害。本文对三峡库区泥质石英砂岩进行了干湿循环试验。然后,在不同干湿循环后,对砂岩试样进行巴西劈裂、扫描电镜和三维激光扫描试验。为此,我们提供了详细的物理和显微图像数据,分析了砂岩抗拉强度的劣化效应和细观结构劣化过程。随着干湿循环次数的增加,砂岩抗拉强度先迅速下降,然后下降速度趋于放缓。分形维数和孔隙率的演化规律也与抗拉强度的劣化有显著的一致性。此外,进一步的细观结构分析揭示了粘土矿物的反复“吸收膨胀-脱水收缩”。这导致骨架矿物石英的断裂,内部裂缝的扩展和连通性,最终降低砂岩的抗拉强度。
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来源期刊
Periodica Polytechnica-Civil Engineering
Periodica Polytechnica-Civil Engineering 工程技术-工程:土木
CiteScore
3.40
自引率
16.70%
发文量
89
审稿时长
12 months
期刊介绍: Periodica Polytechnica Civil Engineering is a peer reviewed scientific journal published by the Faculty of Civil Engineering of the Budapest University of Technology and Economics. It was founded in 1957. Publication frequency: quarterly. Periodica Polytechnica Civil Engineering publishes both research and application oriented papers, in the area of civil engineering. The main scope of the journal is to publish original research articles in the wide field of civil engineering, including geodesy and surveying, construction materials and engineering geology, photogrammetry and geoinformatics, geotechnics, structural engineering, architectural engineering, structural mechanics, highway and railway engineering, hydraulic and water resources engineering, sanitary and environmental engineering, engineering optimisation and history of civil engineering. The journal is abstracted by several international databases, see the main page.
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