Mechanism and Failure Mode of Tensile Strength Deterioration of Shikuosi Sandstone under Dry and Wet Cycling

被引:2
|
作者
Chen Z. [1 ]
Lan H. [1 ,2 ]
Liu S. [1 ]
Du K. [1 ]
机构
[1] School of Geological Engineering and Geomatics, Chang’an University, Xi’an
[2] Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing
关键词
deterioration mechanism; grotto sandstone; rock mechanics; tensile strength; wetting⁃drying cycles;
D O I
10.3799/dqkx.2022.149
中图分类号
学科分类号
摘要
The dry⁃wet cycle has a serious impact on the grotto sandstone, causing a large number of cantilever cracking damages to the grottoes. Through indoor dry⁃wet cycle test, Brazil split test and strain field analysis methods, the strength and mechanical parameters of the sample under different numbers of dry⁃wet cycles are analyzed and studied. The internal friction angle φ, cohesive force c, microstructure, strain field characteristics The law of change. The study found that with the increase of the number of dry⁃wet cycles, clay minerals gradually lost and the structure became loose. The weakening of the cementation between mineral particles led to the decrease of the cohesive force c of sandstone. At the same time, due to the change of the particle shape and pore structure of the sandstone, the contact relationship between the particles was changed, which led to the reduction of the internal friction angle φ, and finally caused the deterioration of its tensile and fracture mechanical properties. Finally, combining the failure process and crack distribution of the sample, two failure modes of the grotto sandstone under different dry⁃wet cycles are summarized. © 2024 China University of Geosciences. All rights reserved.
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页码:612 / 624
页数:12
相关论文
共 29 条
  • [21] Wen T., Zang X., Sun J.S., Et al., Brittle Evaluation Based on Energy Evolution at Pre⁃Peak and Post⁃Peak Stage, Earth Science, 46, 9, pp. 3385-3396, (2021)
  • [22] Xu Y.C., Li K.Q., Xie X.F., Et al., Grouting Rein⁃ forcement of Fractured Rock Mass Based on Damage Mechanics, Journal of Xi’an University of Science and Technology, 37, 1, pp. 26-31, (2017)
  • [23] Yang Z.F., Wang S.J., Xu B., Et al., Analysis of the Engineering Geological Conditions of Longyou Stone Caves and Primary Study on the Protection Strategies, Journal of Engineering Geology, 3, pp. 291-295, (2000)
  • [24] Yuan P., Ma Q.Y., Split Hopkinson Pressure Bar Tests on Sandstone in Coalmine under Cyclic Wetting and Drying, Rock and Soil Mechanics, 9, pp. 2557-2562, (2013)
  • [25] Zhang H. Q., Tannant D. D., Jing H. W., Et al., Evolution of Cohesion and Friction Angle during Micro⁃ fracture Accumulation in Rock, Natural Hazards, 77, 1, pp. 497-510, (2015)
  • [26] Zhang Z. H., Chen X. C., Yao H. Y., Et al., Ex⁃ perimental Investigation on Tensile Strength of Jurassic Red ⁃Bed Sandstone under the Conditions of Water Pressures and Wet⁃Dry Cycles, KSCE Journal of Civil Engineering, 25, 7, pp. 2713-2724, (2021)
  • [27] Zhao N., Wang L.G., Xi Y.H., Experiment Study of Crack Propagation and Strain Evolution of Brazil Disc Mudstone Specimen, Journal of Experimental Mechanics, 30, 6, pp. 791-796, (2015)
  • [28] Zhou P.G., Engineering Geomechanics Research on the Interaction Between Groundwater and Rock⁃Soil Medium, Earth Sciene Frontiers, 2, (1996)
  • [29] 2, pp. 54-65, (1994)