Experimental Study of Macro- and Micro-Scopic Damage in Red Sandstone under Dry and Wet Cycling

IF 1.5 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY Advances in Civil Engineering Pub Date : 2024-04-23 DOI:10.1155/2024/6681592
Xiangmei Chen, Yongqiang Ren, Baoli Tang, Guojin Li, Feitian Zhang, Yunfei Liu
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Abstract

The high-strength red sandstone in its natural state is subjected to significant strength deterioration under alternating wet and dry conditions, which can cause many catastrophic problems in the process of engineering construction. It is important to deeply understand the damage mechanism of red sandstone under the action of dry and wet cycles. Therefore, this paper explores the mechanism of red sandstone’s uniaxial deformation and failure through indoor uniaxial compression tests, studies the damage to the microstructure of red sandstone under wet–dry cycles using scanning electron microscopy, and establishes a damage variable based on fractal dimension. The results show that with the increase of wet–dry cycles, the peak stress of red sandstone shows a decreasing trend, and the minimum peak stress is 17.3 MPa, which is a 46.62% decrease compared to the sample with 0 wet–dry cycles. During the wet–dry cycle process, there are four deformation characteristics of red sandstone samples, namely, crack compression, crack extension, progressive fracture, and crack penetration. SEM images show that the porosity, pore area, and fractal dimension all show a nonlinear increase, and the maximum damage variable can reach 10.41%. The research results can provide guidance for engineering design and slope failure mechanism research in red sandstone areas.
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干湿循环条件下红砂岩宏观和微观损伤的实验研究
自然状态下的高强度红砂岩在干湿交替条件下会出现明显的强度劣化,在工程建设过程中会引发许多灾难性问题。深入了解红砂岩在干湿循环作用下的破坏机理具有重要意义。因此,本文通过室内单轴压缩试验探讨了红砂岩的单轴变形和破坏机理,利用扫描电镜研究了干湿循环作用下红砂岩微观结构的破坏情况,并建立了基于分形维度的破坏变量。结果表明,随着湿干循环次数的增加,红砂岩的峰值应力呈下降趋势,最小峰值应力为 17.3 MPa,与湿干循环次数为 0 的样品相比下降了 46.62%。在湿-干循环过程中,红砂岩样品有四种变形特征,即裂纹压缩、裂纹扩展、渐进断裂和裂纹渗透。扫描电镜图像显示,孔隙率、孔隙面积和分形维度均呈非线性增长,最大破坏变量可达 10.41%。研究结果可为红砂岩地区的工程设计和边坡破坏机理研究提供指导。
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来源期刊
Advances in Civil Engineering
Advances in Civil Engineering Engineering-Civil and Structural Engineering
CiteScore
4.00
自引率
5.60%
发文量
612
审稿时长
15 weeks
期刊介绍: Advances in Civil Engineering publishes papers in all areas of civil engineering. The journal welcomes submissions across a range of disciplines, and publishes both theoretical and practical studies. Contributions from academia and from industry are equally encouraged. Subject areas include (but are by no means limited to): -Structural mechanics and engineering- Structural design and construction management- Structural analysis and computational mechanics- Construction technology and implementation- Construction materials design and engineering- Highway and transport engineering- Bridge and tunnel engineering- Municipal and urban engineering- Coastal, harbour and offshore engineering-- Geotechnical and earthquake engineering Engineering for water, waste, energy, and environmental applications- Hydraulic engineering and fluid mechanics- Surveying, monitoring, and control systems in construction- Health and safety in a civil engineering setting. Advances in Civil Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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