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非均匀含水砂岩单轴抗压强度及破坏特性的数值模拟

Numerical Simulation of Uniaxial Compressive Strength and Failure Characteristics of Non-Uniform Water-Bearing Sandstone.

作者信息

Song Mingwei, Zhang Wenzhi, Zou Youfeng, Chen Junjie

机构信息

School of Surveying and Land Information Engineering, Henan Polytechnic University, Jiaozuo 454000, China.

Henan Engineering Research Center of Ecological Restoration and Construction Technology in Goaf Site, Jiaozuo 454000, China.

出版信息

Materials (Basel). 2023 Sep 25;16(19):6396. doi: 10.3390/ma16196396.

Abstract

As complex and heterogeneous materials, the mechanical properties of rocks are still in need of further investigation regarding the mechanisms of the effects of water. In engineering projects such as goaf foundation treatment and ecological restoration, it is particularly important to describe the fracturing process of non-uniform water-containing sandstone media. The study utilized the theory of continuum mechanics to adopt an elastoplastic strain-softening constitutive relationship and develop a numerical model for analyzing the uniaxial compressive strength and failure characteristics of non-uniform water-containing sandstone. The results indicate that, compared with the reference rock sample, the shorter the capillary path of water entering the rock sample's internal pores or the larger the contact area with water, the shorter the time required for the rock sample to be saturated. Increasing the water content causes a rapid decline in the rock sample's elastic modulus and intensifies its brittleness. Group D2 and D3 samples exhibited a decrease in average peak strength to 70.4% and 62.1%, respectively, along with a corresponding decrease in the elastic modulus to 90.78% and 76.55%, indicating significant strain softening. While the failure mode of the rock sample remains consistent across different water contents, the homogeneity of failure shows significant variation. Increasing volumetric water content raises the likelihood of interconnecting cracks between rock samples, resulting in a progressive decline in macroscopic mechanical properties such as peak strength, critical strain, and elastic modulus. This research is significant in advancing the theory and construction technology for ecological restoration in goaf areas.

摘要

作为复杂的非均质材料,岩石的力学特性在水作用机制方面仍需进一步研究。在采空区地基处理和生态修复等工程项目中,描述非均匀含水砂岩介质的破裂过程尤为重要。该研究利用连续介质力学理论,采用弹塑性应变软化本构关系,建立了分析非均匀含水砂岩单轴抗压强度和破坏特性的数值模型。结果表明,与参考岩石样本相比,水进入岩石样本内部孔隙的毛细路径越短或与水的接触面积越大,岩石样本达到饱和所需的时间越短。含水量增加会导致岩石样本的弹性模量迅速下降,并加剧其脆性。D2组和D3组样本的平均峰值强度分别降至70.4%和62.1%,弹性模量相应降至90.78%和76.55%,表明存在显著的应变软化。虽然岩石样本在不同含水量下的破坏模式保持一致,但破坏的均匀性表现出显著差异。体积含水量增加会提高岩石样本之间连通裂缝的可能性,导致峰值强度、临界应变和弹性模量等宏观力学性能逐渐下降。该研究对于推进采空区生态修复的理论和施工技术具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8daa/10573626/6d3d20e6d62f/materials-16-06396-g001.jpg

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