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Experimental Study on the Effects of Stress-Induced Damage on the Microstructure and Mechanical Properties of Soft Rock

机译:应力诱导损伤对软岩微观结构和力学性能影响的实验研究

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After rocks are damaged under stress loading, the changes of their microstructural and mechanical properties are major factors that affect construction safety in geotechnical engineering projects. Studying the microstructures and mechanical behaviors of stress-damaged rocks can help better guide construction and reduce construction risks for geotechnical engineering projects. In this study, a sandstone was first artificially predamaged and then subsequently subjected to scanning electron microscopy (SEM) analysis, computed tomography (CT) scanning, and uniaxial compression testing. Afterwards, the rock microstructures were three-dimensionally (3D) reconstructed, and the pores were classified and characterized based on their diameters. Moreover, the microstructural and mechanical parameters of the rock were subjected to significance analysis. The results showed that as the stress-induced damage ( ) increased, the uniaxial compressive strength ( ) of the soft rock decreased by 13.7–31.8%; as increased from 11.2 to 19.6?Mpa, the elastic modulus ( E ) of the soft rock increased by up to 28.8%; and as increased beyond 19.6?Mpa, there was a significant (22.3%) decrease in E . Stress-induced damage significantly affected the spatial distribution of the pores’ structure of the soft rock. Changes in the spatial structure of the pores led to the formation of cracks. The microstructural parameters of the stress-damaged soft rock were correlated with its mechanical parameters.
机译:岩石下的应力载荷受损后,其微观结构和力学性能的变化是影响岩土工程施工安全的主要因素。研究微观结构和应力破坏岩石的力学行为可以帮助更好地指导建设和减少岩土工程项目建设的风险。在这项研究中,砂岩第一人为predamaged并且随后进行扫描电子显微镜(SEM)分析,计算机断层扫描(CT)扫描,和单轴压缩试验。此后,岩石微观组织三维(3D)重建,而且毛孔进行了分类,并根据它们的直径为特征。此外,岩石的显微结构和机械参数进行显着性分析。结果表明,作为应力诱导的损伤()增加,软岩降低13.7-31.8%的单轴抗压强度();从11.2提高到19.6 MPa时,软岩的弹性模量(E)最多提高28.8%?;并且增加到超过19.6?MPa时,出现了在E中的显著(22.3%)下降。应力引起的损伤影响显著毛孔软岩的结构的空间分布。在的空间结构改变孔隙导致裂纹的形成。应力损坏软岩的微观结构参数与它的机械参数相关。

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