Göğüş Özge Dinç, Avşar Elif, Develi Kayhan, Çalık Ayten
Geological Engineering Department, Istanbul Technical University, Istanbul, 34469, Turkey.
Geological Engineering Department, Konya Technical University, Konya, 42250, Turkey.
Sci Rep. 2024 Nov 19;14(1):28641. doi: 10.1038/s41598-024-79940-9.
In brittle rocks, deformation is characterized by the initiation and propagation of cracks at both microscale and mesoscale levels. This study explores how rock texture influences the evolution of cracking networks and progressive rock damage results under uniaxial compression. 3D discrete analyses were employed to identify the critical stresses of three different rock types. Thin sections were prepared from uniaxially loaded core samples at these stresses and crack patterns were captured under a polarizing microscope. The fractal box dimension method was used to quantitatively analyze the crack patterns for each rock type at each stress level. The novelty of this research is revealing the relationship between the development of microcrack patterns and textural properties such as mineral orientation/distribution, interlocking, crystal cleavage/hardness, and the groundmass. Results show that the cracking tendency varies with rock type at each critical stress level. Specifically, diabase exhibited the highest crack intensity, attributed to the interlocking of hard plagioclase and pyroxene crystals. Furthermore, the cleavages in pyroxenes make diabase particularly susceptible to cracking, especially when they are oriented parallel or semi-parallel to the applied load. These findings highlight that rock texture is a crucial factor influencing microcrack development, which should be considered in rock engineering applications.
在脆性岩石中,变形的特征是在微观和细观尺度上裂纹的萌生和扩展。本研究探讨了岩石结构如何影响裂纹网络的演化以及单轴压缩下岩石的渐进性损伤结果。采用三维离散分析来确定三种不同岩石类型的临界应力。在这些应力下,从单轴加载的岩芯样本制备薄片,并在偏光显微镜下捕捉裂纹模式。分形盒维数法用于定量分析每种岩石类型在每个应力水平下的裂纹模式。本研究的新颖之处在于揭示了微裂纹模式的发展与诸如矿物取向/分布、互锁、晶体解理/硬度以及基质等结构特性之间的关系。结果表明,在每个临界应力水平下,开裂趋势因岩石类型而异。具体而言,辉绿岩表现出最高的裂纹强度,这归因于硬斜长石和辉石晶体的互锁。此外,辉石中的解理使辉绿岩特别容易开裂,尤其是当它们与施加的载荷平行或半平行取向时。这些发现突出表明,岩石结构是影响微裂纹发展的关键因素,在岩石工程应用中应予以考虑。