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Investigations of P-Wave velocity, mechanical behavior and thermal properties of anisotropic slate

机译:各向异性板岩的P波速度,力学行为和热性能的研究

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摘要

Rock anisotropies are an important indicator for design and construction of various engineering projects across the world. To investigate the anisotropic characteristics of P-wave velocity, mechanical behavior and thermal properties, laboratory tests were performed on slate samples with various foliation orientations with respect to horizontal direction. The results indicate that the uniaxial compression strength (UCS) exhibits a typical U-type trend, the Young's modulus first decreases and then increases, and the variation of Poisson's ratio shows an opposite trend with the variation in Young's modulus. The anisotropy in strength is greater than that in deformation. Three typical failure modes, i.e. splitting across the foliation planes, shearing and sliding along the foliation planes, and axial splitting failure along the foliation planes, were observed. Scanning electron microscope (SEM) was also applied to analyze the microscopic failure mechanisms. It shows that the slate anisotropies are intrinsically attributed to the directional arrangement of mineral compositions observed by polarizing microscope. P-wave velocity and thermal conductivity both increase with increasing foliation angle, but the linear coefficients of thermal expansion show a decreasing trend. A new empirical formula was then proposed for describing the P-wave velocity and thermal parameters with respect to foliation angle of slate. It displays the empirical predictions match the laboratory measurements. The obtained results can better facilitate our understanding of mechanical behavior and thermal properties of anisotropic rocks, which should be considered in underground engineering applications in layered strata.
机译:岩石各向同性是全球各种工程项目设计和建设的重要指标。为了研究P波速度的各向异性特征,机械行为和热性能,在具有相对于水平方向的各种叶面取向的板岩样品上进行实验室测试。结果表明,单轴压缩强度(UCS)表现出典型的U型趋势,杨氏模量首先降低,然后增加,泊松比的变化显示了杨氏模量的变化相反的趋势。强度的各向异性大于变形的各向异性。观察到三种典型的故障模式,即沿叶片,沿叶片剪切和滑动,沿叶片剪切和滑动,沿着叶片平面沿叶片分裂破坏。还应用扫描电子显微镜(SEM)来分析微观故障机制。结果表明,板岩各向异性本质上归因于通过偏振显微镜观察的矿物组合物的定向布置。 P波速度和导热率随着叶角的增加而增加,但热膨胀的线性系数显示出降低趋势。然后提出了一种新的经验公式,用于描述关于板岩的叶片角度的P波速度和热参数。它显示了经验预测匹配实验室测量。获得的结果可以更好地促进我们对各向异性岩石的机械行为和热性质的理解,这应该在层状地层中的地下工程应用中考虑。

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