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Geomechanical behaviors of shale after water absorption considering the combined effect of anisotropy and hydration

机译:鉴定各向异性和水化综合影响的吸水后页岩的地质力学行为

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Geomechanical behaviors of shale in many geotechnical engineering areas, such as shale gas extraction, tunnel excavation, slope engineering, are highly influenced by anisotropy and hydration. In this work, a number of phi 25 mm x 50 mm shale specimens were prepared with three levels of moisture contents and seven bedding plane orientations (beta, in degrees) relative to the axial direction. A series of compression tests for these specimens was then conducted under four different confining pressures to investigate their geomechanical behaviors considering the combined effect of anisotropy and hydration. The results demonstrate the following points. 1) During the water absorption process, the shale specimens swell and suffer damage, which are primarily observed along the bedding plane. 2) The curve of compressive strength (peak deviatoric stress) vs.. beta is "U-shaped," with the lowest value at beta = 30 degrees. The apparent elastic modulus decreases with the increase in beta and then remains nearly unchanged when beta > 45 degrees. As beta increases, the strains at peak stress and average apparent Poisson's ratio increase first and then decrease when beta > 30 degrees. 3) The plastic deformation stage and residual stress stage, which negatively relate to the elastic-brittle properties of shale, become more obvious with increasing moisture content, and the specimen for which beta is closer to 30 degrees exhibits a more significant change of that 4) With increasing moisture content, the compressive strength and axial strain at peak stress decrease, apparent elastic modulus decreases nonlinearly, and average apparent Poisson's ratio increases approximately linearly. 5) The effect of anisotropy on the compressive strength decreases with increasing confining pressure and this weakened effect by confining pressure becomes less with increasing moisture content 6) With the increase in beta, the effect of water absorption on the compressive strength first strengthens a little and then weakens whenig > 30 degrees or 45 degrees, and this change with beta becomes more significant under higher confining pressure. 7) The effect of confining pressure on the compressive strength strengthens a little when beta < 30 degrees and then weakens with the increase in beta, and this change with beta weakens with increasing moisture content 8) The anisotropy of shale could be the major controlling factor for geomechanical behaviors, and water absorption along the bedding plane can enhance the effect of anisotropy. The results can not only guide the design and construction of geotechnical engineering structures related to shale, but can also be used as a reference for geological research on the deformation and failure of shale formations affected by water intrusion and geological stresses.
机译:页岩在许多岩土工程领域的地质力学行为,如页岩气提取,隧道挖掘,坡度工程,受到​​各向异性和水化的影响。在这项工作中,使用三个水分含量和七个床上用品方向(β,以度)相对于轴向,制备许多PHI 25mm×50mm页岩样品。然后在四种不同的限制压力下进行这些样本的一系列压缩测试,以研究考虑各向异性和水化的综合影响的地质力学行为。结果证明了以下几点。 1)在吸水过程中,页岩样本膨胀并遭受损坏,其主要沿床上用品平面观察。 2)压缩强度(峰值偏离应力)的曲线Vs.β是“U形的”,β= 30度的最低值。表观弹性模量随比β的增加而降低,然后在β5度时仍然几乎保持不变。随着β增加,峰值应力和平均表观泊松比的菌株首先增加,然后在β10度时降低。 3)塑性变形阶段和残余应力阶段与页岩的弹性脆性呈负相关阶段,随着水分含量的增加变得更加明显,并且β更接近30度的样本呈现出4的更大变化)随着水分含量的增加,峰值应力下降的抗压强度和轴向应变,非线性弹性模量减小,并且平均表观泊松比大致线性增加。 5)各向异性对压缩强度的影响随着狭窄压力的增加而降低,随着水分含量的增加,这种通过狭窄压力的弱化效果较小,随着β的增加,吸水对压缩力的影响首先强化了一点和然后削弱时> 30度或45度,并且在较高限制压力下,这种用β变化变得更加显着。 7)限制压力对压缩强度的影响,当β<30度时稍微强化一点,然后随着β的增加而削弱,并且β的这种变化随着水分含量的增加而削弱8)页岩的各向异性可能是主要的控制因子对于地质力学行为,沿床上用品的吸水率可以增强各向异性的影响。结果不仅可以指导与页岩有关的岩土工程结构的设计和构建,而且还可以作为对受水侵扰和地质应激影响的页岩地层变形和失效的地质研究的参考。

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