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Characterizing the deformation behavior of Tertiary sandstones

机译:表征第三系砂岩的变形行为

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Tertiary sandstones possess deformational behavior different from hard rocks, especially the relatively larger amount of volumetric dilation during shearing. Such excess dilation contributes to the increase of crown settlement during tunnel excavation and accounts for several cases of tunnel squeezing within Tertiary sandstones. Therefore, the deformation behavior of Tertiary sandstones sampled from more than 13 formations was studied. To distinguish the volumetric deformation induced by hydrostatic stress or by shear stress as well as to decompose the elastic and the plastic components of strains, special experimental techniques, including pure shear tests and cycles of loading-unloading were applied. The experimental results reveal that the deformation of Tertiary sandstone exhibits the following characteristics: (1) significant amount of shear dilation, especially elastic shear dilation; (2) non-linear elastic and plastic deformation; (3) plastic deformation occurs prior to the failure state. Furthermore, features of plastic deformation were inferred from experimental results and, as a result, the geometry of plastic potential surface and the hardening rule were accordingly determined. A constitutive model, involving nonlinear elastic/plastic deformation and volumetric deformation induced by shear stress, is proposed. This proposed model simulates the deformational behavior for the shear-dilation-typed rocks reasonably well. Furthermore, tests on the versatility of the proposed model, including varying hydrostatic stress and stress paths, indicate that the proposed model is capable of predicting deformational behavior for various conditions.
机译:第三纪砂岩的变形行为不同于硬质岩石,特别是在剪切过程中体积膨胀相对较大。这种过量的膨胀有助于隧道开挖过程中树冠沉降的增加,并解释了第三纪砂岩中隧道挤干的几种情况。因此,研究了从13个以上地层中取样的第三纪砂岩的变形行为。为了区分由静水压力或剪切应力引起的体积变形,以及分解应变的弹性和塑性分量,应用了特殊的实验技术,包括纯剪切试验和装卸循环。实验结果表明,第三纪砂岩的变形具有以下特征:(1)剪切扩张量大,尤其是弹性剪切扩张。 (2)非线性的弹塑性变形; (3)塑性变形先于破坏状态发生。此外,从实验结果推断出塑性变形的特征,并因此确定了塑性势能表面的几何形状和硬化规则。提出了一个本构模型,该模型包括非线性弹性/塑性变形和剪切应力引起的体积变形。该模型可以较好地模拟剪胀型岩石的变形行为。此外,对所提出模型的多功能性(包括变化的静水压力和应力路径)进行的测试表明,所提出的模型能够预测各种条件下的变形行为。

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