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Compaction, permeability evolution and stress path effects in unconsolidated sand and weakly consolidated sandstone

机译:未固结砂岩和弱固结砂岩的压实,渗透率演化和应力路径效应

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The influence of stress paths on the mechanical behavior and coupled permeability evolution of quartz sand packings and soft sandstone have been investigated. The proposed approach is mainly based on the performing drained compression tests keeping constant a stress path parameter K, defined as the ratio of the horizontal to vertical effective stress increments. Macroscopic mechanical data and the stress path dependency of permeability have been measured in the elastic, brittle and compaction regimes. The micro-structural characteristics of unconsolidated materials—coarse rounded grains (glass beads—GB) and angular grains (Durance sand—DS)—and a weakly consolidated sandstone (Otter Sherwood sandstone—OSS) have been quantified in intact and deformed states combining petrophysical core analysis and multi-scale imaging according to the feasibility of sub-sampling of the different materials. Two different types of hydro-mechanical behavior were evidenced for each material. The weakly consolidated OSS presents a mechanical behavior similar to the consolidated rocks with two distinct regimes of deformation; the transition between these two regimes is a function of the stress path. On the other hand, the sand shows a gradual transition regime requiring the use of a curvature criterion to pick yield stresses; this criterion has been validated on the basis of acoustic emissions analysis. The modified Cam-Clay model and the elliptical cap model allow capturing efficiently the yield envelopes. The permeability measurements were performed with intermediate pressure ports to measure accurately the high permeable sand and to avoid end-effects. For OSS, permeability evolutions follow closely the volumetric strain evolutions in both the elastic and plastic regimes and are mainly controlled by the mean pressure before yield. At these critical stresses, the permeability drops drastically under the influence of deviatoric stress. Conversely for DS, the correlation between strain and permeability is not obvious as permeability reduction is pronounced at an early stage of loading.
机译:研究了应力路径对石英砂填料和软砂岩力学行为和耦合渗透率演化的影响。所提出的方法主要是基于进行排水压缩试验,使应力路径参数K保持不变,应力路径参数K定义为水平有效应力增量与垂直有效应力增量之比。宏观力学数据和渗透率的应力路径相关性已在弹性,脆性和压实状态下进行了测量。结合岩石物理性,定量分析了未固结材料(粗大的圆形颗粒(玻璃珠-GB)和角粒(Durance砂-DS)和弱固结的砂岩(Otter Sherwood砂岩-OSS)的微观结构特征核心分析和多尺度成像,根据不同材料进行子采样的可行性。对于每种材料,证明了两种不同类型的流体力学行为。弱固结的OSS具有类似于固结岩石的机械行为,具有两种不同的变形形式。这两种状态之间的过渡是应力路径的函数。另一方面,沙子表现出逐渐过渡的状态,需要使用曲率准则来选择屈服应力。该标准已经在声发射分析的基础上得到验证。修改后的Cam-Clay模型和椭圆帽模型可有效捕获产量包络线。渗透率的测量是在中压口进行的,以准确地测量高渗透性砂土并避免产生最终影响。对于OSS,渗透率的变化在弹性和塑性状态下都紧随体积应变的变化,并且主要受屈服前的平均压力控制。在这些临界应力下,渗透率在偏应力的影响下急剧下降。相反,对于DS,应变和渗透率之间的相关性并不明显,因为在加载的早期渗透率降低明显。

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