Assessing swelling-induced damage in shale samples during triaxial testing

IF 3.3 2区 工程技术 Q3 ENERGY & FUELS Geomechanics for Energy and the Environment Pub Date : 2024-09-20 DOI:10.1016/j.gete.2024.100599
E. Crisci , R. Ewy , A. Ferrari , S.B. Giger
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Abstract

In shale testing, understanding the impact of effective stress and saturation conditions is crucial for accurate material behaviour assessment and parameter determination. In some cases, saturation in triaxial testing starts at low effective stress before ramping up for shearing. However, when in contact with water (or saline water), shales are prone to swelling, particularly at low effective stress levels, which can induce fissures and alter material properties. This study investigates the influence of fluid saturation strategies and stress/pressure variations on the mechanical behaviour of shales, particularly under low effective confinement. Building upon the comprehensive testing campaign (>140 tests) in Crisci et al. (2024), additional tests were conducted on Opalinus Clay shale, focusing on sample saturation methods and loading histories before shearing. The conditions under which tested specimens experience damage were detected through diagnostic indicators such as differences in stress path and lower strength and stiffness compared to intact specimens with identical basic properties. Micro CT scanning confirms that damage is related to the development of fissures. The volumetric changes in specimens were quantified throughout the testing phases and thresholds for tolerable strains and effective stresses, specific to this material, were established. Comparative analysis with Opalinus Clay from shallower depths and other shales globally revealed consistent findings. Notably, it is shown that, for all shale types analyzed, a linear failure envelope emerges in the low to intermediate effective stress regime when filtering out "damaged" specimens. This suggests that non-linear failure envelopes observed in some cases may stem from exposing specimens to low effective stress before shearing.
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在三轴测试过程中评估页岩样本中膨胀引起的损伤
在页岩测试中,了解有效应力和饱和条件的影响对于准确评估材料性能和确定参数至关重要。在某些情况下,三轴测试中的饱和始于较低的有效应力,然后才逐渐升高进行剪切。然而,当页岩与水(或盐水)接触时,很容易发生膨胀,尤其是在低有效应力水平下,这会诱发裂缝并改变材料特性。本研究调查了流体饱和策略和应力/压力变化对页岩机械行为的影响,尤其是在低有效约束条件下。在 Crisci 等人(2024 年)的综合测试活动(140 次测试)的基础上,对 Opalinus Clay 页岩进行了额外的测试,重点是样品饱和方法和剪切前的加载历史。通过诊断指标,如与基本属性相同的完好试样相比,应力路径的差异以及强度和刚度的降低,检测出测试试样出现损坏的条件。显微 CT 扫描证实,损坏与裂缝的发展有关。在整个测试阶段,对试样的体积变化进行了量化,并确定了这种材料特有的可容忍应变和有效应力阈值。与较浅深度的 Opalinus Clay 和全球其他页岩的对比分析显示了一致的结果。值得注意的是,对于所分析的所有页岩类型,在过滤掉 "受损 "试样后,在中低有效应力范围内会出现线性破坏包络。这表明,在某些情况下观察到的非线性破坏包络可能是由于试样在剪切前暴露在低有效应力下造成的。
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来源期刊
Geomechanics for Energy and the Environment
Geomechanics for Energy and the Environment Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
5.90
自引率
11.80%
发文量
87
期刊介绍: The aim of the Journal is to publish research results of the highest quality and of lasting importance on the subject of geomechanics, with the focus on applications to geological energy production and storage, and the interaction of soils and rocks with the natural and engineered environment. Special attention is given to concepts and developments of new energy geotechnologies that comprise intrinsic mechanisms protecting the environment against a potential engineering induced damage, hence warranting sustainable usage of energy resources. The scope of the journal is broad, including fundamental concepts in geomechanics and mechanics of porous media, the experiments and analysis of novel phenomena and applications. Of special interest are issues resulting from coupling of particular physics, chemistry and biology of external forcings, as well as of pore fluid/gas and minerals to the solid mechanics of the medium skeleton and pore fluid mechanics. The multi-scale and inter-scale interactions between the phenomena and the behavior representations are also of particular interest. Contributions to general theoretical approach to these issues, but of potential reference to geomechanics in its context of energy and the environment are also most welcome.
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