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首页> 外文期刊>Energy & fuels >Probing Nanomechanical Properties of a Shale with Nanoindentation: Heterogeneity and the Effect of Water-Shale Interactions
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Probing Nanomechanical Properties of a Shale with Nanoindentation: Heterogeneity and the Effect of Water-Shale Interactions

机译:纳米狭窄的页岩肿瘤纳米力学性质:异质性及水位相互作用的影响

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摘要

The mechanical properties of shale are critical for the extraction of gas and oil from nanoporous shale. In this study, nanoindentation tests with the accelerated property mapping mode were used to obtain the localized quantitative mechanical properties (the elastic modulus and hardness) of the tested shale sample. X-ray diffraction was used to analyze the bulk mineral composition. The Gaussian mixture model and k-means algorithm were used to fit the data and identify distinct mineral phases based on load-displacement curves. Three clusters of different mineral phases were recognized through nanoindentation curves. Experimental results and analyses show that the nanomechanics of shale are conditioned by the mineral composition and its spatial distribution. The spatial distribution of the elastic modulus and hardness showed the high heterogeneity of shale at the nano-to-micron scale, closely related to its localized mineralogical distribution and microstructures. It was found that the plastic work induced in the nanoindentation process was different between the three mineral clusters with a plastic work ratio of 0.06-0.18, 0.32-0.38, and 0.46-0.53 in high-, medium- and low-hardness clusters, respectively. A two-term exponential relationship was observed between hardness and plastic work. For the tested Marcellus shale, obvious mechanical weakening was observed after 20 days of water vapor treatment. The elastic modulus of shale exhibited a reduction of 0.6-15%, and the hardness decreased by 8.6-17.8%. Further investigation is recommended to quantify the variations in its indent-specified mechanical properties and its direct relationship with localized mineralogy and microstructure.
机译:Shale的机械性能对于纳米多孔页岩的燃气和油的提取至关重要。在该研究中,使用加速性映射模式的纳米肾脏测试用于获得测试页面样品的局部定量机械性能(弹性模量和硬度)。 X射线衍射用于分析块状矿物组合物。高斯混合模型和K-MEASE算法用于拟合数据并基于负载 - 位移曲线识别不同的矿物相。通过纳米凸缘曲线识别出三个不同矿物阶段的三种簇。实验结果和分析表明,页岩的纳米力学由矿物成分及其空间分布调节。弹性模量和硬度的空间分布显示了纳米微米级的高度异质性,与其局部矿物分布和微观结构密切相关。发现在含有塑料工作比为0.06-0.18,0.32-0.38和0.46-0.53的三个矿物簇之间的纳米齿状过程中诱导的颗粒状作品分别分别在高,中和低硬度簇中的三个矿物质簇之间不同。在硬度和塑料工作之间观察到双重指数关系。对于测试的Marcellus页岩,在20天的水蒸气处理后观察到明显的机械弱化。页岩弹性模量表现出0.6-15%,硬度降低8.6-17.8%。建议进一步调查量化其缩进特定机械性能的变化及其与局部矿物学和微观结构的直接关系。

著录项

  • 来源
    《Energy & fuels》 |2021年第15期|11930-11946|共17页
  • 作者

    Liu Yiwei; Liu Shimin; Kang Yong;

  • 作者单位

    Wuhan Univ Hubei Key Lab Waterjet Theory & New Technol Wuhan 430072 Peoples R China|Penn State Univ Dept Energy & Mineral Engn G3 Ctr University Pk PA 16802 USA|Penn State Univ EMS Energy Inst University Pk PA 16802 USA|Wuhan Univ Sch Civil Engn Wuhan 430072 Hubei Peoples R China;

    Penn State Univ Dept Energy & Mineral Engn G3 Ctr University Pk PA 16802 USA|Penn State Univ EMS Energy Inst University Pk PA 16802 USA;

    Wuhan Univ Hubei Key Lab Waterjet Theory & New Technol Wuhan 430072 Peoples R China|Wuhan Univ Sch Power & Mech Engn Wuhan 430072 Hubei Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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