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A new laboratory apparatus for the measurement of seismic dispersion under deviatoric stress conditions

机译:用于测量偏应力条件下地震频散的新型实验室仪器

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摘要

A better understanding of seismic dispersion and attenuation of acoustic waves in rocks is important for quantitative interpretation of seismic data, as well as for relating seismic data, sonic-log data, and ultrasonic laboratory data. In the present work, a new laboratory setup is described, allowing for combined measurements of quasistatic deformations of rocks under triaxial stress, ultrasonic velocities, and dynamic elastic stiffness (Young's modulus and Poisson's ratio) at seismic frequencies. The setup has been used mainly for the study of shales. For such rocks, it is crucial that the saturation of the samples is preserved, which requires fast sample mounting. The design of our setup, together with a technique that was developed for rapid mounting of strain gauges onto the sample and subsequent sealing of the sample, allows for sample preservation, which is of particular importance for shales. The performance of the new experimental setup and sample mounting procedure is demonstrated with test materials (aluminium and polyetheretherketone) and two different shale types (Mancos shale and Pierre shale). Furthermore, experimental results are presented that demonstrate the capability of measuring the impact of saturation, stress, and stress path on seismic dispersion. For the tests with Mancos shale and Pierre shale, large dispersion (up to 50% in Young's modulus normal to bedding) was observed. Increased water saturation of Mancos shale results in strong softening of the rock at seismic frequencies, whereas hardening is observed at ultrasonic frequencies due to an increase in dispersion, counteracting the rock softening. The Poisson's ratio of Mancos shale strongly increases with the level of saturation but appears to be nearly frequency independent. We have found that the different types of shale exhibit different stress sensitivities during hydrostatic loading and that the stress sensitivity is different at seismic and ultrasonic frequencies.
机译:更好地了解岩石中的地震波传播和声波衰减对于定量解释地震数据以及关联地震数据,声波测井数据和超声实验室数据非常重要。在当前的工作中,描述了一种新的实验室设置,可以组合测量在地震频率下三轴应力,超声速度和动态弹性刚度(杨氏模量和泊松比)下岩石的准静态变形。该装置主要用于页岩的研究。对于此类岩石,至关重要的是要保持样品的饱和度,这需要快速安装样品。我们设备的设计以及为将应变仪快速安装到样品上并随后密封样品而开发的技术,可以保存样品,这对页岩尤为重要。测试材料(铝和聚醚醚酮)和两种不同的页岩类型(Mancos页岩和Pierre页岩)展示了新实验设置和样品安装程序的性能。此外,实验结果表明了测量饱和度,应力和应力路径对地震频散的影响的能力。对于使用Mancos页岩和Pierre页岩的测试,观察到较大的分散度(垂直于层理,杨氏模量高达50%)。 Mancos页岩的水饱和度增加导致岩石在地震频率下发生强烈的软化,而在超声波频率下由于分散度的增加而观察到硬化,从而抵消了岩石的软化。 Mancos页岩的泊松比随着饱和度的增加而强烈增加,但似乎几乎与频率无关。我们发现,不同类型的页岩在静水载荷下表现出不同的应力敏感性,并且在地震和超声波频率下应力敏感性也不同。

著录项

  • 来源
    《Geophysical Prospecting》 |2016年第4期|789-798|共10页
  • 作者单位

    Norwegian Univ Sci & Technol NTNU, Dept Petr Technol & Appl Geophys, N-7491 Trondheim, Norway;

    Norwegian Univ Sci & Technol NTNU, Dept Petr Technol & Appl Geophys, N-7491 Trondheim, Norway|SINTEF Petr Res, Format Phys, N-7465 Trondheim, Norway;

    Norwegian Univ Sci & Technol NTNU, Dept Petr Technol & Appl Geophys, N-7491 Trondheim, Norway;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Rock physics; Anisotropy; Elasticity; Attenuation;

    机译:岩石物理学;各向异性;弹性;衰减;

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