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Analog Modeling of Anisotropy of Magnetic Susceptibility as Affected by Pure Shear Strain on Original Magnetic Fabrics of Sedimentary Rocks

机译:纯剪切应变对沉积岩原始磁性布的磁化率各向异性的模拟模型

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摘要

Analysis of the anisotropy of magnetic susceptibility (AMS) is an easy, non-destructive method to determine the preferred orientations of minerals in rocks and rock analogs. The orientations of the principal susceptibility axes (Kmax≥Kint≥Kmin) of the AMS ellipsoid are generally parallel to the principal axes of the strain ellipsoid (X≥Y≥Z). The orientations of the AMS axes as well as the magnitudes change in response to strain, though a generally accepted correlation between the magnitudes of the principal axes of AMS and strain has not yet been established. A successful correlation of the magnitudes of the principal susceptibility axes of AMS and strain would allow an easy and non-destructive method of quantitative strain analysis. This would also allow quantitative strain analyses of rocks where traditional methods using strain markers fail. In this study, the quantitative aspect of the relationship between strain and AMS is investigated experimentally using artificial mineral mixtures with a sedimentary initial magnetic fabric in an attempt to correlate strain to AMS. Mineral mixtures of magnetite, biotite, and specular hematite with a matrix of Art Time DoughRTM (similar to PlaydohRTM) were mixed separately. To create a random magnetic fabric, the samples were kneaded by hand for approximately 15 minutes. The samples were then strained to 70% strain in one direction to create a sedimentary initial magnetic fabric. The orientation of this strain became the Z axis of the strain ellipsoid. The samples were then strained perpendicular to this axis incrementally from 0% to 40% strain in 5% increments, with the AMS measured at each interval. The orientation of this strain became the Y axis of the strain ellipsoid. The data from these experiments resulted in the quantitative correlation of strain and AMS for the magnetite mineral mixtures. The biotite and specular hematite mixtures contain enough magnetite inclusions and magnetite conversion respectively to dominate the AMS. This creates a more complex relationship that is not easily correlated quantitatively to strain. The experiments demonstrate that a strong qualitative relationship exists between both the orientations and the magnitudes of the axes of the strain and AMS ellipsoids.
机译:磁化率各向异性(AMS)的分析是一种简单,无损的方法,可以确定岩石和岩石类似物中矿物的首选取向。 AMS椭球的磁化率主轴(Kmax≥Kint≥Kmin)的方向通常平行于应变椭球的主轴(X≥Y≥Z)。尽管尚未建立AMS主轴大小和应变之间公认的相关性,但AMS轴的方向以及大小随应变而变化。 AMS的主要磁化率轴的大小与应变的成功关联将允许一种简单且无损的定量应变分析方法。在使用应变标记的传统方法失败的情况下,这也可以对岩石进行定量应变分析。在这项研究中,使用人工矿物混合物和沉积的初始磁性织物,通过实验研究了应变与AMS之间关系的定量方面,试图将应变与AMS相关联。将磁铁矿,黑云母和镜面赤铁矿与Art Time DoughRTM(类似于PlaydohRTM)的基质的矿物混合物分别混合。为了制造随机的磁性织物,用手将样品捏合约15分钟。然后将样品在一个方向上应变至70%应变,以形成沉积的初始磁性织物。该应变的方向成为应变椭球的Z轴。然后将样品垂直于此轴以0%到40%的应变(以5%的增量)递增地应变,并在每个间隔测量AMS。该应变的方向成为应变椭球的Y轴。这些实验的数据导致磁铁矿矿物混合物的应变和AMS定量相关。黑云母和镜面赤铁矿混合物分别包含足够的磁铁矿包裹体和磁铁矿转化率,以主导AMS。这产生了更复杂的关系,该关系不容易定量地与应变相关。实验表明,应变和AMS椭球的轴的方向和大小之间都存在很强的定性关系。

著录项

  • 作者

    Seaux, Gage E.;

  • 作者单位

    University of Louisiana at Lafayette.;

  • 授予单位 University of Louisiana at Lafayette.;
  • 学科 Geophysics.;Geology.
  • 学位 M.S.
  • 年度 2017
  • 页码 54 p.
  • 总页数 54
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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