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Two-dimensional determinant inversion of marine magnetotelluric data and a field example from the Gulf of California, Mexico

机译:墨西哥加州海湾的海洋磁识别数据的二维决定因子和野外示例

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摘要

Two-dimensional marine magnetotelluric (MT) observations are useful for offshore geologic studies, such as natural resource exploration, fault mapping, fluid estimation at subduction zones, and the delineation of the lithosphere-asthenosphere boundary beneath the seafloor. Earth structures are often assumed to be two dimensional, which allows MT data to be decomposed into a transverse electric (TE) mode and a transverse magnetic (TM) mode. The 2D assumption can effectively reduce acquisition and computational costs. However, offline 3D effects and other problems such as lack/failure of the compass on instruments are often encountered, making it difficult to decompose data into the TE and TM modes. In these cases, 2D inversion may be misleading or may not provide an acceptable misfit to the marine MT observations. Thus, we have developed a 2D determinant inversion to the marine MT method to mitigate these difficulties, implemented in the MARE2DEM code, and we tested its utility using synthetic examples and a field example. In the synthetic examples, the determinant inversion demonstrates an ability to overcome 3D effects caused by 3D anomalies and bathymetry. With confidence from the synthetic tests, we interpreted real data acquired in the Gulf of California, Mexico, where not only is the bathymetry 3D in nature, but the external compasses failed to record the orientation. The field data can not only be fit to a reasonable misfit with a determinant inversion, but the resolved conductive zones also have a good correlation with known faults. A comparison between the resistivity model from the field data and a seismic reflection section shows that a previously interpreted fault, the Wagner Fault, should be shifted 5 km toward the southwest and made slightly steeper. Thus, the implementation of the determinant inversion may provide a new approach for using problematic 2D data.
机译:二维海洋磁电磁蕈类(MT)观察可用于海上地质研究,如自然资源勘探,故障映射,俯冲区的流体估计,以及海底下面的岩石圈的岩石圈界面描绘。接地结构通常被认为是二维,其允许MT数据被分解成横向电气(TE)模式和横向磁(TM)模式。 2D假设可以有效地降低采集和计算成本。但是,常遇何地遇到离线3D效果和其他问题,例如指南针的缺乏/失败,使得难以将数据分解为TE和TM模式。在这些情况下,2D反转可能是误导性的,或者可能无法为海洋MT观察提供可接受的错误。因此,我们已经为Marine Mare2dem代码中实现的这些困难开发了一个2D的决定因子,以减轻这些困难,并且我们使用合成示例和现场示例测试其实用程序。在合成实例中,决定性反转证明了克服由3D异常和碱度碱基因引起的3D效应的能力。充满自信地从合成试验中获得了在加利福尼亚州的墨西哥湾中获得的真实数据,在那里不仅是气候3D本质上,而且外部指南针未能记录方向。现场数据不仅可以适合具有决定因子的合理的错量,但是分辨的导电区域也与已知故障具有良好的相关性。从现场数据和地震反射部分之间的电阻率模型的比较表明,先前解释的故障,瓦格纳故障应该朝向西南5公里移动并略较陡峭。因此,确定反演的实现可以提供用于使用问题2D数据的新方法。

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  • 来源
    《Oceanographic Literature Review》 |2021年第6期|1280-1280|共1页
  • 作者单位

    University of California San Diego Scripps Institution of Oceanography San Diego CA 92093 United States;

    University of California San Diego Scripps Institution of Oceanography San Diego CA 92093 United States;

    University of California San Diego Scripps Institution of Oceanography San Diego CA 92093 United States;

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