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Response characteristics of gradient data from the frequency-domain controlled-source electromagnetic method

机译:频域控制源电磁法梯度数据的响应特征

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Studying how to improve the boundary recognition ability and resolution of anomalies is of great significance in the electromagnetic prospecting method. This paper analyzes the response characteristics of gradient data from the frequency-domain controlled-source electromagnetic method. A survey geometry that has one transmitter and many receiver locations, either along a line or over a grid, is used to obtain the electromagnetic field components. This kind of relatively dense coverage of receivers is needed in order to be able to determine the gradients. Spatial gradients in the two horizontal directions when measuring over a grid or in one horizontal direction when measuring along a line, and a frequency gradient which can give depth resolution, are considered in this paper. Forward modelling was carried out on a number of 3-D earth models to assess the capabilities and usefulness of the gradient data. The source-receiver geometry with survey lines arranged parallel to the direction of the grounded electric line source with measurements of the along-line component of the electric field, which is similar to the broadside geometry of marine CSEM, was found to be the best. The spatial gradients are able to indicate accurately the horizontal extents of the target, with the boundary identification ability of the spatial gradients being stronger than that of the original electromagnetic field components. Also, the frequency gradient is sensitive to the vertical extents of a target, with the main influence on the frequency gradient being the source receiver distance, and the burial depth, resistivity and thickness of target. It is clear that the spatial and frequency gradients of electromagnetic data can provide a quick and reasonably accurate indication of the location and lateral extent of a conductivity anomaly in the subsurface, as well as an approximate depth and an indication of whether the anomaly is more or less conductive than the background. (C) 2019 Elsevier B.V. All rights reserved.
机译:研究如何提高异常的边界识别能力和分辨率在电磁勘探方法中具有重要意义。本文分析了频域控制源电磁法梯度数据的响应特性。使用具有一个发射器和许多接收器位置的调查几何图形,无论是沿线还是在网格上都用于获得电磁场分量。为了能够确定梯度,需要这种相对密集的接收器覆盖。在沿着线上测量时测量网格或在一个水平方向上测量时的两个水平方向的空间梯度,并且本文考虑了可以提供深度分辨率的频率梯度。向前建模是在许多3-D接地模型上进行的,以评估梯度数据的能力和有用性。具有平行于接地电线源方向布置的测量线的源极接收器几何形状,该测量与电场的沿线部件的测量值相似,这是最好的。空间梯度能够准确地指示目标的水平范围,空间梯度的边界识别能力比原始电磁场分量的边界识别能力更强。而且,频率梯度对目标的垂直范围敏感,主要对频率梯度是源极接收器距离的主要影响,以及靶的墓穴深度,电阻率和目标的厚度。显然,电磁数据的空间和频率梯度可以快速且合理地准确地指示地下导电异常的位置和横向范围,以及近似深度,并且指示异常是否更加或比背景更少导电。 (c)2019年Elsevier B.V.保留所有权利。

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