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Step-on versus step-off signals in time-domain controlled source electromagnetic methods using a grounded electric dipole

机译:使用接地电偶极子的时域控制源电磁方法中的踩踏与降级信号

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摘要

The time-domain controlled source electromagnetic method is a geophysical prospecting tool applied to image the subsurface resistivity distribution on land and in the marine environment. In its most general set-up, a square-wave current is fed into a grounded horizontal electric dipole, and several electric and magnetic field receivers at defined offsets to the imposed current measure the electromagnetic response of the Earth. In the marine environment, the application often uses only inline electric field receivers that, for a 50% duty-cycle current waveform, include both step-on and step-off signals. Here, forward and inverse 1D modelling is used to demonstrate limited sensitivity towards shallow resistive layers in the step-off electric field when transmitter and receivers are surrounded by conductive seawater. This observation is explained by a masking effect of the direct current signal that flows through the seawater and primarily affects step-off data. During a step-off measurement, this direct current is orders of magnitude larger than the inductive response at early and intermediate times, limiting the step-off sensitivity towards shallow resistive layers in the seafloor. Step-on data measure the resistive layer at times preceding the arrival of the direct current signal leading to higher sensitivity compared to step-off data. Such dichotomous behaviour between step-on and step-off data is less obvious in onshore experiments due to the lack of a strong overlying conductive zone and corresponding masking effect from direct current flow. Supported by synthetic 1D inversion studies, we conclude that time-domain controlled source electromagnetic measurements on land should apply both step-on and step-off data in a combined inversion approach to maximize signal-to-noise ratios and utilize the sensitivity characteristics of each signal. In an isotropic marine environment, step-off electric fields have inferior sensitivity towards shallow resistive layers compared to step-on data, resulting in an increase of non-uniqueness when interpreting step-off data in a single or combined inversion.
机译:时域控制源电磁方法是应用于在陆地和海洋环境上进行地下电阻率分布的地球物理勘探工具。在其最通用的设置中,方波电流被送入接地的水平电偶极子,并且在定义的偏移处的几个电气和磁场接收器到施加的电流测量地球的电磁响应。在海洋环境中,应用程序通常仅使用内联电场接收器,即,对于50%的占空比电流波形,包括步进和降级信号。这里,向前和逆1D建模用于在发射器和接收器被导电海水包围时对铲除电场中的浅电阻层对浅电阻层进行有限的灵敏度。通过流过海水的直流信号的掩蔽效应来解释该观察,并主要影响降级数据。在降级测量期间,这种直流电流比早期和中间时间大的级别大,这限制了海底浅电阻层的降级敏感性。踩踏数据测量电阻层在前电流信号的到达之前,与降压数据相比,导致更高的灵敏度。由于缺乏强大的覆盖导电区和来自直流流动的相应掩蔽效果,在岸上实验中,在脑力学和降级数据之间的这种二分行为不太明显。由合成1D反演研究支持,我们得出结论,土地上的时域控制源电磁测量应以组合的反转方法应用阶跃和降级数据,以最大化信噪比并利用每个的灵敏度特性信号。在各向同性的海洋环境中,与踩踏数据相比,铲除电场对浅电阻层具有较差的敏感性,导致在单个或组合反转中解释降级数据时增加非唯一性。

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