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Seismoelectric wave propagation modeling for typical laboratory configurations: A numerical validation

机译:典型实验室配置的地震波传播建模:数值验证

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摘要

The seismoelectric effect can be of importance for hydrocarbon exploration as it is complementary to conventional seismics. Besides enabling seismic resolution and electromagnetic sensitivity at the same time, the seismoelectric method can also provide us with additional, high-value information like porosity and permeability. However, very little is still understood of this complex physical phenomenon. Therefore, it is crucial to be able to perform numerical modeling experiments to carefully investigate the effect and the parameters that play a role. Over the last couple of years, several seismoelectric laboratory experiments have been carried out in an attempt to validate the underlying theory of the phenomenon and to better understand this complex physical phenomenon. We have recently extended our analytically based, numerical seismoelectric modeling code ’ESSEMOD’ to be able to model seismoelectric wave propagation in arbitrarily layered Earth geometries with fluid / porous medium / (fluid) interfaces. In this way, we are capable of effectively simulating full seismoelectric wave propagation, i. e. all existing seismoelectric and electroseismic source-receiver combinations, in typical laboratory configurations. We present the underlying theory that is required for the extension towards arbitrary fluid / porous medium / (fluid) geometries and an effective way to incorporate this in a general seismoelectric layered Earth modeling code. We then validate the underlying global reflection scheme by comparing it with an independently developed layered Earth modeling code for purely electromagnetic fields. The results show a perfect match in both amplitude and phase, indicating that ESSEMOD is correctly modeling the electromagnetic parts of the seismo-electric wave propagation in horizontally layered media with fluid / porous medium / fluid transitions. We finalize with a seismoelectric reciprocal modeling experiment, proving that also the full seismoelectric wave propagation through fluid / porous medium transitions is modeled consistently.
机译:地震电效应对于碳氢化合物勘探可能是重要的,因为它是常规地震的补充。除了可以同时实现地震分辨率和电磁敏感性外,地震电法还可以为我们提供更多的高价值信息,例如孔隙率和渗透率。但是,对于这种复杂的物理现象仍然知之甚少。因此,至关重要的是能够执行数值建模实验,以仔细研究效果和起作用的参数。在过去的几年中,已经进行了几次地震电学实验,以验证该现象的基本理论并更好地理解这种复杂的物理现象。我们最近扩展了基于分析的数值电电建模代码“ ESSEMOD”,从而能够对具有流体/多孔介质/(流体)界面的任意分层地球几何中的电波传播进行建模。这样,我们就能有效地模拟整个地震电波的传播,即。 e。在典型的实验室配置中,所有现有的地震电震源接收器组合。我们介绍了扩展到任意流体/多孔介质/(流体)几何形状所需的基础理论,以及将其纳入一般地震电分层地球建模代码中的有效方法。然后,我们通过将其与独立开发的用于纯电磁场的分层地球建模代码进行比较来验证基础的全局反射方案。结果显示振幅和相位都完美匹配,表明ESSEMOD正确地模拟了在具有流体/多孔介质/流体过渡的水平分层介质中地震电波传播的电磁部分。我们通过地震电性互惠建模实验最终确定,证明通过流体/多孔介质跃迁的完整地震电波传播也是一致建模的。

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