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Response Characteristics and Experimental Study of Underground Magnetic Resonance Sounding Using a Small-Coil Sensor

机译:小线圈传感器的地下磁共振测深响应特性及实验研究

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摘要

Due to its unique sensitivity to hydrogen protons, magnetic resonance sounding (MRS) is the only geophysical method that directly detects water and can provide nondestructive information on subsurface aquifer properties. The relationship between the surface MRS signal and the location and characteristics of aquifers using large-coil (typically 50–150 m) sensors has been discussed based on forward modelling and experiments. However, few researchers have studied underground MRS using a small-coil sensor. In this paper, a parametric study and a large-scale physical model test were conducted to shed light on the critical response characteristics of underground MRS using a small-coil sensor. The effects of the size and number of turns of the transmitter coil and receiver coil, the geomagnetic declination, the geomagnetic inclination, and the position, thickness, and water content of a water-bearing structure on the performance of the underground MRS were studied based on numerical simulations. Furthermore, we derived the kernel function and underground MRS signal curves for a water-bearing structure model based on the simulations. Finally, a large-scale physical model test on underground MRS using a small-coil sensor was performed using a physical test system for geological prediction of tunnels at Shandong University. The results show that the inversion results of the physical model test were in good agreement with the physical prototype results. Using both numerical modeling and physical model tests, this study showed that underground MRS using a small-coil sensor can be used to predict water-bearing structures in underground engineering.
机译:由于其对氢质子的独特敏感性,磁共振测深(MRS)是唯一直接检测水并可以提供地下含水层特性的无损信息的地球物理方法。基于正演模拟和实验,讨论了使用大线圈(通常为50–150 m)传感器的表面MRS信号与含水层位置和特征之间的关系。但是,很少有研究人员使用小线圈传感器研究地下MRS。本文进行了参数研究和大规模物理模型测试,以阐明使用小线圈传感器的地下MRS的临界响应特征。研究了发射线圈和接收线圈的大小和匝数,地磁偏角,地磁倾角以及含水结构的位置,厚度和含水量对地下MRS性能的影响。在数值模拟上。此外,基于仿真,我们得出了含水结构模型的核函数和地下MRS信号曲线。最后,使用山东大学的隧道地质预报物理测试系统,利用小线圈传感器对地下MRS进行了大规模的物理模型测试。结果表明,物理模型测试的反演结果与物理样机结果吻合良好。通过数值模拟和物理模型测试,这项研究表明,使用小线圈传感器的地下MRS可用于预测地下工程中的含水结构。

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