基于Kirchhoff积分解的隧道注浆探地雷达试验麦克斯韦旋度方程

Yonghui Zhao, Jun Chen, S. Ge
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引用次数: 4

摘要

在二维探地雷达(GPR)数据中,近地表非目标结构产生的强散射严重遮蔽了探测目标的深度反射。利用探地雷达作为岩土无损检测设备,如何消除隧道衬砌内近地表钢筋产生的强散射,对隧道衬砌后注浆情况进行成像和评价仍是一个有待解决的问题。本文提出了一种基于Maxwell旋度方程的深探地雷达图像重建方法。为了消除近地表衍射散射带来的有害影响,我们采用基于Kirchhoff积分解的Maxwell旋度方程数据化方法,将参考面重新定义为实际地质界面。麦克斯韦旋度方程法可以将参考面重新定义为探地雷达发射机和接收机似乎所在的更深的水平面。通过综合算例和真实探地雷达数据对隧道注浆效果进行了评价。结果表明,基于麦克斯韦旋度方程的成像技术能够消除隧道衬砌中近地表钢筋的强散射,提高隧道衬砌下深层图像的质量。麦克斯韦旋度方程数据化也适用于其他依赖于消除近地表结构引起的散射效应的探地雷达测试情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maxwell curl equation datuming for GPR test of tunnel grouting based on Kirchhoff integral solution
In two-dimensional (2D) ground penetrating radar (GPR) data, the reflection from the detection targets in depth are severely obscured by the strong scattering generated from near-surface non-target structures. For using GPR as a geotechnical non-destructive testing device, how to eliminate the strong scattering caused by near-surface rebars in the tunnel liner to image and assess the grouting condition behind tunnel liner is still an unsolved problem. This study proposed a method for the reconstruction of deep GPR images, termed the Maxwell curl equation datuming. To eliminate the deleterious effect caused by near-surface diffractive scattering, we have redefined the reference surface to an actual geologic interface by using Maxwell curl equation datuming methodology based on Kirchhoff integral solution. Maxwell curl equation datuming procedure can redefine the reference surface into deeper horizon on which the GPR transmitters and receivers appear to be located. Case studies were presented for synthetic examples and real GPR data for assessments of tunnel grouting. The results show that the datuming technique based on Maxwell curl equation, is able to eliminate the strong scattering related to near-surface rebars in tunnel liners, and improve the quality of deeper images beneath the tunnel liners. The Maxwell curl equation datuming is also applicable to other GPR testing situations that depend on the elimination of scattering effects caused by near-surface structures.
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