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Application of NDT methods to improve the detection of underground linear objects

机译:NDT方法在改善地下线性物体检测中的应用

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Identification of underground objects and rectilinear discontinuities such as tunnels, tubes etc. is quite complicated. This is due to the fact that their width is quite small compared to the cross-section of ground penetrating radar (GPR) beams. This implies low reflectivity and hence very low signal-to-noise ratio (SNR) per scan. In this paper, we propose a new method for improving the SNR of remote sensing devices such as GPR, that use electromagnetic (EM) waves for detection of underground objects. The proposed method for improving the detectability of small-width objects is based on measuring the anisotropy of soils, in a similar fashion as in non-destructive testing methods. The proposed method performs ‘orthogonal’ scans of a parcel of the tested soil, with subsequent processing of the received signals using a special algorithm. No ‘progressive scan’ is required. Mathematical expressions for calculation of SNR are derived in a general form. The performance of the proposed method is investigated by simulations of real cases, when the reflected signal from the object is ‘drowned in the noise’. Numerical simulations of the investigated cases show SNR can be increased from 6 dB up to 10's dB, compared to the traditional method of progressive scanning of the soil under test. It is shown that the presented version of the orthogonal scanning method can yield simultaneous improvement of both SNR and selectivity. The horizontal resolution is improved to about 1 m, in contrast to 5-6 m in conventional GPR.
机译:地下物体和直线不连续性(如隧道,管道等)的识别非常复杂。这是由于其宽度与探地雷达(GPR)波束的横截面相比很小。这意味着反射率低,因此每次扫描的信噪比(SNR)非常低。在本文中,我们提出了一种新的方法来改善诸如GPR之类的遥感设备的信噪比,该设备使用电磁波(EM)检测地下物体。所提出的提高小宽度物体的可检测性的方法是基于与非破坏性测试方法类似的方式,测量土壤的各向异性。所提出的方法对测试的土壤进行“正交”扫描,随后使用特殊算法对接收到的信号进行处理。不需要“渐进式扫描”。以一般形式推导用于计算SNR的数学表达式。当来自物体的反射信号“淹没在噪音中”时,通过对真实情况的仿真来研究所提出方法的性能。所研究案例的数值模拟表明,与传统的逐步扫描被测土壤的方法相比,SNR可以从6 dB提高到10's dB。结果表明,所提出的正交扫描方法可以同时提高SNR和选择性。与常规GPR中的5-6 m相比,水平分辨率提高到了约1 m。

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