Three-Dimensional Localization of Buried Polyethylene Pipes Using Acoustic Method

被引:2
|
作者
Xerri, William [1 ,2 ]
Saracco, Gineth [1 ]
Ribodetti, Alessandra [3 ]
Zomero, Laurent [2 ]
Picon, Philippe [2 ]
机构
[1] AMU, CNRS UMR7330 CEREGE, CdF, IRD,INRAE,OSU Pytheas, Europole Arbois,BP 80, F-13545 Aix En Provence 4, France
[2] MADE SA, 167 Impasse Garrigue, F-83210 La Farlede, France
[3] Univ & Observ Cote Azur, IRD UR082, GEOAZUR, UMR7329,CNRS, Campus Azur,250 Rue Albert Einstein CS 10269, F-06905 Sophia Antipolis, France
关键词
acoustic method; buried polyethylene pipe; MUSIC algorithm; propagation time modeling; signal processing; full wavefield; WAVE-PROPAGATION; HETEROGENEOUS MEDIA; MUSIC; LOCATION;
D O I
10.3390/s22239433
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Localization of buried polyethylene pipes is an important issue for network managers. This study focuses on an acoustic method, which consists of vibrating the pipe and observing the signal with a receiver placed on the ground surface. This method provides an estimate of the path of the pipe but gives no information on the depth. We developed a multi-sensor method based on the principle of vibrating the pipe, which allows estimating the depth while being non-invasive and non-destructive and without a priori information on the propagation medium. These sensors are positioned perpendicular to the pipe. We developed a new estimator to estimate the depth and the propagation velocity in the medium, which is an important variable in our problem. This estimator is based on the MUSIC algorithm and is adapted to our choice of modeling. In this paper, two models of travel times in typical situations are presented. The first one represents the case where all sensors can be placed inside the trench (on the ground surface) in which the pipe is buried. The second one represents the case where sensors are placed inside and outside the trench. These travel time models aim to provide a fast result to allow the method to be used by field agents. They are compared with a full wavefield modeling by finite differences.
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页数:23
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