DocumentCode :
2806463
Title :
Characterizing a low-velocity waveguide using crosshole GPR full-waveform inversion
Author :
Klotzsche, A. ; van der Kruk, J. ; Vereecken, H. ; Meles, G.A.
Author_Institution :
Agrosphere (IBG 3), Res. Center Julien, Julien, Germany
fYear :
2012
fDate :
4-8 June 2012
Firstpage :
47
Lastpage :
50
Abstract :
For accurate prediction of flow and contaminant transport a detailed quantification of the local spatial hydraulic conductivity is necessary. In particular, decimeter-scale high contrast layers caused by increased porosity or clay content are important because they can have a dominant effect on solute transport. Such embedded layers when characterized by high dielectric permittivity can act as low-velocity electromagnetic waveguides and be readily identified and characterized using high-frequency crosshole GPR. We show by means of a GPR field example from a hydrological test site in Switzerland that the full-waveform inversion, which exploits the full information content of the data, is able to image a sub-wavelength thickness dipping low-velocity wave-guiding layer. Further, we show an approach to identify low-velocity waveguides from the measured data by analyzing the amplitude and energy behavior within the data. For transmitters present within the waveguide, high amplitude elongated wave-trains are detected for receivers straddling the waveguide depth range, with significantly larger amplitudes than on receivers outside the low-velocity layer, whereas transmitters outside the waveguide show an energy minimum for receivers within the waveguide.
Keywords :
clay; geophysical signal processing; ground penetrating radar; groundwater; hydrological techniques; inverse problems; permittivity; porosity; radiowave propagation; remote sensing by radar; rocks; waveguides; Switzerland; amplitude behavior; clay content; contaminant transport prediction; crosshole GPR full waveform inversion; decimeter scale high contrast layers; dipping layer; embedded layers; energy behavior; flow prediction; high dielectric permittivity; high frequency crosshole GPR; hydrological test site; local spatial hydraulic conductivity; low velocity electromagnetic waveguides; low velocity layer; low velocity waveguide characterisation; porosity; solute transport; subwavelength thickness layer; waveguide depth range; waveguiding layer; Conductivity; Electromagnetic waveguides; Energy measurement; Ground penetrating radar; Receivers; Time measurement; Transmitters; GPR; full-waveform inversion; low-velocity waveguide; preferential flow path;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ground Penetrating Radar (GPR), 2012 14th International Conference on
Conference_Location :
Shanghai
Print_ISBN :
978-1-4673-2662-9
Type :
conf
DOI :
10.1109/ICGPR.2012.6254830
Filename :
6254830
Link To Document :
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