Evaluation of the reconstruction limits of a frequency-independent crosshole georadar waveform inversion scheme in the presence of dispersion

被引:9
作者
Belina, Florian
Irving, James [2 ]
Ernst, Jacques [3 ]
Holliger, Klaus [1 ]
机构
[1] Univ Lausanne, Inst Geophys, Amphipole UNIL SORGE, CH-1015 Lausanne, Switzerland
[2] Univ Guelph, Sch Engn, Guelph, ON N1G 2W1, Canada
[3] Elekt Gesellsch Laufenburg, Dietikon, Switzerland
基金
瑞士国家科学基金会;
关键词
Waveform inversion; Crosshole GPR; Frequency-dependent permittivity; Constant Q; FDTD; GROUND-PENETRATING RADAR; SEISMIC-REFLECTION DATA; DIFFRACTION TOMOGRAPHIC ALGORITHM; BORN ITERATIVE METHOD; TIME-DOMAIN DATA; NUMERICAL-SIMULATION; NONLINEAR INVERSION; MAXWELLS EQUATIONS; ELASTIC INVERSION; HOLE TOMOGRAPHY;
D O I
10.1016/j.jappgeo.2011.03.003
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Waveform tomographic imaging of crosshole georadar data is a powerful method to investigate the shallow subsurface because of its ability to provide images of pertinent petrophysical parameters with extremely high spatial resolution. All current crosshole georadar waveform inversion strategies are based on the assumption of frequency-independent electromagnetic constitutive parameters. However, in reality, these parameters are known to be frequency-dependent and complex and thus recorded georadar data may show significant dispersive behavior. In this paper, we evaluate synthetically the reconstruction limits of a recently published crosshole georadar waveform inversion scheme in the presence of varying degrees of dielectric dispersion. Our results indicate that, when combined with a source wavelet estimation procedure that provides a means of partially accounting for the frequency-dependent effects through an "effective" wavelet, the inversion algorithm performs remarkably well in weakly to moderately dispersive environments and has the ability to provide adequate tomographic reconstructions. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:9 / 19
页数:11
相关论文
共 63 条
[1]  
Annan A.P., 1996, Journal of Environmental Engineering Geophysics, P125, DOI [10.4133/jeeg1.b.125, DOI 10.4133/JEEG1.B.125]
[2]  
[Anonymous], 2007, WAVE FIELDS REAL MED
[3]   Modelling of GPR waves for lossy media obeying a complex power law of frequency for dielectric permittivity [J].
Bano, M .
GEOPHYSICAL PROSPECTING, 2004, 52 (01) :11-26
[4]   Constant dielectric losses of ground-penetrating radar waves [J].
Bano, M .
GEOPHYSICAL JOURNAL INTERNATIONAL, 1996, 124 (01) :279-288
[5]   Inversion of crosshole seismic data in heterogeneous environments: Comparison of waveform and ray-based approaches [J].
Belina, F. A. ;
Ernst, J. R. ;
Holliger, K. .
JOURNAL OF APPLIED GEOPHYSICS, 2009, 68 (01) :85-94
[6]  
Belina F.A., 2009, 79 ANN M SOC EXPL GE, P1370
[7]   Finite-difference modeling of electromagnetic wave propagation in dispersive and attenuating media [J].
Bergmann, T ;
Robertsson, JOA ;
Holliger, K .
GEOPHYSICS, 1998, 63 (03) :856-867
[8]   MODELING OF A CONSTANT-Q - METHODOLOGY AND ALGORITHM FOR AN EFFICIENT AND OPTIMALLY INEXPENSIVE VISCOELASTIC TECHNIQUE [J].
BLANCH, JO ;
ROBERTSSON, JOA ;
SYMES, WW .
GEOPHYSICS, 1995, 60 (01) :176-184
[9]   Frequency-dependent attenuation analysis of ground-penetrating radar data [J].
Bradford, John H. .
GEOPHYSICS, 2007, 72 (03) :J7-J16
[10]   ON THE ACOUSTIC ELECTROMAGNETIC ANALOGY [J].
CARCIONE, JM ;
CAVALLINI, F .
WAVE MOTION, 1995, 21 (02) :149-162