Application of deterministic deconvolution of ground-penetrating radar data in a study of carbonate strata

被引:24
|
作者
Xia, JH
Franseen, EK
Miller, RD
Weis, TV
机构
[1] Univ Kansas, Kansas Geol Survey, Lawrence, KS 66047 USA
[2] Newmont Min Corp, Englewood, CO 80112 USA
关键词
ground-penetrating radar (GPR); source wavelet; deterministic deconvolution; carbonate strata;
D O I
10.1016/j.jappgeo.2004.07.003
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We successfully applied deterministic deconvolution to real ground-penetrating radar (GPR) data by using the source wavelet that was generated in and transmitted through air as the operator. The GPR data were collected with 400-MHz antennas on a bench adjacent to a cleanly exposed quarry face. The quarry site is characterized by horizontally bedded carbonate strata with shale partings. In order to provide groundtruth for this deconvolution approach, 23 conductive rods were drilled into the quarry face at key locations. The steel rods provided critical information for: (1) correlation between reflections on GPR data and geologic features exposed in the quarry face, (2) GPR resolution limits, (3) accuracy of velocities calculated from common midpoint data and (4) identifying any multiples. Comparing the results of deconvolved data with non-deconvolved data demonstrates the effectiveness of deterministic deconvolution in low dielectric-loss media for increased accuracy of velocity models (improved at least 10-15% in our study after deterministic deconvolution), increased vertical and horizontal resolution of specific geologic features and more accurate representation of geologic features as confirmed from detailed study of the adjacent quarry wall. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:213 / 229
页数:17
相关论文
共 50 条
  • [1] Improving ground-penetrating radar data in sedimentary rocks using deterministic deconvolution
    Xia, JH
    Franseen, EK
    Miller, RD
    Weis, TV
    Byrnes, AP
    JOURNAL OF APPLIED GEOPHYSICS, 2003, 54 (1-2) : 15 - 33
  • [2] Efficient Deconvolution of Ground-Penetrating Radar Data
    Schmelzbach, Cedric
    Huber, Emanuel
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2015, 53 (09): : 5209 - 5217
  • [3] Application of Alford rotation to ground-penetrating radar data
    Van Gestel, JP
    Stoffa, PL
    GEOPHYSICS, 2001, 66 (06) : 1781 - 1792
  • [4] Bayesian frequency-domain blind deconvolution of ground-penetrating radar data
    Schmelzbach, C.
    Scherbaum, F.
    Tronicke, J.
    Dietrich, P.
    JOURNAL OF APPLIED GEOPHYSICS, 2011, 75 (04) : 615 - 630
  • [5] Sparsity-Promoted Blind Deconvolution of Ground-Penetrating Radar (GPR) Data
    Li, Lianlin
    IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2014, 11 (08) : 1330 - 1334
  • [6] Remigration of ground-penetrating radar data
    Jaya, MS
    Botelho, MA
    Hubral, P
    Liebhardt, G
    JOURNAL OF APPLIED GEOPHYSICS, 1999, 41 (01) : 19 - 30
  • [7] The application of wavelet transform in ground-penetrating radar data processing
    Fu, XL
    Wu, JS
    Wan, MH
    ENGINEERING AND ENVIRONMENTAL GEOPHYSICS FOR THE 21ST CENTURY, 1997, : 260 - 264
  • [8] Ground-penetrating radar imaging of railroad subgrade and subsoil strata
    Deng, Shikun
    Gu, Hanming
    Zhou, Zhijun
    Hu, Chaobin
    Geophysical Solutions for Environment and Engineering, Vol 1 and 2, 2006, : 550 - 554
  • [9] GROUND-PENETRATING RADAR
    OWEN, TE
    JOURNAL OF APPLIED GEOPHYSICS, 1995, 33 (1-3) : 5 - 6
  • [10] Application of ground-penetrating radar in tunnel construction
    Hu, Yili
    Chen, Yonghua
    Duan, Jiping
    Wang, Chaojin
    Yang, Jianghua
    NEAR-SURFACE GEOPHYSICS AND HUMAN ACTIVITY, 2008, : 442 - 445