1887
Volume 36, Issue 1
  • ISSN: 0812-3985
  • E-ISSN: 1834-7533

Abstract

Recently, the imaging of geological structures beneath watercovered areas has been in great demand because of numerous tunnel and bridge construction projects on river or lake sites. An electrical resistivity survey can be effective in such a situation because it provides a subsurface image of faults or weak zones beneath the water layer. Even though conventional resistivity surveys in water-covered areas, in which electrodes are installed on the water bottom, do give high-resolution subsurface images, much time and effort is required to install electrodes. Therefore, an easier and more convenient method is sought to find the strike direction of the main zones of weakness, especially for reconnaissance surveys.

In this paper, we investigate the applicability of the streamer resistivity survey method, which uses electrodes in a streamer cable towed by ship or boat, for delineating a fault zone. We do this through numerical experiments with models of water-covered areas. We demonstrate that the fault zone can be imaged, not only by installing electrodes on the water bottom, but also by using floating electrodes, when the depth of water is less than twice the electrode spacing. In addition, we compare the signal-to-noise ratio and resolving power of four kinds of electrode arrays that can be adapted to the streamer resistivity method.

Following this numerical study, we carried out both conventional and streamer resistivity surveys for the planned tunnel construction site located at the Han River in Seoul, Korea. To obtain highresolution resistivity images we used the conventional method, and installed electrodes on the water bottom along the planned route of the tunnel beneath the river. Applying a two-dimensional inversion scheme to the measured data, we found three distinctive low-resistivity anomalies, which we interpreted as associated with fault zones. To determine the strike direction of these three fault zones, we used the quick and convenient streamer resistivity survey on additional grid-style survey lines. In this way, we could delineate the strike direction of faults beneath the riverbed very efficiently.

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/content/journals/10.1071/EG05050
2005-03-01
2026-01-20
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References

  1. Cho, S.-J., Kim, J.-H., Yi, M.-J., Lee, S.K., Son, J.-S., and Sato, M., 2004, Effective methodology of DC resistivity survey for imaging the underground structure at water-covered area: Proc. 110th SEGJ Conference, 180–183.
  2. Chung, H.-J., Kim, J.-H., Park, K.-P., Kwon, H.-S., Choi, H.-S., Kim, K.-S., and Kim, J.-S., 2001, Application of geophysical results to designing bridge over a large fault: Geotechnical Problems in Asian Countries, Proceeding of Fourth Asian Young Geotechnical Engineers Conference, 45–48.
  3. Coggon, J.H., 1973, A comparison of IP electrode arrays: Geophysics, 38, 737–761.
  4. Fuji-ta, K., and Ikuta, O., 2000, Resistivity structure of the central part of the Yamasaki fault studied by the multiple electrodes resistivity method: Earth Planets Space, 52, 567–571.
  5. Inoue, M., Sasaki, M., and Hachino, Y., 2004, Improvements of the sea bottom electro sounding system: Proc. 110th SEGJ Conference, 63–66.
  6. Kim, J.-H., Yi, M.-J., Song, Y., and Chung, S.-H., 2001, A study on the modified electrode arrays in two-dimensional resistivity survey: Mulli-tamsa, 4, 59–69 (in Korean with English abstract).
  7. Kim, J.-H., Yi, M.-J., Song, Y., Cho, S.-J. Chung, S.-H., and Kim, K.-S., 2002a, DC resistivity survey to image faults beneath a riverbed: Symposium on the Application of Geophysics to Engineering and Environmental Problems (SAGEEP), 13IDA10.
  8. Kim, J.-H., Yi, M.-J., Song, Y., Cho, S.-J., Lee, S.K., Son, J.-S., and Chung, S.-H., 2002b, A study on the DC resistivity method to image the underground structure beneath river or lake bottom: Mulli-tamsa, 5, 223–235 (in Korean with English abstract).
  9. Snyder, D.D., MacInnes, S.C., Raymond, M.J., and Zonge, K.L., 2002, Continuous resistivity profiling in shallow marine and fresh water environments: Symposium on the Application of Geophysics to Engineering and Environmental Problems (SAGEEP), 13GSL4.
  10. Snyder, D.D., and Wightman, W.E., 2002, Application of continuous resistivity profiling to aquifer characterization: Symposium on the Application of Geophysics to Engineering and Environmental Problems (SAGEEP), 13GSL10.
  11. Unsworth, M.J., and Bedrosian, P.A., 2004, Electrical resistivity structure at the SAFOD site from magnetotelluric exploration: Geophys. Res. Lett., 31, L12S05, doi:10.1029/2003GL019405.
  12. Yi, M.-J., Kim, J.-H., and Chung, S.-H., 2003, Enhancing the resolving power of leastsquares inversion with active constraint balancing: Geophysics, 68, 931–941.
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