Seismic interferometry with a TBM source of transmitted and reflected waves

Author:

Poletto Flavio1,Petronio Lorenzo1

Affiliation:

1. Instituto Nazionale di Oceanografia e di Geofisica Sperimentale-OGS Borgo Grotta Gigante no. 42/c, 34010, Sgonico, Trieste, Italy. .

Abstract

We discuss the use of autocorrelogram interferometry by using noise from the tunnel-boring machine (TBM). The TBM provides seismic signals/waves while drilling in a tunnel (TSWD). The tunnel geometry, unlike a reverse vertical seismic profile (RVSP) using a drill bit, makes it possible to record the waves reflected from the region between the tunnel face and the projected tunnel exit and those transmitted ahead of the tunnel face. We processed the waves recorded at back positions with respect to the TBM in a manner similar to a RVSP data set obtained by conventional reference-correlation techniques. We processed the waves transmitted ahead of the TBM using autocorrelogram interferometry techniques. Using these wavefields offers advantages over conventional borehole drill-bit vertical seismic profiles (VSPs). The most important advantage is getting reflections from the transmitted (front) wavefield by utilizing Kunetz’s equation and reversed-time traces. The approach also improves the analysis of the transmitted amplitudes. Finally, we improved the deconvolution of the reflected (back) waves by using the transmitted wavefields measured for interferometry purposes. In particular, by using both front (transmitted) and back (reflected) waves, it is possible to deconvolve the signature of the source extended spatially along the tunnel axis. We use a 1D model in which the interfaces are assumed subvertical. We present a case history in which TSWD data were acquired in a tunnel measuring [Formula: see text] long. We compare results from the transmitted reversed-time and back-reflected waves ([Formula: see text]-waves) with those obtained by amplitude analysis and estimation of reflection coefficients. Each approach matches the interpretation of the fractures encountered in the tunnel.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

Reference20 articles.

1. Ashida, Y., T. Matsuoka, and T. Watanabe, 1998, Imaging algorithm for looking ahead prediction of near subsurface data: 4th International Symposium — Fracture Imaging, Society of Exploration Geophysicists of Japan, Proceedings, 129–133.

2. SYNTHESIS OF A LAYERED MEDIUM FROM ITS ACOUSTIC TRANSMISSION RESPONSE

3. Draganov, D., C. P. A. Wapenaar, B. Artman, and B. Biondi, 2004, Migration methods for passive seismic data: 74th Annual International Meeting, SEG, Expanded Abstracts, 1123–1126.

4. Gangi, A. F. , 1987, A theoretical study of the radiation patterns of a tunnel-boring machine (infinite medium): Final Report GL-87-20, Texas A & M University.

5. Katz, L. J. , 1990, Inverse seismic profiling while drilling: U. S. Patent 5 012 453.

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