Distinguishing oil and water layers in a porous cracked medium by interpreting acoustic logging data on the basis of Hudson Theory

Xue’ang Zhang, Zhuwen Wang, Zhichao Yang

Journal of Earth Science ›› 2017, Vol. 28 ›› Issue (3) : 500-506.

Journal of Earth Science ›› 2017, Vol. 28 ›› Issue (3) : 500-506. DOI: 10.1007/s12583-017-0620-4
Applied Geophysics

Distinguishing oil and water layers in a porous cracked medium by interpreting acoustic logging data on the basis of Hudson Theory

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Abstract

During surveys, water layers may interfere with the detection of oil layers. In order to distinguish between oil and water layers in a porous cracked medium, research on the properties of cracks and oil and water layers and their relation to acoustic logging rules is essential. On the basis of Hudson’s crack theory, we simulated oil and water layers in crack-porous medium with different crack parameters corresponding to the well-field response. We found that in a cracked medium with high crack angle or low number density of cracks, compressional and shear wave velocities are sensitive to crack characteristics; further, these velocities are more sensitive to crack characteristics when the waves propagate through the water layer than when they propagate through the oil layer. Compressional and shear wave velocities increase with an increase in crack angle: in the water layer, the increase is approximately linear. On comparing the full waveforms observed in the oil and water layers, we find that the amplitudes of most waves are higher in the water layer. Among the considered waves, the Stoneley wave suffers maximum amplitude attenuation in the oil layer. The maximum excitation intensity for oil layer is greater than that for the water layer. These results can guide further cracked media logging field exploration work.

Keywords

crack / acoustic logging / Hudson theory / numerical simulation / reservoir

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Xue’ang Zhang, Zhuwen Wang, Zhichao Yang. Distinguishing oil and water layers in a porous cracked medium by interpreting acoustic logging data on the basis of Hudson Theory. Journal of Earth Science, 2017, 28(3): 500‒506 https://doi.org/10.1007/s12583-017-0620-4

References

Antonio J., Tadeu A. A., Mendes P. A. Simulation of Wave Propagation in a Fluid-Filled Borehole Embedded in a Cracked Medium Using a Coupled BEM/TBEM Formulation. Bulletin of the Seismological Society of America, 2009, 99(6): 3326-3339.
CrossRef Google scholar
Caleap M., Aristégui C., Angel Y. C. Effect of Crack Opening and Orientation on Dispersion and Attenuation of Antiplane Coherent Wave. Geophysical Journal International, 2009, 177(3): 1151-1165.
CrossRef Google scholar
Feng B., Wang H. Z. Data-Domain Wave Equation Reflection Traveltime Tomography. Journal of Earth Science, 2015, 26(4): 487-494.
CrossRef Google scholar
Germán R. J., Quintal B. M., Tobias M., . Energy Dissipation of P and S-Waves in Fluid-Saturated Rocks: An Overview Focusing on Hydraulically Connected Fractures. Journal of Earth Science, 2015, 26(6): 785-790.
CrossRef Google scholar
Guéguen Y., Sarout J. Characteristics of Anisotropy and Dispersion in Cracked Medium. Tectonophysics, 2011, 503(1/2): 165-172.
CrossRef Google scholar
Hall S. A., Kendall J. M., Maddock J., . Crack Density Tensor Inversion for Analysis of Changes in Rock Frame Architecture. Geophysical Journal International, 2008, 173(2): 577-592.
CrossRef Google scholar
Hudson J. A. Overall Properties of a Cracked Solid. Mathematical Proceedings of the Cambridge Philosophical Society, 1980, 88(2): 371-384.
CrossRef Google scholar
Hudson J. A. Wave Speeds and Attenuation of Elastic Waves in Material Containing Cracks. Geophysical Journal International, 1981, 64(1): 133-150.
CrossRef Google scholar
Hudson J. A. Attenuation Due to Second-Order Scattering in Material Containing Cracks. Geophysical Journal International, 1990, 102(2): 485-490.
CrossRef Google scholar
Hudson J. A. Overall Properties of Heterogeneous Material. Geophysical Journal International, 1991, 107(3): 505-511.
CrossRef Google scholar
Hudson J. A., Liu E., Crampin S. The Mechanical Properties of Materials with Interconnected Cracks and Pores. Geophysical Journal International, 1996, 124(1): 105-112.
CrossRef Google scholar
Hudson J. A., Pointer T., Liu E. Effective-Medium Theories for Fluid-Saturated Materials with Aligned Cracks. Geophysical Prospecting, 2001, 49(5): 509-522.
CrossRef Google scholar
Nandal J. S., Saini T. N. Reflection and Refraction at an Imperfectly Bonded Interface between Poroelastic Solid and Cracked Elastic Solid. Journal of Seismology, 2012, 17(2): 239-253.
CrossRef Google scholar
Nishizawa O., Kanagawa K. Seismic Velocity Anisotropy of Phyllosilicate-Rich Rocks: Characteristics Inferred from Experimental and Crack-Model Studies of Biotite-Rich Schist. Geophysical Journal International, 2010, 182(1): 375-388.
Peacock S., Hudson J. A. Seismic Properties of Rocks with Distributions of Small Cracks. Geophysical Journal International, 1990, 102(2): 471-484.
CrossRef Google scholar
Pointer T., Liu E. R., Hudson J. A. Seismic Wave Propagation in Cracked Porous Media. Geophysical Journal International, 2000, 142(1): 199-231.
CrossRef Google scholar
Ruan Z., Yu B. S., Chen Y. Y. Application of Fluid Inclusion Analysis for Buried Dissolution Predicting in the Tahe Oilfield of Tarim Basin, NWChina. Journal of Earth Science, 2013, 24(3): 343-354.
CrossRef Google scholar
Tsang L., Rader D. Numerical Evaluation of the Transient Acoustic Waveform Due to a Point Source in a Fluid-filled Borehole. Geophysics, 1979, 44(10): 1706-1720.
CrossRef Google scholar
Vilhelm J., Rudajev V., Živor R., . Influence of Crack Distribution of Rocks on P-Wave Velocity Anisotropy–A Laboratory and Field Scale Study. Geophysical Prospecting, 2010, 58(6): 1099-1110.
White J. E. Cylindrical Waves in Transversely Isotropic Media. Journal of the Acoustical Society of America, 1981, 70 4 1147
CrossRef Google scholar
Zhang Z. G., Du Y. S., Gao L. F., . The Late Mesozoic Granodiorites from the Southwest Basin in the South China Sea and Its Tectonic Implication. Journal of Earth Science, 2012, 23(3): 268-276.
CrossRef Google scholar
Zhao Y., Yao G. Q., Mu L. H., . Characteristics and Controlling Factors of Fractures in Lacustrine Dolostones Reservoirs in Tanggu District. Earth Science–Journal of China University of Geosciences, 2016, 41(2): 252-264.
CrossRef Google scholar

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