Submitted:
03 December 2024
Posted:
04 December 2024
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Abstract
This investigation presents the current status of seismic sedimentology, as applied to high-resolution (<5m) mapping of sedimentary facies and hydrocarbon reservoirs in the subsurface. Seismic sedimentology involves the integrated study of seismic lithology and seismic geomorphology. High-resolution lithology, thickness, and geobody geometry mapping can be achieved by focusing on spatial resolution, data quality, attribute selection, seismic modeling, and application of machine learning techniques. As their geophysical counterparts, the interpreters with geologic background can do as good in seismic sedimentology.
Keywords:
1. Introduction
2. Current Understanding of Seismic Resolution
3. Quality of Seismic Data
4. Seismic Attributes for Seismic Lithology
5. Horizontal Resolution and Seismic Geomorphology
6. Seismic modeling is a bridge
7. Machine Learning Comes to Help!
8. Discussions
9. Conclusions
Acknowledgments
Conflicts of interest
References
- Biddle, K. T.; Schlager, W.; Rudolph, K. W.; Bush, T. L. Seismic model of a progradational carbonate platform, Picco di Vallandro, the Dolomites, Northern Italy. American Association of Petroleum Geologists Bulletin, 1992, 76, 14-30.
- Brown, A. R. Interpretation of three-dimensional seismic data. American Association of Petroleum Geologists Memoir 42, 3rd ed., 1991, 341.
- Castagna, J. P.; S. Sun Comparison of spectral decomposition methods. First Break, 2006, 24, 75-79.
- Dong, Y.; Zhu, X.; Zeng, H.; Bian, S.; Liu, C.; Cheng, K.; Xu, X. Study of seismic sedimentology in Qinan Sag (China). Journal of China University of Petroleum, 2008, 32(4), 7-12.
- Fehmers, G. C.; Höcker, C. F. W. Fast structural interpretation with structure-oriented filtering. Geophysics, 2003, 68, 1286-1293.
- Grossmann, A.; Morlet, J. Decomposition of Hardy functions into square integrable wavelets of constant shape. SIAM Journal on Mathematical Analysis, 1984, 15, 723–736. [CrossRef]
- Johnston D. H., ed. Methods and applications in reservoir geophysics. Society of Exploration Geophysicists, Investigations in Geophysics Series 15, 2010.
- Kallweit, R. S.; Wood, L. C. The limits of resolution of zero-phase wavelets. Geophysics, 1982, 47, 1035-1046.
- Li, C.; Liner, C. Singularity exponent from wavelet-based multiscale analysis: A new seismic attribute. Chinese Journal of Geophysics, 2005, 48, 953–959.
- Li, C.; Liner, C. Wavelet-based detection of singularities in acoustic impedances from surface seismic reflection data. Geophysics, 2008, 73, V1–V9. [CrossRef]
- Lindsey, J. P. The Fresnel zone and its interpretive significance. The Leading Edge, 1989, 8(10), 33–39.
- Liner, C. L.; Li, C.; Gersztenkorn, A.; Smythe, J. SPICE: A new general seismic attribute. 74th Annual International Meeting, Society of Exploration Geophysicists, Expanded Abstracts, 2004, 433–436.
- Mallat, S.; Zhang, Z. Matching pursuits with time-frequency dictionaries. IEEE Transactions on Signal Processing, 1993, 41, 3397–3415.
- Matos, M. C.; Davogustto, O.; Zhang, K.; Marfurt, K. J. Detecting stratigraphic discontinuities using time frequency seismic phase residues. Geophysics, 2011, 76, 1–10. [CrossRef]
- Matos, M. C.; Marfurt, K. J. Inverse continuous wavelet transform “deconvolution.” 81st Annual International Meeting, Society of Exploration Geophysicists, Expanded Abstracts, 2011, 1861–1865.
- Partyka, G.; Gridley, J.; Lopez, J. Interpretational applications of spectral decomposition in reservoir characterization. The Leading Edge, 1999, 18, 353–360.
- Portniaguine, O.; Castagna, J. P. Inverse spectral decomposition. 74th Annual International Meeting, Society of Exploration Geophysicists, Expanded Abstracts, 2004, 1786–1789.
- Posamentier, H. W. Seismic geomorphology and depositional systems of deep water environments: Observations from offshore Nigeria, Gulf of Mexico, and Indonesia (abs.). American Association of Petroleum Geologists Annual Convention Program, 2001, A160.
- Posamentier, H. W. Ancient shelf ridges—A potentially significant component of the transgressive systems tract: Case study from offshore northwest Java. American Association of Petroleum Geologists Bulletin, 2002, 86 (1), 75–106.
- Posamentier H. W.; Dorn, G. A.; Cole, M. J.; Beierle, C. W.; Ross, S. P. Imaging elements of depositional systems with 3-D seismic data: A case study. Gulf Coast Section SEPM.
- Foundation, 17th Annual Research Conference, 1996, 213– 228.
- Schlager, W. The future of applied sedimentary geology. Journal of Sedimentary Research, 2000, 70, 2–9. [CrossRef]
- Sheriff, R.E. Encyclopedic Dictionary of Exploration Geophysics. 3rd Edition, Society of Exploration Geophysicists, 1991, 383.
- Sicking, C. J. Windowing and estimation variance in deconvolution. Geophysics, 1982, 47, 1022–1034. [CrossRef]
- Smith, M. G. P.; Stein, J.; Bertrand, A.; Yu, G. Extending seismic bandwidth using the continuous wavelet transform. First Break, 2008, 26, 97-102.
- Taner, M. T.; Sheriff, R. E. Application of amplitude, frequency, and other attributes to stratigraphic and hydrocarbon determination, in C. E. Payton, ed., Seismic stratigraphy. American Association of Petroleum Geologists Memoir 26, 1977, 301–328.
- Tipper, J. C. Do seismic reflections necessarily have chronostratigraphic significance? Geological Magazine, 1993, 130, 47–55.
- Vail, P. R.; Mitchum, Jr. R. M.; Thompson III S. Stratigraphic interpretation of seismic reflection patterns in depositional sequences, in C. E. Payton, ed., Seismic stratigraphy. American Association of Petroleum Geologists Memoir 26, 1977, 63–82.
- Zeng, H. Ultra-thin, lacustrine sandstones imaged on stratal slices in the Cretaceous Qijia Depression, Songliao Basin, China (ext. abs.), in Society of Exploration Geophysicists Annual Meeting, San Antonio, 2011, 951‒955.
- Zeng, H. Thickness imaging for high-resolution stratigraphic interpretation by linear combination and color blending of multiple-frequency panels. Interpretation, 2017, 5(3), T411–T422. [CrossRef]
- Zeng, H. Improving the resolution of 3-D seismic data. Explorer, American Association of Petroleum Geologists, 2024, 45(9), 44-47.
- Zeng, H.; Henry, S. C.; Riola, J. P. Stratal slicing: Part II. Real seismic data. Geophysics, 1998, 63(2), 514– 522.
- Zeng, H.; Hentz, T. F. High-frequency sequence stratigraphy from seismic sedimentology: applied to Miocene, Vermilion Block 50, Tiger Shoal area, offshore Louisiana. American Association of Petroleum Geologists Bulletin, 2004, 88(2), 153–174.
- Zeng, H.; Xu, Z.; Liu, W.; Janson, X.; Fu, Q. Seismic-informed carbonate shelf-to-basin transition in deeply buried Cambrian strata, Tarim Basin, China. Marine and Petroleum Geology, 2022, 136, 18 p. [CrossRef]
- Zhu, X.; Dong, Y.; Zeng, H.; Lin, C.; Zhang, X. Current status and future of seismic sedimentology in China. Journal of Palaeogeography, 2020, 22(3), 397-411.








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