Effects of diagenesis on the acoustic velocity of the Triassic oolitic shoals in the Yudongzi outcrop of Erlangmiao area, Northwest Sichuan Basin

Hui Rong, Yangquan Jiao, Liqun Wu, Yuan Gu, Liya Zhang, Rong Li, Fanping Zeng

Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (4) : 542-558.

Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (4) : 542-558. DOI: 10.1007/s12583-012-0274-1
Article

Effects of diagenesis on the acoustic velocity of the Triassic oolitic shoals in the Yudongzi outcrop of Erlangmiao area, Northwest Sichuan Basin

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Abstract

The oolitic shoals of the Triassic carbonate platform margin in the Yudongzi (鱼洞子) outcrop of Erlangmiao (二郎庙) area in the northwestern Sichuan (四川) basin present a scarce opportunity to quantitatively describe their diagenesis and its effects on the acoustic velocity. Using a detailed field geologic survey, profiles illustration of typical depositional system, and systematic testing, five types of diagenesis have been identified in the oolitic shoals: micritization, cementation, compaction and pressolution, dissolution, and dolomitisation. The cementation is composed of four subtypes (micrite cements, fibrous calcite cements, granular calcite cements, and blocky calcite cements). The dissolution is formed from three subtypes (freshwater selective dissolution, burial non-selective dissolution, and burial selective dissolution). The dolomitisation is composed of three subtypes (fine-crystalline dolomites, microcrystalline dolomites, and medium-crystalline dolomites). In order to quantitatively describe the diagenetic fabric of oolitic shoals, the micritic grain content, calcite cement content, mean pore diameter, pore types, dolomite content, and dolomite types have been evaluated. Based on these data, the relationship between the acoustic velocity and diagenesis of oolitic shoals has been established. The results show that the diagenetic fabric is linearly related with the acoustic velocity, and the general trend observed is as expected a decrease of velocity as the micritic grain content, mean pore diameter and dolomite content increase, or the sparite cement content decreases. This study will demonstrate that the transformation of diagenetic facies will probably make the petrophysical properties of the oolitic shoals regularly changed. The reflection configuration of diagenetic facies in the oolitic shoals can be shown in the synthetic seismic model simulated according to the P-wave impedance and S-wave impedance.

Keywords

oolitic shoal / diagenesis / acoustic velocity / Feixianguan Formation / Sichuan basin

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Hui Rong, Yangquan Jiao, Liqun Wu, Yuan Gu, Liya Zhang, Rong Li, Fanping Zeng. Effects of diagenesis on the acoustic velocity of the Triassic oolitic shoals in the Yudongzi outcrop of Erlangmiao area, Northwest Sichuan Basin. Journal of Earth Science, 2012, 23(4): 542‒558 https://doi.org/10.1007/s12583-012-0274-1

References

Ameen M. S., Smart B. G. D., Somerville J. M., . Predicting Rock Mechanical Properties of Carbonates from Wireline Logs (A Case Study: Arab-D Reservoir, Ghawar Field, Saudi Arabia). Marine and Petroleum Geology, 2009, 26: 430-444.
CrossRef Google scholar
Cai C. F., Xie Z. Y., Worden R. H., . Methane-Dominated Thermochemical Sulphate Reduction in the Triassic Feixianguan Formation, East Sichuan Basin, China: Towards Prediction of Fatal H2S Concentrations. Marine and Petroleum Geology, 2004, 21: 1265-1279.
CrossRef Google scholar
Chen H. D., Zhong Y. J., Hou M. C., . Sequence Styles and Hydrocarbon Accumulation Effects of Carbonate Rock Platform in the Changxing-Feixianguan Formations in the Northeastern Sichuan Basin. Oil & Gas Geology, 2009, 30(5): 539-547.
Chen M.. New Gas Pools in the Sichuan Basin-Feixianguan Oolitic Shoal. Natural Gas Industry, 2001, 21 2 103
Croizé D., Ehrenberg S. N., Bjolykke K., . Petrophysical Properties of Bioclastic Platform Carbonates: Implications for Porosity Controls during Burial. Marine and Petroleum Geology, 2010, 27(8): 1765-1774.
CrossRef Google scholar
Doherty P. D., Soreghan G. S., Castagna J. P.. Outcrop-Based Reservoir Characterization: A Composite Phylloid-Algal Mound, Western Orogrande Basin (New Mexico). AAPG Bulletin, 2002, 86(5): 779-795.
Dou Q. F., Sun Y. F., Sullivan C.. Rock-Physics-Based Carbonate Pore Type Characterization and Reservoir Permeability Heterogeneity Evaluation, Upper San Andres Reservoir, Permian Basin, West Texas. Journal of Applied Geophysics, 2011, 74: 8-18.
CrossRef Google scholar
Grammer, G. M., Harris, P. M., Eberli, G. P., 2004. Integration of Modern and Outcrop Analogs for Reservoir Modeling—Overview and Examples from the Bahamas. In: Grammer, G. M., Harris, P. M., Eberli, G. P., eds., Integration of Outcrop and Modern Analogs in Reservoir Modeling. AAPG Memoir, 80: 1–22
Guo T. L.. Diagenesis of the Feixianguan Oolitic Shoal Reservoirs in the Northeastern Sichuan Basin: Examples from Xuanhan-Daxian and Yuanba Areas. Oil & Gas Geology, 2010, 31(5): 620-631.
Hao F., Guo T. L., Zhu Y. M., . Evidence for Multiple Stages of Oil Cracking and Thermochemical Sulfate Reduction in the Puguang Gas Field, Sichuan Basin, China. AAPG Bulletin, 2008, 92(5): 611-637.
CrossRef Google scholar
Klimentos T.. The Effects of Porosity-Permeability-Clay Content on the Velocity of Compressional Waves. Geophysics, 1991, 56(12): 1930-1939.
CrossRef Google scholar
Ma Y. S., Guo X. S., Guo T. L., . The Puguang Gas Field: New Giant Discovery in the Mature Sichuan Basin, Southwest China. AAPG Bulletin, 2007, 91(5): 627-643.
CrossRef Google scholar
Ma Y. S., Mou C. L., Guo T. L., . Sequence Stratigraphy and Reservoir Distribution of Feixianguan Formation in Northeastern Sichuan. Journal of Mineral and Petrology, 2005, 25(4): 73-79.
Ma Y. S., Zhang S. C., Guo T. L., . Petroleum Geology of the Puguang Sour Gas Field in the Sichuan Basin, SW China. Marine and Petroleum Geology, 2008, 25: 357-370.
CrossRef Google scholar
Ma Z. G.. Effects of Diagenesis and Rock Texture on Elastic Velocity of Sandstones. Acta Petrolei Sinica, 2008, 29(1): 58-63.
Mou C. L., Ma Y. S., Tan Q. Y., . Sedimentary Model of the Changxing-Feixianguan Formations in the Tongjiang-Nanjiang-Bazhong Area, Sichuan. Acta Geologica Sinica, 2007, 81(6): 820-826.
Rajabi M., Bohloli B., Ahangar E. G.. Intelligent Approaches for Prediction of Compressional, Shear and Stoneley Wave Velocities from Conventional Well Log Data: A Case Study from the Sarvak Carbonate Reservoir in the Abadan Plain (Southwestern Iran). Computers & Geosciences, 2010, 36: 647-664.
CrossRef Google scholar
Rezaee M. R., Ilkhchi A. K., Barabadi A.. Prediction of Shear Wave Velocity from Petrophysical Data Utilizing Intelligent Systems: An Example from a Sandstone Reservoir of Carnarvon Basin, Australia. Journal of Petroleum Science and Engineering, 2007, 55: 201-212.
CrossRef Google scholar
Rong H., Jiao Y. Q., Wu L. Q., . Study for the Oolitic Shoal Composition and Its Implication of Feixianguan Formation in Yudongzi Section of Erlangmiao, Jiangyou. Earth Science—Journal of China University of Geosciences, 2010, 35(1): 125-136.
CrossRef Google scholar
Sams M. S., Andrea M.. The Effect of Clay Distribution on the Elastic Properties of Sandstones. Geophysical Prospecting, 2001, 49: 128-150.
CrossRef Google scholar
Wang B. J.. The Sichuan Hydrocarbon Province: Petroleum Geology of China, 1989, Beijing: Petroleum Industry Press 516
Wang Y. G., Wen Y. C., Hong H. T., . Diagenesis of Triassic Feixianguan Formation in Sichuan Basin, Southwest China. Acta Sedimentologica Sinica, 2007, 25(6): 831-839.
Wei G. Q., Chen G. S., Yang W., . Distinguishing of Sequence Interface of Carbonate Rock in the Covered Field: An Example for Feixianguan Formation, Lower Triassic in Northern Sichuan Basin. Petroleum Exploration and Development, 2003, 30(6): 68-71.
Westphal H., Eberli G. P., Smith L. B., . Reservoir Characterization of the Mississippian Madison Formation, Wind River basin, Wyoming. AAPG Bulletin, 2004, 88(4): 405-432.
CrossRef Google scholar
Zhang S. C., Zhu G. Y., Liang Y. B.. Formation Mechanism and Distribution Prediction of High-Quality Marine Reservoir in Deeper Sichuan Basin. Petroleum Exploration and Development, 2006, 33(2): 161-166.

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