Factor Controlling Reservoir Properties and Flow Unit Determination in the Ilam Formation of Dezfol Embayment at Zagros Fold-Thrust Belt, Southwest of Iran — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Factor Controlling Reservoir Properties and Flow Unit Determination in the Ilam Formation of Dezfol Embayment at Zagros Fold-Thrust Belt, Southwest of Iran
School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
,
School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
,
National Iranian South Oil Company, NISOC, Ahvaz, Iran
,
School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
1 School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
2 School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
3 National Iranian South Oil Company, NISOC, Ahvaz, Iran
4 School of Geology, College of Science, University of Hormozgan, Bandar Abbas, Iran
Dezfol embayment in the Southwest of Iran is located in the Zagros fold-thrust belt, which is one of the world’s largest petroleum provinces. Ilam Formation (Santonian-Companian) is one of the reservoir formations in this area that has been less studied. This paper focused on reservoir properties in this formation using petrography and petrophysics data. According to the petrography stu dies Ilam Formation composed of limestone as dominant lithology. Detailed petrographic analyses, have led to identification of 10 micro-facies which are represented as a carbonate ramp depositional model. Also petrographic analyses are revealed that cementation, dissolution, compaction and dolomitization are most important digenetic processes. Detailed petrographic analyses and petrophysics data showed that due to mud-supported nature of more facies (inherited low reservoir potential from their depositional settings), diagenetic process plays an important role in increasing of reservoir quality. However cementation and dissolution had negative and positive effects on Ilam reservoir formation, respectively. Finally at the end for better correlation and to create a flow unit, according to the petrography data and using petrophysics log, this reservoir is divided into 5 units (flow unite) by using Geolog software and then they have been correlated across the field.
Sharland, P.R., Archer, R., Casey, D.M., Davies, R.B., Hall, S.H., Heward, A.P., Horbury, A.D. and Simmons, M.D. (2001) Arabian Plate Sequence Stratigraphy: GeoArabia. Special Publication, 2, 371 p.
Alavi, M.A. (2007) Structures of the Zagros Fold-Thrust Belt in Iran. American Journal of Science, 307, 1064-1095. http://dx.doi.org/10.2475/09.2007.02
Talebian, M. and Jackson, J. (2002) Offset on the Main Recent Fault of NW Iran and Implication for the Late Cenozoic Tectonics of the Arabia-Eurasia Collision Zone. Geophysical Journal International, 150, 422-439. http://dx.doi.org/10.1046/j.1365-246X.2002.01711.x
Alavi, M. (2004) Regional Stratigraphy of the Zagros Fold-Thrust Belt of Iran and Its Proforeland Evolution. American Journal of Science, 304, 1-20. http://dx.doi.org/10.2475/ajs.304.1.1
Mazzullo, S.J. (1994) Diagenesis in a Sequence-Stratigraphic Setting: Porosity Evaluation in Periplatform Carbonate Reservoirs, Permian Basin, Texas and New Mexico. Journal of Petroleum Science and Engineering, 11, 311-322. http://dx.doi.org/10.1016/0920-4105(94)90049-3
Heydari, E. (1997) The Role of Burial Diagenesis in Hydrocarbon Destruction and H2S Accumulation, Upper Jurassic Smackover Formation, Black Creek Field, Mississippi. American Association of Petroleum Geologists Bulletin, 81, 26-45.
Warren, J.K. (2006) Evaporites: Sediments, Resources and Hydrocarbons. Springer Verlag, Brunei, 1035 p. http://dx.doi.org/10.1007/3-540-32344-9
Lucia, F.J. (2007) Carbonate Reservoir Characterization. Springer-Verlag, Berlin, 341 p.
Ahr, W.M. (2008) Geology of Carbonate Reservoir. John Wiley and Sons Inc., Hoboken, 277 p. http://dx.doi.org/10.1002/9780470370650
Zhang, J., Qin, L. and Zhang, Z. (2008) Depositional Facies, Diagenesis and Their Impact on the Reservoir Quality of Silurian Sandstones from Tazhong Area in Central Tarim Basin, Western China. Journal of Asian Earth Sciences, 33, 42-60. http://dx.doi.org/10.1016/j.jseaes.2007.10.021
Rahimpour-Bonab, H., Asadi-Eskandar, A. and Sonei, A. (2009) Controls of Permian-Triassic Boundary over Reservoir Characteristics of South Pars Gas Field, Persian Gulf. Geological Journal, 44, 341-364.
Baron, M., Parnell, J., Mark, D., Carr, A., Przyjalgowski, M. and Feely, M. (2008) Evolution of Hydrocarbon Migrationstyle in a Fractured Reservoir Deduced from Fluid Inclusion Data, Clair Field, West of Shetland, UK. Marine and Petroleum Geology, 25, 153-172. http://dx.doi.org/10.1016/j.marpetgeo.2007.05.010
Cerepi, A., Barde, J.P. and Labat, N. (2003) High-Resolution Characterization and Integrated Study of a Reservoir Formation: The Danian Carbonate Platform in the Aquitaine Basin (France). Marine Petroleum Geology, 20, 1161-1183. http://dx.doi.org/10.1016/j.marpetgeo.2003.09.005
Rahimpour-Bonab, H., Mehrabi, H., Enayati-Bidgoli, A.H. and Omidvar, M. (2012) Coupled Imprints of Tropical Climate and Recurring Emergence on Reservoir Evolution of a Mid-Cretaceous Carbonate Ramp, Zagros Basin, Southwest Iran. Cretaceous Research, 37, 15-34. http://dx.doi.org/10.1016/j.cretres.2012.02.012
Al-Laboun, A., Al-Quraishi, A., Zaman, H. and Benaafi, M. (2014) Reservoir Characterization of the Burqan Formation Sandstone from Midyan Basin, Northwestern Saudi Arabia. Turkish Journal of Earth Sciences, 23, 204-214. http://dx.doi.org/10.3906/yer-1206-2
Bahroudi, A. and Koyi, H.A. (2004) Tectono-Sedimentary Framework of the Gachsaran Formation in the Zagros Foreland Basin. Marine and Petroleum Geology, 21, 1295-1310. http://dx.doi.org/10.1016/j.marpetgeo.2004.09.001
Bordenave, M.L. and Hegre, J.A. (2005) The Influence of Tectonics on the Entrapment of oil in the Dezful Embayment, Zagros Fold Belt, Iran. Journal of Petroleum Geology, 28, 339-368. http://dx.doi.org/10.1111/j.1747-5457.2005.tb00087.x
Setudehnia, A. (1978) The Mesozoic Succession in SW Iran and Adjacent Areas. Journal of Petroleum Geology, 1, 3-42. http://dx.doi.org/10.1111/j.1747-5457.1978.tb00599.x
Alsharhan, A.S., Nairn, A.E.M. and Mohammed, A.A. (1993) Late Palaeozoic Glacial Sediments of the Southern Arabian Peninsula: Their Lithofacies and Hydrocarbon Potential. Marine and Petroleum Geology, 10, 71-78. http://dx.doi.org/10.1016/0264-8172(93)90101-W
Ghabeishavi, A., Vaziri-Moghaddam, H. and Taheri, A. (2009) Facies Distribution and Sequence Stratigraphy of the Coniacian-Santonian Succession of the Bangestan Palaeo-High in the Bangestan Anticline, SW Iran. Facies, 55, 243-257. http://dx.doi.org/10.1007/s10347-008-0171-3
Holliss, C. (2011) Diagenetic Controls on Reservoir Properties of Carbonate Successions within the Albian-Turonian of the Arabian Plate. Petroleum Geoscience, 17, 223-241. http://dx.doi.org/10.1144/1354-079310-032
Koop, W. and Stoneley, R. (1982) Subsidence History of the Middle East Zagros Basin, Permian to Recent. Philosophical Transactions of the Royal Society A, A305, 149-168. http://dx.doi.org/10.1098/rsta.1982.0031
Motiei, H. (1993) Stratigraphy of Zagros. Treatise on the Geology of Iran No. 1., Geological Survey of Iran, Tehran, 497 p. (In Persian)
Aqrawi, A.A.M., Mahdi, T.A., Sherwani, G.H. and Horbury, A.D. (2010) Characterization of the Mid-Cretaceous Mishrif Reservoir of the Southern Mesopotamian Basin, Iraq. AAPG GEO Middle Eastn Geoscience Conference, Bahrain, 7-10 March 2010, AAPG Search and Discovery Article 50264.
Dunham, R.J. (1962) Classification of Carbonate Rocks according to Depositional Texture. In: Ham, W.E., Ed, Classification of Carbonate Rocks, Vol. 1, American Association of Petroleum Geologists Memoir, 108-121.
Flugel, E. (2010) Microfacies of Carbonate Rocks: Analysis, Interpretation and Application. Springer, Berlin, 299-301. http://dx.doi.org/10.1007/978-3-642-03796-2
Choquette, P.W. and Pray, L.C. (1970) Geologic Nomenclature and Classification of Porosity in Sedimentary Carbonates. American Association of Petroleum Geologists Bulletin, 54, 207-250.
Wilson, B.R. (1975) Carbonate Facies in Geological History. Springer, Berlin, 471 p. http://dx.doi.org/10.1007/978-1-4612-6383-8
Selley, R.C. (1996) Ancient Sedimentary Environments and Their Sub-Surface Diagnosis. 4th Edition, Chapman & Hall, London, Glasgow, Weinheim, New York, Tokyo, Melbourne, Madras, Xvii + 300 p.
Moore, C.H. (2001) Carbonate Reservoirs, Porosity Evolution and Diagenesis in a Sequence Stratigraphic Framework. Developments in Sedimentology, Elsevier, Amsterdam, 460 p.
Ahmad, A.H.M., Bhat, G.M. and Azim Khan, M.H. (2006) Depositional Environments and Diagenesis of the Kuldharand Keera Dome Carbonates (Late Bathonian-Early Callovian) of Western India. Journal of Asian Earth Sciences, 27, 765-778. http://dx.doi.org/10.1016/j.jseaes.2005.06.013
El-Saiy, A.K. and Jordan, B.R. (2007) Diagenetic Aspects of Tertiary Carbonates West of the Northern Oman Mountains, United Arab Emirates. Journal of Asian Earth Sciences, 31, 35-43. http://dx.doi.org/10.1016/j.jseaes.2007.03.004
Tucker, M.E. (2001) Sedimentary Petrology: An Introduction to the Origion of Sedimentary Rocks. Vol. 2, Scientific Publication, London, 207-250.
Al-Aasm, I.S. and Veizer, J. (1986) Diagenetic Stabilization of Aragonite and Low-Mg Calcite, I, Trace Element in Rudists. Journal of Sedimentary Petrology, 56, 138-152.
Folk, R.L. (1964) Some Aspects of Recrystallization of Ancient Limestones: ABSTRACT. AAPG Bulletin, 48.
Bathurst, R.G.C. (1975) Carbonate Sediment and Their Diagenesis. Development in Sedimentology, Elsevier, Amsterdam, 658 p.
Garcia-Pichel, F. (2006) Plausible Mechanisms for the Boring on Carbonates by Microbial Prototrophs. Sedimentary Geology, 105, 29-50.
Kirmaci, M.Z. and Akdag, K. (2005) Origin of Dolomite in the Late Cretaceous-Paleocene Limestone Turbidites. Eastern Pontides, Turkey. Sedimentary Geology, 181, 39-57. http://dx.doi.org/10.1016/j.sedgeo.2005.07.003
Ehrenberg, S. N. (2006) Porosity Destruction in Carbonate Platforms. Journal of Petroleum Geology, 29, 41-52. http://dx.doi.org/10.1111/j.1747-5457.2006.00041.x
Ehrenberg, S.N., Nadeau, P.H. and Aqrawi, A.A.M. (2007) A Comparison of Khuff and Arab Reservoir Potential throughout the Middle East. AAPG Bulletin, 91, 275-286. http://dx.doi.org/10.1306/09140606054
.Smith, J.V. (2000) Three-Dimensional Morphology and Connectivity of Stylolite Shape Reactivated during Veining. Journal of Structural Geology, 22, 59-64. http://dx.doi.org/10.1016/S0191-8141(99)00138-8
Hood S.D., Nelson C.S. and Kamp P.J.J. (2004) Burial Dolomitisation in a Non-Tropical Carbonate Petroleum Reservoir: The Oligocene Tikorangi Formation, Taranaki Basin, New Zealand. Sedimentary Geology, 172, 117-138. http://dx.doi.org/10.1016/j.sedgeo.2004.08.005
Torok, A. (2000) Formation of Dolomite Mottling in Middle Triassic Ramp Carbonates (Southern Hungary). Sedimentary Geology, 131, 131-145. http://dx.doi.org/10.1016/S0037-0738(99)00137-2
Kamali, M.R., Lemon, N.M. and Apark, S.N. (1995) Porosity Generation and Reservoir Potential of Ouldburra Formation Carbonates, Officer Basin, South Australia. APEA Journal, 35, 106-120.
Moore, C.H. (1989) Carbonate Diagenesis and Porosity. Elsevier, Amsterdam, 338 p.
Hearst, J., Nelson, P.H. and Paillet, F.L. (2001) Well Logging for Physical Properties. John Wiley & Sons Ltd., Hoboken, 483 p.
Tiab, D. (2010) Advances in Petrophysics. Flow Units, Vol. 8, Lecture Note & Manual, University of Oklahoma, Norman.
Archie, G.E. (1952) Introduction to Petrophysics of Reservoir, Flying-Machine. US Patent No. 821393.