Academic literature on the topic 'Petroleum geology'

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Journal articles on the topic "Petroleum geology"

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Zimmerle, W. "Petroleum geology." Marine Geology 67, no. 3-4 (October 1985): 336–37. http://dx.doi.org/10.1016/0025-3227(85)90097-0.

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Mackenzie, Andrew S. "Petroleum geology." Earth-Science Reviews 24, no. 2 (April 1987): 151–52. http://dx.doi.org/10.1016/0012-8252(87)90016-x.

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MACKENZIE, A. "Petroleum geology." Earth-Science Reviews 24, no. 1 (March 1987): 73–74. http://dx.doi.org/10.1016/0012-8252(87)90057-2.

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Mazzullo, S. J. "Petroleum geology handbook." Journal of Petroleum Science and Engineering 10, no. 3 (February 1994): 271. http://dx.doi.org/10.1016/0920-4105(94)90086-8.

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Gurevich, Alexander E. "Petroleum geology handbook." Journal of Petroleum Science and Engineering 8, no. 2 (September 1992): 163. http://dx.doi.org/10.1016/0920-4105(92)90055-6.

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Ko, Jaehong. "Petroleum Geology of Iran." Journal of the Korean Society of Mineral and Energy Resources Engineers 54, no. 5 (June 1, 2017): 549–606. http://dx.doi.org/10.32390/ksmer.2017.54.5.549.

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Ziegel, Eric R., and Michael Edward Hohn. "Geostatistics and Petroleum Geology." Technometrics 42, no. 4 (November 2000): 444. http://dx.doi.org/10.2307/1270983.

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Ziegel, Eric R. "Geostatistics and Petroleum Geology." Technometrics 32, no. 2 (May 1990): 231. http://dx.doi.org/10.1080/00401706.1990.10484652.

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Huc, A. Y. "Petroleum geochemistry and geology." Chemical Geology 137, no. 3-4 (May 1997): 313–14. http://dx.doi.org/10.1016/s0009-2541(96)00131-3.

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Kvenvolden, Keith A. "Petroleum geochemistry and geology." Organic Geochemistry 24, no. 1 (January 1996): 109–10. http://dx.doi.org/10.1016/0146-6380(96)00004-6.

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Dissertations / Theses on the topic "Petroleum geology"

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FERRARETTI, Denis. "Data Mining for Petroleum Geology." Doctoral thesis, Università degli studi di Ferrara, 2012. http://hdl.handle.net/11392/2389427.

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In petroleum geology, exploration and production wells are often analysed using image logs, because they provide a visual representation of the borehole surface and they are fundamental to retrieve information on bedding and rocks characteristics. Aim of this Ph.D. work was to define and implement a suite of automatic and semi-automatic tools for interpretation of image logs and large datasets of subsurface data coming from geological exploration. This led to the development of I2AM (Intelligent Image Analysis and Mapping), a semi-automatic system that exploits image processing algorithms and artificial intelligence techniques to analyse and classify borehole images. More in detail, the objectives of the I2AM approach are: (1) to automatically extract rock properties information from all the different types of data recorded/measured in the wells, and visual features from image logs in particular; (2) to identify clusters along the wells that have similar characteristics; (3) to predict class distribution over new wells in the same area. The main benefits of this approach are the ability to manage and use a large amount of subsurface data simultaneously. Moreover, the automatic identification of similar portions of wells by hierarchical clustering saves a lot of time for the geologist (since he analyses only the previously identified clusters). The interpretation time reduces from days to hours and subjectivity errors are avoided. Moreover, chosen clusters are the input for supervised learning methods which learn a classification that can be applied to new wells. Finally, the learned models can also be studied for a cluster characterization, in a descriptive approach.
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Warnes, J. "Applications of spatial statistics in petroleum geology." Thesis, University of Strathclyde, 1987. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.382393.

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Robinson, Andrew. "Processes of clastic diagenesis: applications to petroleum geology." Thesis, University of Reading, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.386986.

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Roth, Mark M. Jr. "Depositional Environment of the Carbonate Cap Rock at the Pine Prairie Field, Evangeline Parish, Louisiana| Implications of Salt Diapirism on Cook Mountain Reservoir Genesis." Thesis, University of Louisiana at Lafayette, 2018. http://pqdtopen.proquest.com/#viewpdf?dispub=10685670.

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The Pine Prairie Field is situated on a salt dome in northern Evangeline Parish, located in south-central Louisiana. Pine Prairie contains the only known Cook Mountain Formation hydrocarbon reservoir in Louisiana. Operators have targeted and produced hydrocarbons from the Cook Mountain reservoir in eight wells at the Pine Prairie Field. The source and origin of the Cook Mountain’s reservoir properties are unknown. The objective of this study is to determine the origin of the Cook Mountain Formation’s reservoir properties by identifying the processes associated with the formation of a Cook Mountain Reservoir. There are two carbonate outcrops at the surface expression of the Pine Prairie Dome. Samples were taken and thin sections made to determine the relationship, if any, to the Cook Mountain Formation. Thin section analysis of the carbonate outcrop was used to gain a better understanding of the depositional setting present at Pine Prairie Field. Well log, seismic, and production data were integrated to determine that, in all instances, commercial Cook Mountain production is associated with fault zones. The passage of acidic, diagenetic fluids through Cook Mountain fault zones generated areas of vuggy porosity proximal to Cook Mountain faulting. Further, fluctuations in short-term pressure gradients associated with salt diapirism resulted in the vertical migration of hydrocarbons via fault zones. In the Pine Prairie Field, fault seal breakdown occurs in Sparta and Wilcox Reservoirs, subsequently charging the Cook Mountain fault zone. Early hydrocarbon charge from the underlying Wilcox and Sparta Reservoirs prevented additional diagenesis, preserving secondary porosity in areas of Cook Mountain faulting.

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Dada, Olamide. "Reservoir Characterization of the Spraberry Formation, Borden County, West Texas." Thesis, University of Louisiana at Lafayette, 2014. http://pqdtopen.proquest.com/#viewpdf?dispub=1557545.

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The Spraberry Formation is a Leonardian age submarine fan deposit restricted to the Midland Basin. The formation consists of very fine-grained sandstone, medium to coarse grain size siltstones, organic shales and carbonate mudstones. These rocks show variability in sedimentary structures and bedding types varied from thinly laminated to convolute laminations. Bioturbations were present in some samples and soft sediment deformation, such as water escape features, sediment loading and flame structures.

The Spraberry Formation is a naturally fractured reservoir with low porosity and low matrix permeability. Porosity measured varied from 2% in rocks with poor reservoir quality such as the argillaceous siltstone and mudstone while good reservoir rocks had an average porosity of 9%. Seven lithofacies were identified based on sedimentary structures, grain size and rock fabrics. Petrographic analysis showed four porosity types: (1) intragraular porosity; (2) dissolution porosity; (3) fracture porosity and (4) intergranular porosity. Fractured porosity was only observed in the argillaceous siltstone lithofacies.

The prominent diagenetic influences on the Spraberry Formation are: quartz cementation, quartz overgrowth, illtization of smectite, feldspar dissolution, clay precipitation, carbonate cementation, formation of framboidal pyrite and fracture formation. These diagenetic features were observed using scanning electron microscope (SEM) and in thin sections. Generally, petrophysical properties, such as porosity and permeability, vary gradually from reservoir rocks to non-reservoir rock. Observed trends where: 1) increasing organic and argillaceous content with decreasing porosity and 2) increasing carbonate sediments and calcite cements with decreasing porosity. Mineralogical analysis from FTIR showed an abundance of quartz and calcite, while illite is the prominent clay mineral observed in all samples.

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Belaid, Abdulmonem. "Petroleum geology of the Murzuq Basin, SW-Libya geochemical characterization and numerical petroleum systems modelling." Aachen Shaker, 2009. http://d-nb.info/999883720/04.

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Liadey, Dickson M. "Spatial Ontology for the Production Domain of Petroleum Geology." Digital Archive @ GSU, 2012. http://digitalarchive.gsu.edu/geosciences_theses/46.

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ABSTRACT The availability of useful information for research strongly depends on well structured relationships between consistently defined concepts (terms) in that domain. This can be achieved through ontologies. Ontologies are models of the knowledge of specific domain such as petroleum geology, in a computer understandable format. Knowledge is a collection of facts. Facts are represented by RDF triples (subject-predicate-object). A domain ontology is therefore a collection of many RDF triples, which represent facts of that domain. The SWEET ontologies are upper or top-level ontologies (foundation ontologies) consisting of thousands of very general concepts. These concepts are obtained from of Earth System science and include other related concepts. The work in this thesis deals with scientific knowledge representation in which the SWEET ontologies are extended to include wider, more specific and specialized concepts used in Petroleum Geology. Thus Petroleum Geology knowledge modeling is presented in this thesis.
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AlShammary, Nawaf S. "Hetergenerous oil saturation in submarine channel and adjacent facies, monterey formation, point fermin, Palos Verdes, California." Thesis, California State University, Long Beach, 2014. http://pqdtopen.proquest.com/#viewpdf?dispub=1527300.

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Extreme heterogeneity in oil saturation between closely adjacent sandstone beds reflects different timing and degree of diagenesis. Understanding the distribution and origin of such heterogeneity is critical to effectively exploiting intercalated sandstone deposits within fine-grained unconventional reservoirs and in unraveling subtleties of stratigraphic traps. Sea cliff exposures at Point Fermin, California, expose a submarine channel facies within the largely hemipelagic facies. Separated by only meters, Point Fermin Sandstone is oil-saturated, whereas Altamira Shale sandstone is not. Samples were analyzed for porosity, permeability and fluid saturation in conjunction with thinsection petrographic analysis. Sandstones are primarily schist- bearing lithic arenites and the grains are cemented mostly by rhombic dolomite. Data show that both units have the same provenance but differ in the timing and type of diagenesis with shale-hosted sandstones generally showing earlier cementation. The degree and type of cementation occluded pore spaces to prevent hydrocarbon charging in the non-saturated sandstone.

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Bearb, Nicholas A. "Sedimentology of the Miocene Bigenerina humblei and Amphistegina "B" Sandstones in Hog Bayou Field, Offshore Block East Cameron 1 and Cameron Parish, Louisiana| A Well Log Based Study." Thesis, University of Louisiana at Lafayette, 2014. http://pqdtopen.proquest.com/#viewpdf?dispub=1553889.

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The depositional environment of the Bigenerina humblei 1, Bigenerina humblei 6, and Amphistegina “B” 1 sands of the Hog Bayou field in Cameron Parish, Louisiana, was investigated. To complete the investigation, analysis of well log data, along with the preparation of structure, isopach, and fault plane maps, as well as cross sections, were completed for the four sands. Paleontological data and regional literature pertaining to deposition were also utilized.

The conclusions made for this study are based on interpretation of maps generated and the comparison of these maps with maps and models of modern day and ancient depositional environments. All of the three sands studied in the Hog Bayou field are concluded to be those that are representative of varying stages in the development of a deltaic environment. All information gathered and generated for the study area indicates depositional characteristics of distributary mouth bar, distributary channel fill, and channel complex sands. The Hog Bayou field is structurally based on growth faulting that interacts with many of the strata in the field. Growth faulting and its associated rollover anticlines prove to be the primary targets of hydrocarbon accumulations.

The conclusions made from this study can put to use in the interpretation of other analogous middle Miocene depocenters found along the Gulf Coast. The understanding of the depositional environment may ultimately lead to new discoveries in yet to be explored fields.

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Gaiennie, Edward Wilson Jr. "An Investigation into Secondary Migration of Hydrocarbons in the San Joaquin Basin Near Fresno, California." Thesis, University of Louisiana at Lafayette, 2019. http://pqdtopen.proquest.com/#viewpdf?dispub=10815005.

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Prolific amounts of oil and gas have been produced from the San Joaquin Basin in many different oil and gas fields. In many cases, the petroleum system is easily identifiable, and the path hydrocarbons take from source area to trap are known. This study aims to identify secondary migration pathways of hydrocarbons from the source to the trap in an oil field near Fresno, California, where the source is about 35 miles from the trap. To create an accurate subsurface interpretation of the study area, 3D seismic data and more than 300 well logs were used. From subsurface structure maps, net sand maps, an Allan profile, and regional research, it was found that there are two possible migration scenarios that reasonably describe the secondary migration of hydrocarbons into the study area. Six normal faults within the field play large roles as seals and/or migration pathways, and to better understand hydrocarbon migration in the study area, further work must be done on the sealing/leaking behavior of the faults within the field.

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Books on the topic "Petroleum geology"

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North, F. K. Petroleum geology. Boston: Unwin Hyman, 1990.

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London, Geological Society of, ed. Arctic petroleum geology. London: Geological Society, 2011.

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A, Eremenko N., and Chilingar George V. 1929-, eds. Petroleum geology handbook. Los Angeles, Calif., U.S.A: OSI Publiccations, 1991.

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Dickey, Parke Atherton. Petroleum development geology. 3rd ed. Tulsa, Okla., USA: PennWell Pub. Co., 1986.

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Moncrieff, Alan Aird. Geology of petroleum. Tulsa, Okla: AAPG Foundation, 2001.

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Edward, Swarbrick Richard, ed. Petroleum geoscience. Malden, MA: Blackwell Pub., 2004.

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Tahir, Sanudin Hj. Geologi petroleum. Kota Kinabalu: Universiti Malaysia Sabah, 2003.

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Kadri, Iqbal B. Petroleum geology of Pakistan. Karachi: Pakistan Petroleum Ltd., 1995.

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Hunt, John Meacham. Petroleum geochemistry and geology. 2nd ed. New York: W.H. Freeman, 1996.

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Hohn, Michael Edward. Geostatistics and Petroleum Geology. Boston, MA: Springer US, 1988. http://dx.doi.org/10.1007/978-1-4615-7106-3.

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Book chapters on the topic "Petroleum geology"

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Bjørlykke, Knut Olav. "Petroleum Geology." In Sedimentology and Petroleum Geology, 269–311. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989. http://dx.doi.org/10.1007/978-3-642-72592-0_13.

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Bjørlykke, Knut. "Production Geology." In Petroleum Geoscience, 445–58. Berlin, Heidelberg: Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-02332-3_20.

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Bjørlykke, Knut. "Production Geology." In Petroleum Geoscience, 545–58. Berlin, Heidelberg: Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-642-34132-8_21.

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Pieri, Marco. "Italian petroleum geology." In Anatomy of an Orogen: the Apennines and Adjacent Mediterranean Basins, 533–49. Dordrecht: Springer Netherlands, 2001. http://dx.doi.org/10.1007/978-94-015-9829-3_29.

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Jiang, Dexin, Eleanora I. Robbins, Yongdong Wang, and Huiqiu Yang. "Petroleum Sporo-pollen Assemblages and Petroleum Source Rocks." In Springer Geology, 95–121. Berlin, Heidelberg: Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-47946-9_4.

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Bjørlykke, Knut. "Introduction to Petroleum Geology." In Petroleum Geoscience, 1–26. Berlin, Heidelberg: Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-02332-3_1.

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Bjørlykke, Knut. "Introduction to Petroleum Geology." In Petroleum Geoscience, 1–29. Berlin, Heidelberg: Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-642-34132-8_1.

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Bjørlykke, Knut Olav. "Production Geology." In Sedimentology and Petroleum Geology, 333–41. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989. http://dx.doi.org/10.1007/978-3-642-72592-0_16.

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Kundu, Sandeep Narayan. "Production Geology." In Geoscience for Petroleum Engineers, 159–71. Singapore: Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-7640-7_11.

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Ostadhassan, Mehdi, Kouqi Liu, Chunxiao Li, and Seyedalireza Khatibi. "Geology." In SpringerBriefs in Petroleum Geoscience & Engineering, 1–16. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-76087-2_1.

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Conference papers on the topic "Petroleum geology"

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Zakharia, I. "DIGITALIZATION IN PETROLEUM GEOLOGY." In New Challenges in Fundamental and Applied Petroleum Geology. Novosibirsk State University, 2021. http://dx.doi.org/10.25205/978-5-4437-1248-2-26-29.

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Fisher, William L. "The future of petroleum geology." In 1985 SEG Technical Program Expanded Abstracts. SEG, 1985. http://dx.doi.org/10.1190/1.1892734.

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Slepak, Z. M. "Gravity Prospecting in Petroleum Geology." In 2nd EAGE St Petersburg International Conference and Exhibition on Geosciences. European Association of Geoscientists & Engineers, 2006. http://dx.doi.org/10.3997/2214-4609-pdb.20.c019.

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Lanzarini, W. "Concept Mapping of Petroleum Geology." In 73rd EAGE Conference and Exhibition incorporating SPE EUROPEC 2011. Netherlands: EAGE Publications BV, 2011. http://dx.doi.org/10.3997/2214-4609.20149632.

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Alabert*, F. "Keynote - From Big Data with no Geology, to Geology without Data, Quo Vadis?" In Petroleum Geostatistics 2015. Netherlands: EAGE Publications BV, 2015. http://dx.doi.org/10.3997/2214-4609.201413584.

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Lobankov, V. M., and V. Sviatokhin. "Measurements in Petroleum Geology and Geophysics." In 6th Saint Petersburg International Conference and Exhibition. Netherlands: EAGE Publications BV, 2014. http://dx.doi.org/10.3997/2214-4609.20140244.

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Breman, E. "Petroleum Geology of the East Mediterranean." In 1st EAGE North African/Mediterranean Petroleum & Geosciences Conference & Exhibition. European Association of Geoscientists & Engineers, 2003. http://dx.doi.org/10.3997/2214-4609-pdb.8.p009.

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Bitter, M. "Petroleum Geology and Potential of Guatemala." In First HGS and EAGE Conference on Latin America. European Association of Geoscientists & Engineers, 2019. http://dx.doi.org/10.3997/2214-4609.202180018.

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Matchette-Downes, C. "The Petroleum Geology of Offshore Honduras." In First HGS and EAGE Conference on Latin America. European Association of Geoscientists & Engineers, 2019. http://dx.doi.org/10.3997/2214-4609.202180024.

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Matveev, Ivan, Gleb Shishaev, Grachik Eremyan, Vasily Demyanov, Oksana Popova, Sergey Kaygorodov, Boris Belozerov, Iuliia Uzhegova, Dmitry Konoshonkin, and Mikhail Korovin. "Geology Driven History Matching." In SPE Russian Petroleum Technology Conference. Society of Petroleum Engineers, 2019. http://dx.doi.org/10.2118/196881-ms.

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Reports on the topic "Petroleum geology"

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Johnson, R. D., and N. J. McMillan. Petroleum [Chapter 6: Economic Geology]. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1993. http://dx.doi.org/10.4095/192371.

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Totterdell, Jennifer, Lisa Hall, Riko Hashimoto, Kathryn Owen, and Marita Bradshaw. Petroleum geology inventory of Australia’s offshore frontier basins. Geoscience Australia, 2014. http://dx.doi.org/10.11636/record.2014.009.

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Decker, J. E., M. S. Robinson, J. G. Clough, and W. M. Lyle. Geology and petroleum potential of Hope and Selawik Basins. Alaska Division of Geological & Geophysical Surveys, 1987. http://dx.doi.org/10.14509/1347.

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Ormiston, A. R., R. H. Fehlmann, and Amoco Oil Co. Geology and petroleum possibilities of St. Lawrence Island, Alaska, 1969. Alaska Division of Geological & Geophysical Surveys, December 2019. http://dx.doi.org/10.14509/30313.

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Hamblin, A. P. Upper Paleozoic Petroleum Geology and Potential, southern Eagle Plain, Yukon Territory. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1990. http://dx.doi.org/10.4095/128179.

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Barclay, J. E. Bibliography and guide to Triassic petroleum geology, western Canada Basin - on diskette. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1993. http://dx.doi.org/10.4095/183864.

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Bell, L. L. Petroleum geology of the Middle to Late Devonian carbonates, northeast British Columbia. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1993. http://dx.doi.org/10.4095/184195.

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Huang, Z., J. Shimeld, and M. Williamson. Application of computer neural network, and fuzzy set logic to petroleum geology, offshore eastern Canada. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1994. http://dx.doi.org/10.4095/194121.

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Higgs, R. Sedimentology, Basin - Fill Architecture and Petroleum Geology of the Teritary Queen Charlotte Basin, British Columbia. Natural Resources Canada/ESS/Scientific and Technical Publishing Services, 1991. http://dx.doi.org/10.4095/131979.

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Wartes, M. A., R. J. Gillis, T. M. Herriott, R. G. Stanley, K. P. Helmold, C. S. Peterson, and J. A. Benowitz. Summary of 2012 reconnaissance field studies related to the petroleum geology of the Nenana Basin, interior Alaska. Alaska Division of Geological & Geophysical Surveys, February 2013. http://dx.doi.org/10.14509/24880.

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