LACUSTRINE BASIN HYDROCARBON EXPLORATION - CURRENT THOUGHTS

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dc.contributor.author Katz B.Ja.
dc.date.accessioned 2021-03-27T04:15:46Z
dc.date.available 2021-03-27T04:15:46Z
dc.date.issued 2001
dc.identifier https://www.elibrary.ru/item.asp?id=795509
dc.identifier.citation Journal of Paleolimnology, 2001, 26, 2, 161-179
dc.identifier.issn 0921-2728
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/27127
dc.description.abstract Although much of the world's petroleum resource-base is associated with marine systems, regionally lacustrine petroleum systems are important. Individual accumulations may exceed several billion barrels. In each of these cases the oil is derived from a lacustrine source rock and may be produced from either nonmarine or marine reservoir rocks. The purpose of this paper is to describe the factors that control lacustrine source rock development and the nature of lacustrine reservoirs. Lacustrine oils display different physical and chemical characteristics than their marine counterparts. These differences can be related to the nature of their precursor material. Although the nature of the products are different, the geochemical threshold criteria for defining source rocks in both settings are the same because of common expulsion requirements. Commercially significant lacustrine systems require the presence of large, long-lived lakes. Such lake settings are tectonic in origin and restricted to climatic settings where precipitation exceeds evaporation. Within these large lake systems three primary factors determine source rock potential and quality. These factors are primary productivity level, organic preservation potential, and matrix sedimentation rate, which controls the dilution of preserved organic matter. Source rock potential is maximized where both productivity and preservation potential are maximized and sedimentation rate is minimized. To some degree these factors can compensate for each other. Hydrocarbon reservoir potential within lacustrine basins is partially impacted by overall tectonic setting. Within extensional settings, transport distances tend to be limited, with much of the sediment being transported away from the basin. The sediments delivered to the lake are poorly sorted and sedimentologically immature, commonly resulting in poor reservoirs due to both primary properties and their susceptibility to diagenesis. Within rifts better reservoirs tend to develop along platform or flexural margins. Stacking of reservoirs is important in lacustrine systems but baffles and barriers are often present between individual sand units. These barriers form as a result of lake level fluctuations. In compressional settings transport distances tend to be longer, resulting in more mature, better sorted sediments leading to higher quality reservoirs. These reservoirs typically develop in fluvial-deltaic and wave-dominated shoreline settings. Lacustrine carbonate reservoirs are locally important. These carbonates tend to develop during lake level lowstands and are dependent on diagenesis (dissolution and karstification) for porosity and permeability development. Lacustrine reservoirs are often stratigraphically and areally limited and display low individual well production rates. Within 'pure' lacustrine systems exploration opportunities appear to be often restricted by either reservoir presence or quality (i.e., production rates). The best exploration opportunities in lacustrine basins appear to be associated with hybrid systems where a lacustrine source and marine reservoir exist.
dc.subject HYDROCARBON SOURCE ROCKS
dc.subject PETROLEUM RESERVOIRS
dc.subject DEPOSITIONAL MODELS
dc.subject ORGANIC PRODUCTIVITY
dc.subject ORGANIC PRESERVATION
dc.subject MATRIX DILUTION
dc.title LACUSTRINE BASIN HYDROCARBON EXPLORATION - CURRENT THOUGHTS
dc.type Статья


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