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Ferron SS Quarterly report, April 1, 1997--June 30, 1997

The objective of this project is to develop a comprehensive, interdisciplinary, and quantitative characterization of a fluvial-deltaic reservoir which will allow realistic inter-well and reservoir-scale modeling to be constructed for improved oil-field development in similar reservoirs world-wide. The geological and petrophysical properties of the Cretaceous Ferron Sandstone in east-central Utah will be quantitatively determined. Both new and existing data will be integrated into a three-dimensional representation of spatial variations in porosity, storativity, and tensorial rock permeability at a scale appropriate for inter-well to regional-scale reservoir simulation. Results could improve a reservoir management through proper infill and extension drilling strategies, reduction of economic risks, increased recovery from existing oil fields, and more reliable reserve calculations. Transfer of the project results to the petroleum industry is an integral component of the project.

0
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Tags:
3-D simulationGeologydeltaicferronfluvialgeologicpetrophysicalreservoirsandstone
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National Energy Technology Laboratory (NETL)about 1 year ago
Geocellular model of St. Peter Sandstone for University of Illinois at Urbana-Champaign DDU Feasibility StudySource

The geocellular model of the St. Peter Sandstone was constructed for the University of Illinois at Urbana-Champaign DDU feasibility study. Starting with the initial area of review (18.0 km by 18.1 km [11.2 miles by 11.3 miles]) the boundaries of the model were trimmed down to 9.7 km by 9.7 km (6 miles by 6 miles) to ensure that the model enclosed a large enough volume so that the cones of depression of both the production and injection wells would not interact with each other, while at the same time minimizing the number of cells to model to reduce computational time. The grid-cell size was set to 61.0 m by 61.0 m (200 feet by 200 feet) for 160 nodes in the X and Y directions. The top surface of the St. Peter Sandstone was provided by geologists working on the project, and the average thickness of the formation was taken from the geologic prospectus they provided. An average thickness of 68.6 m (225 feet) was used for the St. Peter Sandstone, resulting in 45 layers for the model. Petrophysical data was taken from available rotary sidewall core data (Morrow et al., 2017). As geothermal properties (thermal conductivity, specific heat capacity) are closely related to mineralogy, specifically the percentage of quartz, available mineralogical data was assembled and used with published data of geothermal values to determine these properties (Waples and Waples, 2004; Robertson, 1988). The St. Peter Sandstone was divided into facies according to similar geothermal and petrophysical properties, and distributed according to available geophysical log data and prevailing interpretations of the depositional/diagenetic history (Will et al. 2014). Petrophysical and geothermal properties were distributed through geostatistical means according to the associated distributions for each lithofacies. The formation temperature was calculated, based on data from continuous temperature geophysical log from a deep well drilled into the Precambrian basement at the nearby Illinois Basin Decatur Project (IBDP) where CO2 is currently being sequestered (Schlumberger, 2012). Salinity values used in the model were taken from regional studies of brine chemistry in the St. Peter Sandstone, including for the IBDP (e.g., Panno et al. 2018). After being reviewed by the project's geologists, the model was then passed onto the geological engineers to begin simulations of the geothermal reservoir and wellbores.

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3-D3DDDUDeep Direct-UseIllinoisIllinois BasinMt SimonSt. Peter SandstoneUniversity of Illinois at Urbana-Champaigncharacterizationdensitydepthenergyfeasibilitygeocellular modelinggeologicgeologygeothermalheat capacityhydrologicmechanicalmodelpermeabilitypetrophysicalporositypropertiesreservoirspecific heat capacitystructuralthermalthermal conductivitythickness
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National Renewable Energy Laboratory (NREL)about 1 year ago
Geology and petrophysical characterization of the ferron sandstone

DOE/BC/14896-22

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Tags:
Geologycharacterizationferrongeologypetrophysicalsandstone
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National Energy Technology Laboratory (NETL)about 1 year ago
Petrophysical Assessment of USGS Core Samples for the Bell Creek Project

As part of the characterization efforts for the Bell Creek oil field, 81 core samples of the Muddy and Mowry Formations from 21 wells were selected from the U.S. Geological Survey Core Research Center in Denver, Colorado, and analyzed by the EERC's Applied Geology Laboratory. The samples were characterized in detail for several rock properties, such as compositional mineralogy, bulk mineralogy, grain size, porosity, permeability, pore volume, clay type, bulk chemistry, diagenetic features, and biological characteristics. The goal of this characterization activity is to obtain a better understanding of the petrographic and petrophysical properties of the Mowry and Muddy Formations in and around Bell Creek oil field.

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Tags:
Bell CreekPCORPhase IIIUSGScharacterizationpetrographicpetrophysical
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National Energy Technology Laboratory (NETL)about 1 year ago
Procedures for petrophysical, mineralogical and geochemical characterization of fine-grained clastic rocks and sediments

These methods result from about four years of study of shales and recent fine-grained muds. Characterization of shales has been a topic of intensive research under the Eastern Gas Shales Project through a contract study to West Virginia Geological and Economic Survey funded by United States Department of Energy.

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Tags:
EGSGeochemistryGeophysicsPetrophysicsSolidscharacterizationgeochemistrymineralogicalmudspetrophysicalshale
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.PDF
National Energy Technology Laboratory (NETL)about 1 year ago