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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Atlantic Ocean
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North Atlantic
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Gulf of Mexico (1)
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North America
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Appalachians (1)
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Canadian Shield
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United States
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Alabama
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Primary terms
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Atlantic Ocean
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North Atlantic
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Gulf of Mexico (1)
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Cenozoic
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Tertiary
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Paleogene
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Eocene
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Crystal River Formation (1)
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lower Eocene
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Hatchetigbee Formation (1)
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upper Eocene
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lower Oligocene (1)
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middle Oligocene
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Marianna Limestone (1)
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Clayton Formation (2)
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lower Paleocene
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Danian (1)
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Naheola Formation (2)
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Porters Creek Formation (3)
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Chordata
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Vertebrata
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Theria
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Mollusca
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Protista
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Foraminifera (2)
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Mesozoic
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Jurassic
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Norphlet Formation (4)
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Upper Jurassic
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Buckner Formation (1)
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Haynesville Formation (4)
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Oxfordian (2)
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Smackover Formation (7)
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Triassic (1)
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museums (1)
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North America
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Appalachians (1)
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Canadian Shield
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Grenville Province (1)
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Gulf Coastal Plain (12)
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oil and gas fields (6)
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petroleum
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reefs (2)
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sedimentation (5)
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United States
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Alabama
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Baldwin County Alabama (1)
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Butler County Alabama (2)
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Choctaw County Alabama (2)
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Clarke County Alabama (6)
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Conecuh County Alabama (6)
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Covington County Alabama (1)
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Dallas County Alabama (1)
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Escambia County Alabama (5)
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Lowndes County Alabama (1)
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Marengo County Alabama (2)
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Mobile County Alabama (1)
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Monroe County Alabama (12)
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Sumter County Alabama (1)
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Washington County Alabama (2)
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Wilcox County Alabama (3)
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Cincinnati Arch (1)
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Mississippi
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Hinds County Mississippi (2)
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Jackson County Mississippi (1)
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Wayne County Mississippi (2)
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Wiggins Arch (1)
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chemically precipitated rocks
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clastic rocks
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sandstone (3)
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sedimentary structures
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sediments
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Abstract Although the Upper Jurassic Haynesville Formation is a proven hydrocarbon reservoir in the onshore eastern Gulf of Mexico, the unit remains understudied because exploration has been focused on the older and more productive Norphlet and Smackover Formations. In this study, we use cores, gamma ray logs, and spontaneous potential logs from 49 wells in southern Alabama to analyze the Haynesville Formation. We point-counted 18 sandstone samples from seven cores, and six sandstone samples from four of those cores were analyzed for detrital zircon age distributions. Core and well log analyses indicate that the Haynesville Formation can be subdivided into anhydrite, sandstone, and carbonate lithofacies. The thickness and distribution of these lithofacies suggests that relict basement topography derived from the opening of the eastern Gulf of Mexico during Late Triassic-Early Jurassic time is the primary influence on Upper Jurassic sediment distribution. Framework grain compositions indicate that the sandstone lithofacies was derived from a recycled orogenic provenance, indicating a primarily Laurentian terrane source with some mixing from the Gondwanan Suwannee terrane. Detrital zircon age distributions from Haynesville Formation sandstones contain major age populations that correspond with derivation from both the Laurentian Grenville Province and Appalachian Mountain source rocks, with some mixing from the Gondwanan Suwanee terrane. Haynesville Formation detrital zircon ages and sandstone compositions are similar to that of the underlying Norphlet Formation, indicating that the provenance and sediment transport pathways remained similar through deposition of the Upper Jurassic units.