Item talk:Q67482
From geokb
{
"USGS Publications Warehouse": { "schema": { "@context": "https://schema.org", "@type": "CreativeWork", "additionalType": "USGS Numbered Series", "name": "The Virginia Coastal Plain Hydrogeologic Framework", "identifier": [ { "@type": "PropertyValue", "propertyID": "USGS Publications Warehouse IndexID", "value": "pp1731", "url": "https://pubs.usgs.gov/publication/pp1731" }, { "@type": "PropertyValue", "propertyID": "USGS Publications Warehouse Internal ID", "value": 79779 }, { "@type": "PropertyValue", "propertyID": "DOI", "value": "10.3133/pp1731", "url": "https://doi.org/10.3133/pp1731" }, { "@type": "PropertyValue", "propertyID": "ISBN", "value": "1411310659" } ], "inLanguage": "en", "isPartOf": [ { "@type": "CreativeWorkSeries", "name": "Professional Paper" } ], "datePublished": "2006", "dateModified": "2012-03-08", "abstract": "A refined descriptive hydrogeologic framework of the Coastal Plain of eastern Virginia provides a new perspective on the regional ground-water system by incorporating recent understanding gained by discovery of the Chesapeake Bay impact crater and determination of other geological relations. The seaward-thickening wedge of extensive, eastward-dipping strata of largely unconsolidated sediments is classified into a series of 19 hydrogeologic units, based on interpretations of geophysical logs and allied descriptions and analyses from a regional network of 403 boreholes. \r\n\r\nPotomac aquifer sediments of Early Cretaceous age form the primary ground-water supply resource. The Potomac aquifer is designated as a single aquifer because the fine-grained interbeds, which are spatially highly variable and inherently discontinuous, are not sufficiently dense across a continuous expanse to act as regional barriers to ground-water flow. Part of the Potomac aquifer in the outer part of the Chesapeake Bay impact crater consists of megablock beds, which are relatively undeformed internally but are bounded by widely separated faults. The Potomac aquifer is entirely truncated across the inner part of the crater. The Potomac confining zone approximates a transition from the Potomac aquifer to overlying hydrogeologic units.\r\n\r\nNew or revised designations of sediments of Late Cretaceous age that are present only south of the James River include the upper Cenomanian confining unit, the Virginia Beach aquifer and confining zone, and the Peedee aquifer and confining zone. The Virginia Beach aquifer is a locally important ground-water supply resource.\r\n\r\nSediments of late Paleocene to early Eocene age that compose the Aquia aquifer and overlying Nanjemoy-Marlboro confining unit are truncated along the margin of the Chesapeake Bay impact crater. Sediments of late Eocene age compose three newly designated confining units within the crater, which are from bottom to top, the impact-generated Exmore clast and Exmore matrix confining units, and the Chickahominy confining unit.\r\n\r\nPiney Point aquifer sediments of early Eocene to middle Miocene age overlie most of the Chesapeake Bay impact crater and beyond, but are a locally significant ground-water supply resource only outside of the crater across the middle reaches of the Northern Neck, Middle, and York-James Peninsulas. Sediments of middle Miocene to late Miocene age that compose the Calvert confining unit and overlying Saint Marys confining unit effectively separate the underlying Piney Point aquifer and deeper aquifers from overlying shallow aquifers. Saint Marys aquifer sediments of late Miocene age separate the Calvert and Saint Marys confining units across two limited areas only. \r\n\r\nSediments of the Yorktown-Eastover aquifer of late Miocene to late Pliocene age form the second most heavily used ground-water supply resource. The Yorktown confining zone approximates a transition to the overlying late Pliocene to Holocene sediments of the surficial aquifer, which extends across the entire land surface in the Virginia Coastal Plain and is a moderately used supply. The Yorktown-Eastover aquifer and the eastern part of the surficial aquifer are closely associated across complex and extensive hydraulic connections and jointly compose a shallow, generally semiconfined ground-water system that is hydraulically separated from the deeper system.\r\n\r\nVertical faults extend from the basement upward through most of the hydrogeologic units but may be more widespread and ubiquitous than recognized herein, because areas of sparse boreholes do not provide adequate spatial control. Hydraulic conductivity probably is decreased locally by disruption of depositional intergranular structure by fault movement in the generally incompetent sediments. Localized fluid flow in open fractures may be unique in the Chickahominy confining unit. Some hydrogeologic units are partly to wholly truncated where displacements are large rela", "description": "Report (x, 119 p.); 25 Plates", "publisher": { "@type": "Organization", "name": "U.S. Geological Survey" }, "author": [ { "@type": "Person", "name": "Scott, Bruce T. ", "givenName": "Bruce T. ", "familyName": "Scott" }, { "@type": "Person", "name": "McFarland, Randolph E.", "givenName": "Randolph E.", "familyName": "McFarland" } ], "funder": [ { "@type": "Organization", "name": "Virginia Water Science Center", "url": "https://www.usgs.gov/centers/virginia-and-west-virginia-water-science-center" } ] } }, "OpenAlex": { "abstract_inverted_index": { "A": [ 0 ], "refined": [ 1 ], "descriptive": [ 2 ], "hydrogeologic": [ 3, 58, 185, 507, 565 ], "framework": [ 4 ], "of": [ 5, 9, 28, 36, 43, 47, 56, 63, 75, 81, 129, 137, 144, 169, 191, 193, 202, 238, 260, 267, 304, 313, 331, 338, 347, 384, 402, 406, 437, 466, 505, 521, 538 ], "the": [ 6, 17, 29, 86, 101, 130, 134, 138, 166, 170, 180, 203, 207, 212, 220, 247, 258, 261, 278, 286, 296, 314, 332, 335, 339, 356, 368, 389, 403, 414, 430, 438, 444, 449, 463, 467, 493, 500, 506, 546, 560 ], "Coastal": [ 7, 451 ], "Plain": [ 8, 452 ], "eastern": [ 10, 464 ], "Virginia": [ 11, 213, 227, 450 ], "provides": [ 12 ], "a": [ 13, 54, 72, 97, 117, 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"title": "The Virginia Coastal Plain Hydrogeologic Framework", "topics": [ { "id": "https://openalex.org/T12773", "display_name": "Water Quality and Hydrogeology Research", "score": 0.9894, "subfield": { "id": "https://openalex.org/subfields/2312", "display_name": "Water Science and Technology" }, "field": { "id": "https://openalex.org/fields/23", "display_name": "Environmental Science" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T10017", "display_name": "Climate Change and Paleoclimatology", "score": 0.935, "subfield": { "id": "https://openalex.org/subfields/1902", "display_name": "Atmospheric Science" }, "field": { "id": "https://openalex.org/fields/19", "display_name": "Earth and Planetary Sciences" }, "domain": { "id": "https://openalex.org/domains/3", "display_name": "Physical Sciences" } }, { "id": "https://openalex.org/T13939", "display_name": "Resilience of Traditional Irrigation Communities in 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