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  <controlfield tag="008">260224s2012    xxu                      </controlfield>
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    <subfield code="a">Testing the basin-centered gas accumulation model using fluid inclusion observations: Southern Piceance Basin, Colorado</subfield>
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    <subfield code="c">dic. 2012</subfield>
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    <subfield code="a">21/01/2013 ; 21/01/2013</subfield>
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    <subfield code="a">21 p. ; 2297-2318</subfield>
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    <subfield code="a">Transcripci&#xF3;n del resumen del autor: The Upper Cretaceous Mesaverde Group in the Piceance Basin, Colorado, is considered a continuous basin-centered gas accumulation in which gas charge of the low-permeability sandstone occurs under high pore-fluid pressure in response to gas generation. High gas pressure favors formation of pervasive systems of opening-mode fractures. This view contrasts with that of other models of low-permeability gas reservoirs in which gas migrates by buoyant drive and accumulates in conventional traps, with fractures an incidental attribute of these reservoirs. We tested the aspects of the basin-centered gas accumulation model as it applies to the Piceance Basin by determining the timing of fracture growth and associated temperature, pressure, and fluid-composition conditions using microthermometry and Raman microspectrometry of fluid inclusions trapped in fracture cement that formed during fracture growth. Trapping temperatures of methane-saturated aqueous fluid inclusions record systematic temperature trends that increase from approximately 140 to 185&#xB0;C and then decrease to approximately 158&#xB0;C over time, which indicates fracture growth during maximum burial conditions. Calculated pore-fluid pressures for methane-rich aqueous inclusions of 55 to 110 MPa (7977&amp;#x96;15,954 psi) indicate fracture growth under near-lithostatic pressure conditions consistent with fracture growth during active gas maturation and charge. Lack of systematic pore-fluid&amp;#x96;pressure trends over time suggests dynamic pressure conditions requiring an active process of pressure generation during maximum burial conditions. Such a process is consistent with gas generation within the Mesaverde Group or by gas charge from deeper source rocks along fracture and fault systems but is inconsistent with significant high-pressure generation by compaction disequilibrium during earlier stages of burial. On the basis of a comparison of trapping temperatures with burial and thermal maturity models, we infer that active gas charge and natural fracture growth lasted for 35 m.y. and ended at approximately 6 Ma. Our results demonstrate that protracted growth of a pervasive fracture system is the consequence of gas maturation and reservoir charge and is intrinsic to basin-centered gas reservoirs.</subfield>
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    <subfield code="a">12</subfield>
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    <subfield code="t">AAPG Bulletin</subfield>
    <subfield code="g">96</subfield>
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    <subfield code="c">ARTICULO</subfield>
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    <subfield code="a">Fall, Andr&#xE1;s</subfield>
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    <subfield code="a">Eichhubl, Peter</subfield>
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    <subfield code="a">Cumella, Stephen P.</subfield>
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    <subfield code="a">Bodnar, Robert J.</subfield>
    <subfield code="9">52919</subfield>
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    <subfield code="a">Laubach, Stephen E.</subfield>
    <subfield code="9">42957</subfield>
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    <subfield code="a">Becker, Stephen</subfield>
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    <subfield code="c">187534</subfield>
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    <subfield code="7">0</subfield>
    <subfield code="9">255353</subfield>
    <subfield code="a">BAAB</subfield>
    <subfield code="b">BAAB</subfield>
    <subfield code="d">2026-03-06</subfield>
    <subfield code="j">200059657</subfield>
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    <subfield code="p">200059657</subfield>
    <subfield code="r">2026-03-06 00:17:27</subfield>
    <subfield code="w">2026-03-06</subfield>
    <subfield code="y">ARTICULO</subfield>
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