Porosity, permeability, and fluid flow in the Yellowstone geothermal system, Wyoming

被引:87
作者
Dobson, PF [1 ]
Kneafsey, TJ
Hulen, J
Simmons, A
机构
[1] Lawrence Berkeley Natl Lab, Div Earth Sci, Berkeley, CA 94720 USA
[2] Univ Utah, EGI, Salt Lake City, UT 84108 USA
关键词
Yellowstone; hydrothermal alteration; self-sealing; permeability; porosity;
D O I
10.1016/S0377-0273(03)00039-8
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Cores from two of 13 U.S. Geological Survey research holes at Yellowstone National Park (Y-5 and Y-8) were evaluated to characterize lithology, texture, alteration, and the degree and nature of fracturing and veining. Porosity and matrix permeability measurements and petrographic examination of the cores were used to evaluate the effects of lithology and hydrothermal alteration on porosity and permeability. The intervals studied in these two core holes span the conductive zone and the upper portion of the convective geothermal reservoir. Variations in porosity and matrix permeability observed in the Y-5 and Y-8 cores are primarily controlled by lithology. Y-8 intersects three distinct lithologies: volcaniclastic sandstone, perlitic rhyolitic lava, and non-welded pumiceous ash-flow tuff. The sandstone typically has high permeability and porosity, and the tuff has very high porosity and moderate permeability, while the perlitic lava has very low porosity and is essentially impermeable. Hydrothermal self-sealing appears to have generated localized permeability barriers within the reservoir. Changes in pressure and temperature in Y-8 correspond to a zone of silicification in the volcaniclastic sandstone just above the contact with the perlitic rhyolite; this silicification has significantly reduced porosity and permeability. In rocks with inherently low matrix permeability (such as densely welded ash-flow tuff), fluid flow is controlled by the fracture network. The Y-5 core hole penetrates a thick intracaldera section of the 0.6-Ma Lava Creek ash-flow tuff. In this core, the degree of welding appears to be responsible for most of the variations in porosity, matrix permeability, and the frequency of fractures and veins. Fractures are most abundant within the more densely welded sections of the tuff. However, the most prominent zones of fracturing and mineralization are associated with hydrothermal breccias within densely welded portions of the tuff. These breccia zones represent transient conduits of high fluid flow that formed by the explosive release of overpressure in the underlying geothermal reservoir and that were subsequently sealed by supersaturated geothermal fluids. In addition to this fracture sealing, hydrothermal alteration at Yellowstone appears generally to reduce matrix permeability and focus flow along fractures, where multiple pulses of fluid flow and self-sealing have occurred. (C) 2003 Elsevier Science B.V. All rights reserved.
引用
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页码:313 / 324
页数:12
相关论文
共 20 条
[1]  
BARGAR KE, 1988, GEOLOGY, V16, P1077, DOI 10.1130/0091-7613(1988)016<1077:EOGIOS>2.3.CO
[2]  
2
[3]  
BIRD DK, 1976, P 2 UN S DEV US GEOT, V1, P285
[4]  
Bodvarsson GS, 1989, GEOTHERM SCI TECHNOL, V2, P1
[5]   HYDROTHERMAL ALTERATION IN ACTIVE GEOTHERMAL FIELDS [J].
BROWNE, PRL .
ANNUAL REVIEW OF EARTH AND PLANETARY SCIENCES, 1978, 6 :229-250
[6]   Characteristics of hydrothermal eruptions, with examples from New Zealand and elsewhere [J].
Browne, PRL ;
Lawless, JV .
EARTH-SCIENCE REVIEWS, 2001, 52 (04) :299-331
[7]  
Christiansen R.L., 2001, 729G US GEOL SURV
[8]   OXYGEN ISOTOPE-EXCHANGE BETWEEN QUARTZ AND WATER [J].
CLAYTON, RN ;
MAYEDA, TK ;
ONEIL, JR .
JOURNAL OF GEOPHYSICAL RESEARCH, 1972, 77 (17) :3057-+
[9]  
FOURNIER RO, 1993, GEOTH RES T, V17, P33
[10]  
FOURNIER RO, 1989, ANNU REV EARTH PL SC, V17, P13, DOI 10.1146/annurev.ea.17.050189.000305