Item talk:Q259902

From geokb

{

 "USGS Publications Warehouse": {
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   "additionalType": "USGS Numbered Series",
   "name": "Magnetotelluric investigation of northern Harrat Rahat, Kingdom of Saudi Arabia",
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       "value": "pp1862L",
       "url": "https://pubs.usgs.gov/publication/pp1862L"
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       "value": 70206270
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       "value": "10.3133/pp1862L",
       "url": "https://doi.org/10.3133/pp1862L"
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   "datePublished": "2023",
   "dateModified": "2024-01-02",
   "abstract": "Volcanism within the harrats (Arabic for \u201cvolcanic field\u201d) of the Kingdom of Saudi Arabia includes at least one historical eruption occurring close to the holy city of Al Mad\u012bnah in 1256 C.E. As part of a volcanic- and seismic-hazard assessment of northern Harrat Rahat, magnetotelluric (MT) data were collected to investigate the structural setting of the area, the presence or absence of melt within the crust, and the mantle-derived magmatic source. Collected MT data were modeled in both two dimensions, where anisotropy can be estimated, and three dimensions. Interpretation of the preferred resistivity model includes a shallow sediment-filled graben beneath northern Harrat Rahat lavas, a melt-free upper crust, and a region of decompression melting in the asthenosphere below 60\u201370 kilometers depth. Models in two dimensions image the lower crust as anisotropic, demonstrating that a series of elongate conductivity anomalies with a strike of N. 10\u00b0 E. within the lower crust of the three-dimensional model are artifacts of inverting anisotropic data with an isotropic modeling algorithm. Careful examination of the resistivity models, in combination with regional geological and geophysical data, suggests an anisotropic lower crust that is free of large zones of melt. Azimuthal anisotropy in the lower crust extends well beyond the limits of Harrat Rahat volcanic rocks, with a conductive direction oriented N. 10\u00b0 E. and an anisotropy factor of 2\u20135 between the most and least conductive directions. Enhanced conductivity is likely caused by interconnected grain-boundary graphite, where the direction of anisotropy reflects either frozen-in fabric from the Neoproterozoic stabilization of the Arabian Shield or ductile deformation driven by channelized asthenospheric flow coupled with a thin rigid mantle lid. Asthenospheric melt is interpreted to transect the crust largely through diking, with limited melt storage and short residence times within the crustal column.",
   "description": "Report: vi, 111 p.; Data Release",
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     "name": "U.S. Geological Survey"
   },
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       "name": "Peacock, Jared R.",
       "givenName": "Jared R.",
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         "value": "0000-0002-0439-0224",
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           "name": "Geology, Minerals, Energy, and Geophysics Science Center",
           "url": "https://www.usgs.gov/centers/gmeg"
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     },
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       "@type": "Person",
       "name": "Bedrosian, Paul A. pbedrosian@usgs.gov",
       "givenName": "Paul A.",
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           "name": "Crustal Geophysics and Geochemistry Science Center",
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       "@type": "Person",
       "name": "Taylor, Cliff D. ctaylor@usgs.gov",
       "givenName": "Cliff D.",
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           "name": "Saudi Geological Survey"
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       "@type": "Person",
       "name": "Al-Dhahry, Maher K.",
       "givenName": "Maher K.",
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       "@type": "Person",
       "name": "Feucht, Daniel W. dfeucht@usgs.gov",
       "givenName": "Daniel W.",
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