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  • Other Sources  (7)
  • Am. Geophys. Union  (5)
  • Elsevier  (2)
  • 2010-2014
  • 1990-1994  (7)
  • 1970-1974
  • 1991  (7)
  • 1
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    Am. Geophys. Union
    In:  Bull., Polar Proj. OP-O3A4, Explosion Source Phenomenology, Washington, D. C., Am. Geophys. Union, vol. 65, no. Subvol. b, pp. 229-238, (ISBN 0080419208)
    Publication Date: 1991
    Keywords: Nearfield ; Inelastic ; Elasticity ; Seismology ; Nuclear explosion
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  • 2
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    Am. Geophys. Union
    In:  Professional Paper, Explosion Source Phenomenology, Washington, D. C., Am. Geophys. Union, vol. 65, no. 16, pp. 1-24, (ISBN 1-4020-1729-4)
    Publication Date: 1991
    Keywords: Scaling ; SModelling ; Source ; Seismology ; Nuclear explosion
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  • 3
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    Am. Geophys. Union
    In:  Bull., Polar Proj. OP-O3A4, Explosion Source Phenomenology, Washington, D. C., Am. Geophys. Union, vol. 65, no. XVI:, pp. 253-260, (ISBN: 3-540-23712-7)
    Publication Date: 1991
    Keywords: Rock mechanics ; Seismology ; Nuclear explosion
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  • 4
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    Am. Geophys. Union
    In:  Bull., Polar Proj. OP-O3A4, Explosion Source Phenomenology, Washington, D. C., Am. Geophys. Union, vol. 65, no. 4, pp. 261-268, (ISBN 0080419208)
    Publication Date: 1991
    Keywords: Anisotropy ; Seismology ; Nuclear explosion ; Toksoez ; Toksoz
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  • 5
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    Am. Geophys. Union
    In:  Bull., Open-File Rept., Explosion Source Phenomenology, Washington, D. C., Am. Geophys. Union, vol. 65, no. 16, pp. 239-252, (ISBN 1-86239-165-3, vi + 330 pp.)
    Publication Date: 1991
    Keywords: Non-linear effects ; Seismology ; Nuclear explosion ; Rayleigh waves ; Teleseismic events ; Two-dimensional ; Body waves
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  • 6
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    Elsevier
    In:  Marine Geology, 102 (1-4). pp. 311-361.
    Publication Date: 2018-01-31
    Description: Regional terrane analysis has been combined with a global evaluation of plate kinematics to produce a new tectonic model for the Mesozoic evolution of western North America and its associated marginal seas. The model employs a two-tiered data reliability ranking system to resolve conflicts within data sets. The lower tier of the ranking system involves the assignment of a numerical rank to paleomagnetic and/or paleobiogeographic data based on each data set's reliability. The upper tier of the ranking system places the paleomagnetic and paleobiogeographic data in perspective by assigning a relative order of importance to different types of data. The most reliable data are considered to be “departure” (rift) and “arrival” (collision) times that are tightly constrained by independent data sets. Evidence of subduction and/or strike-slip motion also ranks high in the master ranking system. Paleomagnetic and vertebrate paleobiogeographic data come next in the hierarchy, followed by invertebrate and floral paleobiogeographic data. Application of this approach to a case study, the “Baja British Columbia” controversy, has resulted in a coherent model for the entire region.
    Type: Article , PeerReviewed
    Format: text
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  • 7
    Publication Date: 2019-05-08
    Description: Crustal xenoliths in three Cenozoic volcanic fields of West Germany, the Northern Hessian Depression (NHD), the Eifel and the Urach/Hegau, include medium to high-grade meta sedimentary and felsic to mafic meta-igneous rocks. Also present in all three suites are pyroxenites and hornblendites. For each volcanic field, a model crustal profile is proposed based on calculated or measured P-wave velocities of xenoliths and depth-Vp relationships (EGT Central Segment and Rhenish Massif traverses). The xenolith lithologies from the NHD and the Eifel show some similarities. The middle crust between the depths of about 10 and 25 km consists mainly of meta-sediments, felsic gneisses and granulites. Meta-sedimentary rock types are particularly abundant in the Eifel at depths of between about 5 and 15 km but are less common within the NHD xenolith collection. The felsic gneisses range from meta-granites to meta-tonalites (I-and S-type). Eifel meta-sediments range from meta-pelites to meta-greywackes and meta-quartzites. The NHD xenolith suite contains a few highly depleted granulite-facies meta-sedimentary fragments. At depths between 24 and 26 km, the increase in Vp from about 6.8 to 〉 8 km s−1 (28–34 km) is correlated with the presence of mafic granulites intercalated with eclogites, pyroxenites and hornblendites. Beneath North Hessia, the granulite layer problably grades into a composite eclogite-peridotite layer at the lower part of this transition zone. The crust beneath the Urach/Hegau consists largely of meta-sediments with subordinate felsic meta-igneous rocks. Most of the meta-sedimentary samples seem to be depleted in felsic components, suggesting intra-crustal differentiation by partial melting. The Urach crust contains lithologies which are similar to the outcropping Moldanubian-type para-gneisses of the Black Forest. Mafic and ultramafic xenoliths from the Urach/Hegau differ in their mineralogy and chemical composition from the Eifel and NHD mafic granulites. They represent meta-cumulates derived from alkaline magmas which intruded the base of the crust and underwent deformation and recrystallization. Petrographic and chemical differences between Urach/Hegau and Eifel/NHD are believed to reflect the contrasting styles of crustal evolution in the Rhenohercynian and the Moldanubian belts of the Variscan orogen.
    Type: Article , PeerReviewed
    Format: text
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