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  • 1
    ISSN: 1573-0581
    Schlagwort(e): plate tectonics ; seafloor spreading ; rift propagation ; rift failure ; lithospheric transfer ; magmatic differentiation
    Quelle: Springer Online Journal Archives 1860-2000
    Thema: Geologie und Paläontologie , Physik
    Notizen: Abstract ALVIN investigations have defined the fine-scale structural and volcanic patterns produced by active rift and spreading center propagation and failure near 95.5° W on the Galapagos spreading center. Behind the initial lithospheric rifting, which is propagating nearly due west at about 50 km m.y.−1, a triangular block of preexisting lithosphere is being stretched and fractured, with some recent volcanism along curving fissures. A well-organized seafloor spreading center, an extensively faulted and fissured volcanic ridge, develops ~ 10 km (~ 200,000 years) behind the tectonic rift tip. Regional variations in the chemical compositions of the youngest lavas collected during this program contrast with those encompassing the entire 3 m.y. of propagation history for this region. A maximum in degree of magmatic differentiation occurs about 9 km behind the propagating rift tip, in a region of diffuse rifting. The propagating spreading center shows a gentle gradient in magmatic differentiation culminating at the SW-curving spreading center tip. Except for the doomed rift, which is in a constructional phase, tectonic activity also dominates over volcanic activity along the failing spreading system. In contrast to the propagating rift, failing rift lavas show a highly restricted range of compositions consistent with derivation from a declining upwelling zone accompanying rift failure. The lithosphere transferred from the Cocos to the Nazca plate by this propagator is extensively faulted and characterized by ubiquitous talus in one of the most tectonically disrupted areas of seafloor known. The pseudofault scarps, where the preexisting lithosphere was rifted apart, appear to include both normal and propagator lavas and are thus more lithologically complex than previously thought. Biological communities, probably vestimentiferan tubeworms, occur near the top of the outer pseudofault scarp, although no hydrothermal venting was observed.
    Materialart: Digitale Medien
    Standort Signatur Erwartet Verfügbarkeit
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  • 2
    Digitale Medien
    Digitale Medien
    Springer
    Contributions to mineralogy and petrology 67 (1978), S. 267-278 
    ISSN: 1432-0967
    Quelle: Springer Online Journal Archives 1860-2000
    Thema: Geologie und Paläontologie
    Notizen: Abstract The Longwoods Complex of Southland, New Zealand is part of an extensive terrane consisting of intrusives, volcanics, and sediments, which outcrops in the southern and north-western portions of the South Island. This terrane represents a volcanic arc which was active from Permian to Jurassic times (Grindley, 1958; Challis, 1968, 1969; Coombs et al., 1976). Between Pahia Point and Oraka Point on the southern coast of the South Island a section across the Longwoods Complex is well exposed and intrusives ranging in composition from ultrabasic cumulate rock, high-Al gabbro and gabbroic diorite to quartz diorite and granite outcrop. Two models have been considered for the origin of the rocks of the Pahia Point-Oraka Point section: (a) the rocks constitute one suite, the members of which are related by a crystal fractionation process; (b) the rocks constitute two suites which are not directly related. The ultrabasic rocks, and quartz diorites are complementary and are derived from a high-Al gabbro parent by crystal fractionation involving pyroxene, olivine, plagioclase and hornblende, but considerations of viscosity and the geochemistry of the granite preclude derivation of the high-Si rocks by continuation of the crystal fractionation model. Furthermore, the quartz-diorites are of two types: xenolith bearing foliated quartz-diorites and xenolith deficient unfoliated types. The latter rock type appears to group with the gabbros on variation diagrams and partitioning of Ti between mica and amphibole supports the view that two distinct suites of rocks are involved: (a) a suite derived by fractional crystallization from a high-Al gabbro parent and consisting of cumulate ultramafic rocks, high-Al gabbro, gabbroic diorite and quartz-diorite; (b) a suite of foliated quartz diorites, formed by partial melting of lower crustal igneous rocks. The xenoliths in the foliated quartz-diorites represent modified residue left after partial melting. Melt and residue have unmixed to varying degrees during diapiric rise and a range of compositions has resulted. The association of the two suites is tectonic. Gabbroic melts are generated in the lithosphere during plate subduction beneath a continental margin and rise of these melts into the lower continental crust results in partial melting and generation of quartz-diorite magmas.
    Materialart: Digitale Medien
    Standort Signatur Erwartet Verfügbarkeit
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  • 3
    facet.materialart.
    Unbekannt
    AGU
    In:  Washington D. C., AGU, vol. 8, no. Publ. No. 12, pp. 9, (3-540-24165-5, XXVI + 228 p.)
    Publikationsdatum: 1989
    Schlagwort(e): Earth model, also for more shallow analyses ! ; Plate tectonics
    Standort Signatur Erwartet Verfügbarkeit
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  • 4
    Publikationsdatum: 2016-07-01
    Beschreibung: Petrological study of eruptive units in two locations along the Galápagos Spreading Center provides insight into how the rate of magma supply affects mid-ocean ridge magmatic systems. Study areas with lower magma supply (95°W) and higher magma supply (92°W) have similar spreading rates (53 and 55 mm a –1 ), but differ by 30% in the time-averaged rate of magma supply (0·3 x 10 6 and 0·4 x 10 6 m 3 km –1 a –1 ) as a result of varying proximity to the Galápagos hotspot. We use major and trace element compositions of glass and whole-rock samples, chemistry of mineral phases, and petrography to characterize parental magma variability, fractional crystallization and magma mixing in crustal reservoirs, and timescales of magmatic recharge relative to eruption. At the low magma supply study area, eruptible magma appears to be present only intermittently within the crust; magma recharge is probably infrequent, occurring with a periodicity of several hundred to one thousand years. The shallowest magma body in the crust is thought to be at ~3 km below the seafloor, and lavas are restricted to a relatively limited compositional range (6·2–9·1 wt % MgO). Magmatic evolution at this location is probably dominated by processes occurring within a crystal-rich mush, with limited subsequent residence in melt-dominated magma reservoirs. Eruptions here appear to be closely coupled to magmatic recharge events; lower MgO lavas have compositional trends controlled by mixing of low- and high-MgO magmas from compositionally distinct parents, and commonly contain both normally and reversely zoned crystals. In contrast, at the high magma supply study area, where a seismically imaged melt lens is located ~1·7 km below the seafloor, fractional crystallization within a melt-rich magma reservoir results in a larger range in major element compositions of the erupted magmas (2·7–8·2 wt % MgO) with less variation in trace element concentrations or ratios. Temperatures within the melt lens over the last several hundred years have varied by at least 100°C (1070–1170°C); cooling rates within the melt lens are estimated to be greater than 0·5°C per year. Relatively low-MgO lavas have over-enrichments in Cl that are best explained by assimilation of brine associated with hydrothermal circulation within the overlying crust. Between magmatic recharge events, resident magma fractionates and feeds one or more low-volume fissure eruptions. Small bodies of magma may become isolated from the larger magmatic system in the crust, allowing more extreme degrees of fractionation, locally reaching basaltic andesite. This study demonstrates that persistent melt lenses at intermediate rates of magma supply need not be ‘steady state’. The variations in magma composition among eruptive episodes at each location allow us to assess the temporal variability in magma reservoir properties at ridge segments along the Galápagos Spreading Center, in the context of regional variations in magma supply.
    Print ISSN: 0022-3530
    Digitale ISSN: 1460-2415
    Thema: Geologie und Paläontologie
    Publiziert von Oxford University Press
    Standort Signatur Erwartet Verfügbarkeit
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  • 5
    Publikationsdatum: 2014-08-29
    Beschreibung: Ka‘ena and Wai‘alu Ridges form prominent submarine ridges NW of the island of O‘ahu, Hawai‘i. We evaluate whether or not either one of these ridges represents a submarine extension of Wai‘anae Volcano on O‘ahu using new bottom observations, geophysical surveys, and geochemical data acquired on new samples from the region. Wai‘alu Ridge has the morphology of a submarine rift zone but is too shallow for its distance from the O‘ahu shoreline; Ka‘ena Ridge also is unusually shallow and is surmounted by two topographic shields. Ka‘ena and Wai‘alu Ridges have similar magmatic and volcanic evolutionary histories, beginning ca. 5 Ma with a submarine, shield phase of volcanism that produced high-SiO 2 , low-FeO* tholeiites with higher 208 Pb/ 204 Pb than in the adjacent Wai‘anae Volcano. Late-shield volcanism included transitional and alkalic rock types, with lower SiO 2 and enrichment in incompatible elements, especially P 2 O 5 , Nb, Zr, Ti, and light rare earth elements. The transition from shield to late-shield stage occurred as the edifice was beginning to emerge from the sea. Geological observations and K/Ar ages indicate that Ka‘ena emerged above sea level ca. 3.5 Ma, reaching a maximum height of ~4000 m above the abyssal ocean floor and 1000 m above sea level. Relatively weak gravity anomalies, topographic lineaments, and the orientation of dike complexes indicate a volcanic structure that is independent of Wai‘anae Volcano. Thus, volcanic structure, geochemistry, and age all indicate a precursor volcano to the island of O‘ahu, which we call Ka‘ena Volcano. After emergence, Ka‘ena Volcano tilted ~2° to the south. We estimate a total volume of 20–27 x 10 3 km 3 for Ka‘ena Volcano, taking into account overlapping geometry of concurrently active volcanoes. Sample compositions from the Ka‘ena landslide deposit are entirely consistent with derivation from Ka‘ena, whereas most samples from the Wai‘anae slump are likely derived from Wai‘anae Volcano. Uniformly oriented dikes in the Wai‘anae NW rift zone likely reflect buttressing by a preexisting Ka‘ena Volcano. Unusual isotopic compositions of some Wai‘anae samples, including unique hydrous silicic lavas, probably reflect interaction with underlying Ka‘ena crust. A newly recognized lava flow field on the southern flank of Ka‘ena Ridge extends the previously known distribution of secondary volcanism in the Kaua‘i Channel. Putative submarine volcanic activity in the region in 1956 cannot have built a large edifice and is unlikely to have produced pumice that was found on O‘ahu shores. This eruptive activity therefore remains unconfirmed.
    Print ISSN: 0016-7606
    Digitale ISSN: 1943-2674
    Thema: Geologie und Paläontologie
    Standort Signatur Erwartet Verfügbarkeit
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  • 6
    Publikationsdatum: 1992-09-01
    Print ISSN: 0025-3235
    Digitale ISSN: 1573-0581
    Thema: Geologie und Paläontologie , Physik
    Publiziert von Springer
    Standort Signatur Erwartet Verfügbarkeit
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  • 7
    Publikationsdatum: 1976-05-01
    Print ISSN: 0002-9599
    Digitale ISSN: 1945-452X
    Thema: Geologie und Paläontologie
    Standort Signatur Erwartet Verfügbarkeit
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  • 8
    Publikationsdatum: 2003-01-01
    Print ISSN: 0022-3530
    Digitale ISSN: 1460-2415
    Thema: Geologie und Paläontologie
    Publiziert von Oxford University Press
    Standort Signatur Erwartet Verfügbarkeit
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  • 9
    Publikationsdatum: 2012-02-26
    Beschreibung: Seismic tomographic images indicate that subducted lithosphere is transported into the deep mantle 1. Petrologic modelling shows that water contained in subducted slabs can be carried to depths of at least 200 km (ref.); however, whether the hydrated slab signature is preserved at greater depths depends on diffusion rates. Experimental studies give conflicting results on the question of hydrogen preservation. On a small scale, hydrogen equilibration with ambient mantle should be rapid 3,4, implying that the slab hydrogen signature may not be preserved in the deep mantle 5. However, on large scales the time required for diffusive equilibration is longer and hydrogen anomalies may persist 6,7. Here we present hydrogen and boron data from submarine volcanic glasses erupted in the Manus back-arc basin, southwestern Pacific Ocean. We find that samples with low hydrogen-isotope values also exhibit the geochemical signature of dehydrated, subducted lithosphere. Combined with additional geochemical and geophysical data, we interpret this as direct evidence for the preservation of hydrogen anomalies in an ancient slab in the mantle. Our geochemical data are consistent with experimental estimates of diffusion for the upper mantle 6 and transition zone 7. We conclude that hydrogen anomalies can persist in the mantle without suffering complete diffusive equilibration over timescales of up to a billion years. © 2012 Macmillan Publishers Limited. All rights reserved.
    Print ISSN: 1752-0894
    Digitale ISSN: 1752-0908
    Thema: Geologie und Paläontologie
    Publiziert von Springer Nature
    Standort Signatur Erwartet Verfügbarkeit
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  • 10
    Publikationsdatum: 1978-10-01
    Print ISSN: 0010-7999
    Digitale ISSN: 1432-0967
    Thema: Geologie und Paläontologie
    Publiziert von Springer
    Standort Signatur Erwartet Verfügbarkeit
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