Zircon geochronology and geochemistry to constrain the youngest eruption events and magma evolution of the Mid-Miocene ignimbrite flare-up in the Pannonian Basin, eastern central Europe

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作者
Réka Lukács
Szabolcs Harangi
Olivier Bachmann
Marcel Guillong
Martin Danišík
Yannick Buret
Albrecht von Quadt
István Dunkl
László Fodor
Jakub Sliwinski
Ildikó Soós
János Szepesi
机构
[1] MTA-ELTE Volcanology Research Group,Department of Mineralogy, Geochemistry and Petrology
[2] University of Szeged,Department of Petrology and Geochemistry
[3] Eötvös Loránd University,Institute of Geochemistry and Petrology, Department of Earth Sciences
[4] ETH Zürich,TIGeR/John de Laeter Centre for Isotope Research, Applied Geology
[5] Curtin University of Technology,Sedimentology and Environmental Geology, Geoscience Center
[6] University of Göttingen,MTA
[7] Eötvös University,ELTE Geological, Geophysical and Space Science Research Group of the Hungarian Academy of Sciences
来源
Contributions to Mineralogy and Petrology | 2015年 / 170卷
关键词
Zircon geochronology; Zircon trace element composition; Ignimbrite flare-up; Silicic magma reservoir; Pannonian Basin; Zircon crystallization age; Eruption age; Magma storage; LA-ICP-MS; (U–Th)/He; Bükkalja Volcanic Field;
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摘要
A silicic ignimbrite flare-up episode occurred in the Pannonian Basin during the Miocene, coeval with the syn-extensional period in the region. It produced important correlation horizons in the regional stratigraphy; however, they lacked precise and accurate geochronology. Here, we used U–Pb (LA-ICP-MS and ID-TIMS) and (U–Th)/He dating of zircons to determine the eruption ages of the youngest stage of this volcanic activity and constrain the longevity of the magma storage in crustal reservoirs. Reliability of the U–Pb data is supported by (U–Th)/He zircon dating and magnetostratigraphic constraints. We distinguish four eruptive phases from 15.9 ± 0.3 to 14.1 ± 0.3 Ma, each of which possibly includes multiple eruptive events. Among these, at least two large volume eruptions (>10 km3) occurred at 14.8 ± 0.3 Ma (Demjén ignimbrite) and 14.1 ± 0.3 Ma (Harsány ignimbrite). The in situ U–Pb zircon dating shows wide age ranges (up to 700 kyr) in most of the crystal-poor pyroclastic units, containing few to no xenocrysts, which implies efficient recycling of antecrysts. We propose that long-lived silicic magma reservoirs, mostly kept as high-crystallinity mushes, have existed in the Pannonian Basin during the 16–14 Ma period. Small but significant differences in zircon, bulk rock and glass shard composition among units suggest the presence of spatially separated reservoirs, sometimes existing contemporaneously. Our results also better constrain the time frame of the main tectonic events that occurred in the Northern Pannonian Basin: We refined the upper temporal boundary (15 Ma) of the youngest counterclockwise block rotation and the beginning of a new deformation phase, which structurally characterized the onset of the youngest volcanic and sedimentary phase.
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  • [11] Duncan RA(2014)Short eruption window revealed by absolute crystal growth rates in a granitic magma Nat Geosci 7 524-1684
  • [12] Atici G(2014)Extraction, storage and eruption of multiple isolated magma batches in the paired Mamaku and Ohakuri eruption, Taupo Volcanic Zone, New Zealand J Petrol 55 1653-140
  • [13] Bachmann O(2004)Improved Chem Geol 205 115-1038
  • [14] Bergantz GW(1999)Pb/ Geology 27 1035-426
  • [15] Bachmann O(2014)U microprobe geochronology by the monitoring of a trace-element-related matrix effect; SHRIMP, ID–TIMS, ELA–ICP–MS and oxygen isotope documentation for a series of zircon standards J Petrol 55 395-1141
  • [16] Bergantz GW(2010)SHRIMP U–Pb dating of the preeruption growth history of zircons from the 340 ka Whakamaru Ignimbrite, New Zealand: evidence for > 250 k.y. magma residence times J Petrol 51 1121-32
  • [17] Bachmann O(2005)New perspectives on the bishop tuff from zircon textures, ages and trace elements J Petrol 46 3-543
  • [18] Bergantz G(2006)Chronology and evolution of caldera-forming and post-caldera magma systems at Okataina Volcano, New Zealand from Zircon U–Th Model-age Spectra Miner Mag 70 517-1014
  • [19] Bachmann O(2010)Magma generation at a large, hyperactive silicic volcano (Taupo, New Zealand) Revealed by U–Th and U–Pb systematics in zircons Geology 38 1011-B534
  • [20] Dungan MA(1984)Tracking magmatic processes through Zr/Hf ratios in rocks and Hf and Ti zoning in zircons: an example from the Spirit Mountain batholith, Nevada J Geophys Res Solid Earth 89 B525-483