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    Supplemental Data Files for article "Tracking the growth of the Himalayan fold-and-thrust belt from lower Miocene foreland basin strata: Dumri Formation, western Nepal"

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    Author
    Stickroth, Simon
    Carrapa, Barbara
    DeCelles, Peter
    Gehrels, George
    Thomson, Stuart N.
    Affiliation
    University of Arizona Department of Geosciences
    Issue Date
    2019-08-16
    
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    Journal
    AGU - Tectonics
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    New data from the lower Miocene Dumri Formation of western Nepal document exhumation of the Himalayan fold-thrust belt and provenance of the Neogene foreland basin system. We employ U-Pb zircon, Th-Pb monazite, 40Ar/39Ar white mica, and zircon fission-track (ZFT) chronometers to detrital minerals to constrain provenance, timing, and rate of exhumation of Himalayan source regions. Clusters of Proterozoic-early Paleozoic (900-400 Ma) Th-Pb monazite and 40Ar/39Ar white mica detrital ages provide evidence for erosion of a Greater Himalayan sequence protolith unaffected by high-grade Eohimalayan metamorphism. A small population of ~40 Ma cooling ages in detrital white mica grains shows exhumation of low-grade metamorphic Tethyan Himalayan sequence through the ~350°C closure temperature along the Tethyan Frontal thrust (proto-South Tibetan detachment) during the late Eocene. Dumri Formation detritus shows a ~12 Myr time difference between cooling of its source rocks through the ~350°C and ~240°C closure temperatures as recorded by ~40-38 Ma youngest peak cooling ages in 40Ar/39Ar detrital white mica and ~28-24 Ma youngest populations in detrital ZFT. Exhumation between ca. 40 Ma and 28 Ma is consistent with slip and exhumation along the Main Central thrust. Combined with similar data from northwestern India, our study suggests west-to-east spatially variable exhumation rates along strike of the Main Central thrust. Our data also show an increase in exhumation during middle Miocene-Pliocene time, which is consistent with growth of the Lesser Himalaya duplex.
    Description
    Full Analytical Methods and Data Tables
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    Original manuscript
    Sponsors
    This work was funded by a grant from the U.S. National Science Foundation (Tectonics-EAR-1140068), Conoco Fellowship scholarship (2016), ChevronTexaco Geology Fellowship 2016), University of Arizona Galileo Circle Scholarship (2017). We thank T.P. Ojha, B.N. Upreti, and members of Himalayan Experience staff for logistical support.
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