Javascript must be enabled to continue!
Volcanic rocks of the 1985 Tibet Geotraverse: Lhasa to Golmud
View through CrossRef
Abstract
Volcanic rocks encountered during the Tibet Geotraverse have been studied in the field, in thin section and by major and trace element geochemistry in order to determine their most probable original eruptive environment. Rocks from a total of eleven distinct volcanic provinces were studied in this way. They provide evidence for: an active continental margin or post-collision province of probable Devonian/early Carboniferous age in the northern Kunlun mountains; an active continental margin of late Carboniferous age in the southern Lhasa Terrane; Permian continental rifts in the central Qiangtang and central Kunlun Terranes; Triassic volcanic arcs in the southern Lhasa and northern Qiangtang Terranes; a Triassic active continental margin dyke swarm in the northern Kunlun mountains; a Jurassic post-collision or back-arc rifting province in the southern Qiangtang Terrane; a Jurassic island arc in the northern Lhasa Terrane; a Cretaceous post-collision province in the northern Lhasa Terrane possibly extending in to the southern Qiangtang Terrane; and a Palaeogene active continental margin in the southern Lhasa Terrane. An Oligocene trachyte plug in the northern Qiangtang Terrane was the only evidence encountered during the Geotraverse of volcanism post-dating the Palaeogene India-Eurasia collision. However, the composition of this plug, coupled with new and published analyses from Miocene volcanics in the southern Lhasa terrane and from the Pliocene-Recent volcanic province of northwest Tibet, places important constraints on models for post-collision underplating of Tibet by continental lithosphere: any underplating is likely to have been (a) much later than the start of collision, (b) directed beneath Tibet from the north as well as the south, and (c) limited in extent.
Title: Volcanic rocks of the 1985 Tibet Geotraverse: Lhasa to Golmud
Description:
Abstract
Volcanic rocks encountered during the Tibet Geotraverse have been studied in the field, in thin section and by major and trace element geochemistry in order to determine their most probable original eruptive environment.
Rocks from a total of eleven distinct volcanic provinces were studied in this way.
They provide evidence for: an active continental margin or post-collision province of probable Devonian/early Carboniferous age in the northern Kunlun mountains; an active continental margin of late Carboniferous age in the southern Lhasa Terrane; Permian continental rifts in the central Qiangtang and central Kunlun Terranes; Triassic volcanic arcs in the southern Lhasa and northern Qiangtang Terranes; a Triassic active continental margin dyke swarm in the northern Kunlun mountains; a Jurassic post-collision or back-arc rifting province in the southern Qiangtang Terrane; a Jurassic island arc in the northern Lhasa Terrane; a Cretaceous post-collision province in the northern Lhasa Terrane possibly extending in to the southern Qiangtang Terrane; and a Palaeogene active continental margin in the southern Lhasa Terrane.
An Oligocene trachyte plug in the northern Qiangtang Terrane was the only evidence encountered during the Geotraverse of volcanism post-dating the Palaeogene India-Eurasia collision.
However, the composition of this plug, coupled with new and published analyses from Miocene volcanics in the southern Lhasa terrane and from the Pliocene-Recent volcanic province of northwest Tibet, places important constraints on models for post-collision underplating of Tibet by continental lithosphere: any underplating is likely to have been (a) much later than the start of collision, (b) directed beneath Tibet from the north as well as the south, and (c) limited in extent.
Related Results
Melt inclusion constraints on volcanic CO2 releases from the Tibetan Plateau
Melt inclusion constraints on volcanic CO2 releases from the Tibetan Plateau
Studying volcanic CO2 releases during geological periods is essential for unraveling the complex interactions between Earth's interior, atmosphere, oceans, and biosphere. Such stud...
Zircon U‐Pb Geochronology and Geochemical Characteristics of the Volcanic Host Rocks from the Tongyu VHMS Copper Deposit in the Western North Qinling Orogen and Their Geological Significance
Zircon U‐Pb Geochronology and Geochemical Characteristics of the Volcanic Host Rocks from the Tongyu VHMS Copper Deposit in the Western North Qinling Orogen and Their Geological Significance
AbstractPrecise in situ zircon U‐Pb dating and Lu–Hf isotopic measurement using an LA‐ICP‐MS system, whole‐rock major and trace element geochemistry and Sr–Nd isotope geochemistry ...
Compositional and tectonomagmatic evolution of Early Cretaceous magmatism in the central Lhasa suberrane, Tibet: Implications from the Zenong Group volcanic rocks
Compositional and tectonomagmatic evolution of Early Cretaceous magmatism in the central Lhasa suberrane, Tibet: Implications from the Zenong Group volcanic rocks
The Lhasa Terrane in southern Tibet is widely recognized as having separated from the northern margin of Gondwana with a Precambrian basement and undergoing a pro...
Using satellite soil moisture and rainfall in the Landslide Hazard Assessment for Situational Awareness system
Using satellite soil moisture and rainfall in the Landslide Hazard Assessment for Situational Awareness system
<p>The Landslide Hazard Assessment for Situational Awareness system (LHASA) gives a global view of landslide hazard in nearly real time. Currently, it is being upgrad...
Geochemistry and uranium-lead isotopic ages of volcanic rocks associated with Ladakh batholith, western Himalaya: Implications for petrogenesis and tectonic evolution
Geochemistry and uranium-lead isotopic ages of volcanic rocks associated with Ladakh batholith, western Himalaya: Implications for petrogenesis and tectonic evolution
<p>We present zircon U-Pb ages and whole-rock geochemistry along with mineral chemistry of the Khardung volcanic rocks outcropped in the northern margin of the Ladakh...
MORPHOLOGIC CLASSIFICATION OF THE BESKIDS ROCKS
IN THE UKRAINIAN CARPATHIANS
MORPHOLOGIC CLASSIFICATION OF THE BESKIDS ROCKS
IN THE UKRAINIAN CARPATHIANS
The article deals with morphological classification of the sandstone rocks in the Ukrainian Carpathians Beskids. By the methods of field measurements and mathematical computations ...
Geology and mineral resources of Dwyer quadrangle, Grant, Luna, and Sierra Counties, New Mexico
Geology and mineral resources of Dwyer quadrangle, Grant, Luna, and Sierra Counties, New Mexico
Dwyer quadrangle is a 15-min quadrangle located in southwestern NM, southeast of the town of Santa Rita.The major part of this report deals with the Tertiary volcanic history of th...
New lead isotope data on Cretaceous volcanic rocks of Mongolia: the sources and the origin of the magmatic melts
New lead isotope data on Cretaceous volcanic rocks of Mongolia: the sources and the origin of the magmatic melts
<p>The Eastern Mongolia Volcanic Area (EMVA) and the Gobi-Altai Volcanic Area (GAVA) are large parts of the Late Mesozoic volcanic-plutonic belt which is located in n...

