Javascript must be enabled to continue!
Exhumation History of the Western Gneiss Region Revealed Through Symplectite Thermobarometry
View through CrossRef
<p>The Western Gneiss Region (WGR) of Norway, part of the Caledonian Orogenic Belt, is one of the largest and best studied examples of exhumed ultra-high pressure (UHP) continental terrains in the world. This makes it an ideal candidate for studying the poorly understood processes that facilitate and control the exhumation of UHP continental material. Although the WGR is often considered the type example of the eduction model of UHP exhumation (Andersen et al., 1991), validation of exhumation models requires robust estimates of pressure and temperature across the full range of retrograde conditions which follow peak metamorphism. However, such constraints are often difficult to obtain as there is commonly overprinting of early-stage exhumation records during later stages of exhumation. &#160;</p><p>UHP assemblages in the WGR are primarily preserved within numerous mafic eclogite enclaves, making them ideal candidates for studying processes and conditions that occur during exhumation from UHP conditions. In this study, we present detailed Electron Probe Micro-Analyses (EPMA) combined with Scanning Electron and Optical Microscopy characterization from a suite of mafic eclogite samples from the Stadlandet Peninsula of Western Norway. Our analyses focus on diopside&#8211;plagioclase (&#177; amphibole) symplectite, which form from breakdown of omphacite during exhumation. Spatial variations in the compositions of minerals within these symplectites reflect a detailed record of P-T conditions during exhumation (Boland & van Roermund, 1983; Joanny et al., 1991; Waters, 2002). We used a novel technique of high resolution, low voltage EPMA, combined with secondary fluorescence corrections, which permits the analysis of individual symplectite lamellae with widths down to 1&#956;m. Retrograde P-T pathways were then constructed from these data using the hornblende-plagioclase thermometer and clinopyroxene-plagioclase-hornblende barometer (Waters, 2002). &#160;</p><p>P-T estimates from the symplectites fall in the range 470-720&#176;C and 3-16 kbar. Combining the P-T arrays with existing peak P-T estimates indicates a two-stage exhumation path, with a steep initial isothermal decompression from depth followed by a more gentle cooling trajectory at lower pressures. The inflection in the exhumation path is estimated to be around 10-15 kbar at 650-700&#176;C. The path shape is usually interpreted to record an initial rapid buoyancy driven exhumation from UHP to the base of the crust or lithosphere, followed by a second stage of slow exhumation to crustal depths. This confirmation of two-stage exhumation paths helps to constrain models of exhumation for the WGR, which in turn provides insights into how UHP terrains exhume globally.</p><p>&#160;</p><p>References:</p><p>Andersen, T. B., Jamtveit, B., Dewey, J. F. & Swensson E. (1991). Subduction and Eduction of Continental Crust: Major Mechanisms during Continent-Continent Collision and Orogenic Extensional Collapse, a Model Based on the South Norwegian Caledonides. Terra Nova, 3(3), 303&#8211;10</p><p>Boland, J., & van Roermund, H. (1983). Mechanisms of exsolution in omphacites from high temperature, type B, eclogites. Physics and Chemistry of Minerals, 9(1), 30&#8211;37.</p><p>Joanny, V., van Roermund, H. & Lardeaux, J. M. (1991). The clinopyroxene/plagioclase symplectite in retrograde eclogites. Geologische Rundschau, 80(2), 303&#8211;320</p><p>Waters, D. J. (2002). Clinopyroxene-amphibole-plagioclase symplectites in Norwegian eclogites. Mineralogical Society, Winter Conference, Derby.</p>
Title: Exhumation History of the Western Gneiss Region Revealed Through Symplectite Thermobarometry
Description:
<p>The Western Gneiss Region (WGR) of Norway, part of the Caledonian Orogenic Belt, is one of the largest and best studied examples of exhumed ultra-high pressure (UHP) continental terrains in the world.
This makes it an ideal candidate for studying the poorly understood processes that facilitate and control the exhumation of UHP continental material.
Although the WGR is often considered the type example of the eduction model of UHP exhumation (Andersen et al.
, 1991), validation of exhumation models requires robust estimates of pressure and temperature across the full range of retrograde conditions which follow peak metamorphism.
However, such constraints are often difficult to obtain as there is commonly overprinting of early-stage exhumation records during later stages of exhumation.
&#160;</p><p>UHP assemblages in the WGR are primarily preserved within numerous mafic eclogite enclaves, making them ideal candidates for studying processes and conditions that occur during exhumation from UHP conditions.
In this study, we present detailed Electron Probe Micro-Analyses (EPMA) combined with Scanning Electron and Optical Microscopy characterization from a suite of mafic eclogite samples from the Stadlandet Peninsula of Western Norway.
Our analyses focus on diopside&#8211;plagioclase (&#177; amphibole) symplectite, which form from breakdown of omphacite during exhumation.
Spatial variations in the compositions of minerals within these symplectites reflect a detailed record of P-T conditions during exhumation (Boland & van Roermund, 1983; Joanny et al.
, 1991; Waters, 2002).
We used a novel technique of high resolution, low voltage EPMA, combined with secondary fluorescence corrections, which permits the analysis of individual symplectite lamellae with widths down to 1&#956;m.
Retrograde P-T pathways were then constructed from these data using the hornblende-plagioclase thermometer and clinopyroxene-plagioclase-hornblende barometer (Waters, 2002).
&#160;</p><p>P-T estimates from the symplectites fall in the range 470-720&#176;C and 3-16 kbar.
Combining the P-T arrays with existing peak P-T estimates indicates a two-stage exhumation path, with a steep initial isothermal decompression from depth followed by a more gentle cooling trajectory at lower pressures.
The inflection in the exhumation path is estimated to be around 10-15 kbar at 650-700&#176;C.
The path shape is usually interpreted to record an initial rapid buoyancy driven exhumation from UHP to the base of the crust or lithosphere, followed by a second stage of slow exhumation to crustal depths.
This confirmation of two-stage exhumation paths helps to constrain models of exhumation for the WGR, which in turn provides insights into how UHP terrains exhume globally.
</p><p>&#160;</p><p>References:</p><p>Andersen, T.
B.
, Jamtveit, B.
, Dewey, J.
F.
& Swensson E.
(1991).
Subduction and Eduction of Continental Crust: Major Mechanisms during Continent-Continent Collision and Orogenic Extensional Collapse, a Model Based on the South Norwegian Caledonides.
Terra Nova, 3(3), 303&#8211;10</p><p>Boland, J.
, & van Roermund, H.
(1983).
Mechanisms of exsolution in omphacites from high temperature, type B, eclogites.
Physics and Chemistry of Minerals, 9(1), 30&#8211;37.
</p><p>Joanny, V.
, van Roermund, H.
& Lardeaux, J.
M.
(1991).
The clinopyroxene/plagioclase symplectite in retrograde eclogites.
Geologische Rundschau, 80(2), 303&#8211;320</p><p>Waters, D.
J.
(2002).
Clinopyroxene-amphibole-plagioclase symplectites in Norwegian eclogites.
Mineralogical Society, Winter Conference, Derby.
</p>.
Related Results
Quantification of Tertiary exhumation from sonic velocity data, Celtic Sea/South-Western Approaches
Quantification of Tertiary exhumation from sonic velocity data, Celtic Sea/South-Western Approaches
Abstract
Sonic velocities from the Danian Chalk, the Upper Cretaceous Chalk, the Lower Cretaceous Greensand/Gault Clay, and the Triassic Mercia Mudstone were used to quan...
Neogene exhumation history of the Mont Blanc massif, western Alps
Neogene exhumation history of the Mont Blanc massif, western Alps
The contribution of climate and tectonics to the Neogene exhumation history of the European Alps is studied in the Mont Blanc (MB) massif using low‐temperature thermochronology. Ap...
The Magnitude of Exhumation in the Kidson Sub-basin, Western Australia, using Thermal and Compaction Techniques
The Magnitude of Exhumation in the Kidson Sub-basin, Western Australia, using Thermal and Compaction Techniques
Abstract
The Kidson Sub-basin which forms the largest tectonic province of the Canning Basin has a high potential for Uranium, sediment-hosted base metals, conventional and...
Late Cenozoic two-phase rapid exhumation of the Daliang Mountains, Southeastern Tibetan Plateau
Late Cenozoic two-phase rapid exhumation of the Daliang Mountains, Southeastern Tibetan Plateau
<p>The southeastern Tibetan Plateau experienced significant tectonic uplift, fault activity, climate change and reorgnization of fluvial systems during the late Cenoz...
The Magnitude of Exhumation in the Kidson Sub-basin, Western Australia, using Thermal and Compaction Techniques
The Magnitude of Exhumation in the Kidson Sub-basin, Western Australia, using Thermal and Compaction Techniques
Abstract
The Kidson Sub-basin which forms the largest tectonic province of the Canning Basin has high potential for Uranium, sediment-hosted base metals, conventional and u...
Exhumation et évolution du drainage himalayen depuis 15 Ma. Apport des archives sédimentaires
Exhumation et évolution du drainage himalayen depuis 15 Ma. Apport des archives sédimentaires
Les variations latérales d'exhumation de l'Himalaya sont peu documentées, notamment dans la partie est. Dans ce mémoire, l'évolution de la chaîne himalayenne est étudiée à partir d...
Numerical modelling of mantle exhumation in inverted rift systems
Numerical modelling of mantle exhumation in inverted rift systems
The tectonic exhumation of mantle material is a well-known phenomenon and may occur during both rifting and subsequent (large-scale) basin inversion. However, the processes leading...
The Dataset of Zircon Geochronological & Geochemical Testing of Qingyuan Complex in Northern Liaoning Province
The Dataset of Zircon Geochronological & Geochemical Testing of Qingyuan Complex in Northern Liaoning Province
The dataset of zircon geochronological testing of Qingyuan Complex in northern LiaoningProvince gets its name from rock testing and analysis activities, which have been carried out...

