Detrital Zircon Uranium-lead Geochronology and Hafnium-isotope Analyses of Passive Margin and Roberts Mountains Allochthon Strata

Detrital Zircon Uranium-lead Geochronology and Hafnium-isotope Analyses of Passive Margin and Roberts Mountains Allochthon Strata PDF Author: Gwen Margaret Linde
Publisher:
ISBN:
Category : Electronic books
Languages : en
Pages : 360

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Book Description
This dissertation investigated Neoproterozoic–Devonian units of the western Laurentian passive margin and Roberts Mountains allochthon (RMA) and determined U-Pb detrital ages and Hf isotope zircon analyses that provide new insights into the early Paleozoic tectonics of western Laurentia. The three chapters investigate several difficult questions and contradictions in the understanding of early Paleozoic tectonism in western Laurentia through analysis of sedimentary units. The provenance, depositional histories, and tectonic evolution of the lower Paleozoic sedimentary strata of north-central Nevada have long been subjects of speculation and debate. Detrital zircon U-Pb geochronology and Hf-isotope analyses indicate the provenance, sedimentary distribution patterns, and tectonic evolution of Upper Neoproterozoic–Cambrian passive margin strata and Ordovician–Devonian strata of the RMA, with a special emphasis on the enigmatic Harmony Formation. The study reported in Chapter 1 uses detrital zircon U-Pb geochronology to determine whether or not the Upper Neoproterozoic–Lower Cambrian Osgood Mountain Quartzite and the Upper Cambrian–Lower Ordovician Preble Formation in the Osgood Mountains of northern Nevada were units of the western Laurentian passive margin. Within the Osgood Mountain Quartzite, U-Pb age populations of the detrital zircons shift with stratal age. This shift indicates that the zircons were shed in different proportions from the source terranes, which suggests a change in provenance within the Osgood Mountain Quartzite. These changes are consistent across a Great Basin transect of coeval passive margin strata. The change in provenance is due to a shift in sedimentary transport patterns, which was caused by the Late Neoproterozoic-Early Cambrian uplift of the Transcontinental Arch. This study provided independent corroboration of the existence of the Transcontinental Arch and better precision for the timing at which the Arch uplifted. The study also recorded the impact of the uplifted Arch on continent-wide sediment dispersal patterns—the change in predominant source terranes—and confirmed the Arch as a sediment source for passive-margin strata. Regional coeval changes in detrital zircon U-Pb age patterns provide a correlative tool in unfossiliferous sediments and could be useful in future studies. Chapter 2 describes how detrital zircon U-Pb geochronology and Hf-isotope analyses were used to determine the provenance, sedimentary transport, and tectonic evolution of RMA strata. Workers have speculated for decades, with little agreement, on the origin, depositional basin(s), and subsequent tectonic transport of the RMA. Zircon grains from six Ordovician to Devonian arenite samples were analyzed for U-Pb ages; approximately one-quarter of these grains were further analyzed for Hf isotope ratios. Five of the studied units have similar U-Pb age populations and Hf-isotope ratios, while the U-Pb ages and Hf-ratios of the Ordovician lower Vinini Formation are significantly different. Comparison of these data with known analyses of igneous basement rocks and other sedimentary units of Laurentia reveals that the lower Vinini Formation originated in the north-central Laurentian craton. The other five units, as well as Ordovician passive margin sandstones of the western Laurentian margin, had a common source in the Peace River Arch region of western Canada. All of the RMA strata were deposited near the Peace River Arch region and subsequently tectonically transported south along the Laurentian margin, from where they were emplaced onto the craton during the Antler orogeny. This study determined the origin, location of the depositional basin, and proposed a subsequent tectonic evolution that accounts for origin, deposition, and current location of the RMA strata. Chapter 3 describes the origin, age, and tectonic development of the Harmony Formation. The Harmony Formation has always been difficult to explain—it is mostly an immature feldspathic arenite, which would argue for minimal transport from origin to deposition. However, its general position as the top thrust plate in the RMA stack argues for deposition oceanward of other more texturally mature RMA strata. The age of the Harmony Formation is equally contentious—published age determinations range from Cambrian to Mississippian. Zircon grains from ten arenite samples were analyzed for U-Pb ages; grains from eight of these samples were further analyzed for Hf-isotope ratios. Seven of the arenite units have similar U-Pb age peaks and Hf isotope ratios, whereas three differ significantly. The data confirmed the subdivision of the Harmony Formation into two petrofacies, quartzose (Harmony A) and feldspathic (Harmony B). Harmony A originated in the central Laurentian craton. Harmony B had a common source in eastern Alberta–western Saskatchewan, north of the source of the Harmony A. All of the Harmony Formation strata were deposited near eastern Alberta in Late Neoproterozoic through Cambrian time and subsequently tectonically interleaved with the Roberts Mountains allochthon strata. The entire package was tectonically transported south along the Laurentian margin. Subsequently, it was emplaced eastward onto the craton during the Late Devonian to Early Mississippian Antler orogeny. This study proposed a reasonable solution to one of the longest enduring and most puzzling conundrums of the western Cordillera—the origin, age, and transport of the Harmony Formation. These three studies demonstrated the utility of detrital zircon U-Pb geochronology and Hf-isotope analyses in better understanding difficult sedimentary and tectonic problems. The studies also provided new insights into the Early Paleozoic tectonic evolution of western Laurentian.

Detrital Zircon Uranium-lead Geochronology and Hafnium-isotope Analyses of Passive Margin and Roberts Mountains Allochthon Strata

Detrital Zircon Uranium-lead Geochronology and Hafnium-isotope Analyses of Passive Margin and Roberts Mountains Allochthon Strata PDF Author: Gwen Margaret Linde
Publisher:
ISBN:
Category : Electronic books
Languages : en
Pages : 360

Get Book Here

Book Description
This dissertation investigated Neoproterozoic–Devonian units of the western Laurentian passive margin and Roberts Mountains allochthon (RMA) and determined U-Pb detrital ages and Hf isotope zircon analyses that provide new insights into the early Paleozoic tectonics of western Laurentia. The three chapters investigate several difficult questions and contradictions in the understanding of early Paleozoic tectonism in western Laurentia through analysis of sedimentary units. The provenance, depositional histories, and tectonic evolution of the lower Paleozoic sedimentary strata of north-central Nevada have long been subjects of speculation and debate. Detrital zircon U-Pb geochronology and Hf-isotope analyses indicate the provenance, sedimentary distribution patterns, and tectonic evolution of Upper Neoproterozoic–Cambrian passive margin strata and Ordovician–Devonian strata of the RMA, with a special emphasis on the enigmatic Harmony Formation. The study reported in Chapter 1 uses detrital zircon U-Pb geochronology to determine whether or not the Upper Neoproterozoic–Lower Cambrian Osgood Mountain Quartzite and the Upper Cambrian–Lower Ordovician Preble Formation in the Osgood Mountains of northern Nevada were units of the western Laurentian passive margin. Within the Osgood Mountain Quartzite, U-Pb age populations of the detrital zircons shift with stratal age. This shift indicates that the zircons were shed in different proportions from the source terranes, which suggests a change in provenance within the Osgood Mountain Quartzite. These changes are consistent across a Great Basin transect of coeval passive margin strata. The change in provenance is due to a shift in sedimentary transport patterns, which was caused by the Late Neoproterozoic-Early Cambrian uplift of the Transcontinental Arch. This study provided independent corroboration of the existence of the Transcontinental Arch and better precision for the timing at which the Arch uplifted. The study also recorded the impact of the uplifted Arch on continent-wide sediment dispersal patterns—the change in predominant source terranes—and confirmed the Arch as a sediment source for passive-margin strata. Regional coeval changes in detrital zircon U-Pb age patterns provide a correlative tool in unfossiliferous sediments and could be useful in future studies. Chapter 2 describes how detrital zircon U-Pb geochronology and Hf-isotope analyses were used to determine the provenance, sedimentary transport, and tectonic evolution of RMA strata. Workers have speculated for decades, with little agreement, on the origin, depositional basin(s), and subsequent tectonic transport of the RMA. Zircon grains from six Ordovician to Devonian arenite samples were analyzed for U-Pb ages; approximately one-quarter of these grains were further analyzed for Hf isotope ratios. Five of the studied units have similar U-Pb age populations and Hf-isotope ratios, while the U-Pb ages and Hf-ratios of the Ordovician lower Vinini Formation are significantly different. Comparison of these data with known analyses of igneous basement rocks and other sedimentary units of Laurentia reveals that the lower Vinini Formation originated in the north-central Laurentian craton. The other five units, as well as Ordovician passive margin sandstones of the western Laurentian margin, had a common source in the Peace River Arch region of western Canada. All of the RMA strata were deposited near the Peace River Arch region and subsequently tectonically transported south along the Laurentian margin, from where they were emplaced onto the craton during the Antler orogeny. This study determined the origin, location of the depositional basin, and proposed a subsequent tectonic evolution that accounts for origin, deposition, and current location of the RMA strata. Chapter 3 describes the origin, age, and tectonic development of the Harmony Formation. The Harmony Formation has always been difficult to explain—it is mostly an immature feldspathic arenite, which would argue for minimal transport from origin to deposition. However, its general position as the top thrust plate in the RMA stack argues for deposition oceanward of other more texturally mature RMA strata. The age of the Harmony Formation is equally contentious—published age determinations range from Cambrian to Mississippian. Zircon grains from ten arenite samples were analyzed for U-Pb ages; grains from eight of these samples were further analyzed for Hf-isotope ratios. Seven of the arenite units have similar U-Pb age peaks and Hf isotope ratios, whereas three differ significantly. The data confirmed the subdivision of the Harmony Formation into two petrofacies, quartzose (Harmony A) and feldspathic (Harmony B). Harmony A originated in the central Laurentian craton. Harmony B had a common source in eastern Alberta–western Saskatchewan, north of the source of the Harmony A. All of the Harmony Formation strata were deposited near eastern Alberta in Late Neoproterozoic through Cambrian time and subsequently tectonically interleaved with the Roberts Mountains allochthon strata. The entire package was tectonically transported south along the Laurentian margin. Subsequently, it was emplaced eastward onto the craton during the Late Devonian to Early Mississippian Antler orogeny. This study proposed a reasonable solution to one of the longest enduring and most puzzling conundrums of the western Cordillera—the origin, age, and transport of the Harmony Formation. These three studies demonstrated the utility of detrital zircon U-Pb geochronology and Hf-isotope analyses in better understanding difficult sedimentary and tectonic problems. The studies also provided new insights into the Early Paleozoic tectonic evolution of western Laurentian.

Detrital Zircon Uranium-lead Geochronology of the Schoonover Sequence (Golconda Allochthon) and the Yokuts Pendants (Western Sierra Nevada Mountains)

Detrital Zircon Uranium-lead Geochronology of the Schoonover Sequence (Golconda Allochthon) and the Yokuts Pendants (Western Sierra Nevada Mountains) PDF Author: Nancy Chen
Publisher:
ISBN:
Category :
Languages : en
Pages : 308

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Uranium-lead zircon geochronology, hafnium isotope and trace element geochemistry of a unique lower crustal- upper mantle section of a dying slow-spreading mid-ocean ridge (Macquarie Island, Southern Ocean)

Uranium-lead zircon geochronology, hafnium isotope and trace element geochemistry of a unique lower crustal- upper mantle section of a dying slow-spreading mid-ocean ridge (Macquarie Island, Southern Ocean) PDF Author: Charles Ryan Jeffcoat
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

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In-situ hafnium and lead isotope analyses of detrital zircons from the Devonian sedimentary basin of NE Greenland

In-situ hafnium and lead isotope analyses of detrital zircons from the Devonian sedimentary basin of NE Greenland PDF Author: T.-L. Knudsen
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Isotopic Geochemistry of Uranium and Lead

Isotopic Geochemistry of Uranium and Lead PDF Author: John Laurence Kulp
Publisher:
ISBN:
Category : Geochemistry
Languages : en
Pages : 428

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Provisional Zircon and Monazite Uranium-Lead Geochronology for Selected Rocks from Vermont

Provisional Zircon and Monazite Uranium-Lead Geochronology for Selected Rocks from Vermont PDF Author: U.S. Department of the Interior
Publisher: CreateSpace
ISBN: 9781497466807
Category : Reference
Languages : en
Pages : 52

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Book Description
This report presents the results of zircon uranium-lead geochronologic analysis of 24 rock samples collected and analyzed in support of the "Bedrock Geologic Map of Vermont" by Ratcliff and others. The samples in this study were collected from mapped exposures identified while conducting either new, detailed geologic quadrangle mapping or reconnaissance mapping, both of which were used for compilation of the bedrock geologic map of Vermont.

U-Pb and Hf Analysis of Detrital Zircons

U-Pb and Hf Analysis of Detrital Zircons PDF Author: Kylie J. Matonia
Publisher:
ISBN: 9781741682717
Category : Geochronometry
Languages : en
Pages : 81

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Provision Zircon and Monazite Uranium-Lead Geochronology for Selected Rocks from Vermont

Provision Zircon and Monazite Uranium-Lead Geochronology for Selected Rocks from Vermont PDF Author: U.S. Department of the Interior
Publisher: CreateSpace
ISBN: 9781499255904
Category : Reference
Languages : en
Pages : 50

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Book Description
This report presents the results of zircon uranium-lead geochronologic analyses of 24 rock samples collected and analyzed in support of the "Bedrock Geological Map of Vermont" by Ratcliffe and others (in press).

Geological Survey's Work on Isotope Geology of Uranium, Thorium, and Their Decay Products

Geological Survey's Work on Isotope Geology of Uranium, Thorium, and Their Decay Products PDF Author: Ralph Smyser Cannon
Publisher:
ISBN:
Category : Isotope geology
Languages : en
Pages : 14

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Zircon

Zircon PDF Author: John M. Hanchar
Publisher: de Gruyter
ISBN: 9780939950652
Category : Nature
Languages : en
Pages : 526

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Book Description
Chapter titles: Structure and chemistry of zircon and zircon-group minerals; The composition of zircon and igneous and metamorphic petrogenesis; Melt inclusions in zircon; Zircon saturation thermometry; Diffusion in zircon; Historical development of zircon geochronology; Zircon U-Th-Pb geochronology by ID-TIMS; Considerations in zircon geochronology by SIMS; Present trends and the future of zircon in geochronology: laser ablation ICPMS; Detrital zircon analysis of the sedimentary record; High-precision U-Pb zircon geochronology and the stratigraphic record; Lu-Hf and Sm-Nd isotope systems in zircon; Oxygen isotopes in zircon; Radiation effects in zircon; Spectroscopic methods applied to zircon; Atlas of zircon textures.