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21 results for “thermochronology”
Data associated with the Tectonics manuscript "Building a Young Mountain Range: Insight into the Growth of the Greater Caucasus Mountains from Detrital Zircon (U-Th)/He Thermochronology and 10Be Erosion Rates"
<p>U-Pb and U-Th/He ages of zircons from a suite of detrital catchments reported in the manuscript "Building a Young Mountain Range: Insight into the Growth of the Greater Caucasus Mountains from Detrital Zircon (U-Th)/He Thermochronology and 10Be Erosion Rates" submitted to Tectonics. Repository includes sample locations and DEMs of each sampled catchment.</p>
Structural Inheritance in the Eastern Cordillera, NW Argentina: Low‐Temperature Thermochronology of the Cianzo Basin - Supporting Information
<p>Supporting information accompanying the publication "Structural Inheritance in the Eastern Cordillera, NW Argentina: Low‐Temperature Thermochronology of the Cianzo Basin" published in Tectonics. The dataset contains (U-Th-Sm)/He and apatite fission track data from the Cianzo Basin, Jujuy, Argentina, and accompanying figures.</p> <p>Table S1 contains full single-grain results from apatite (AHe) and zircon (ZHe) (U-Th-Sm)/He analyses. Table S2 and S3 contain AFT results including full counting data from apatite fission track (AFT) analyses.</p> <p>Figure S1 supports AHe and ZHe data with plots showing relationships between cooling ages, eU, Ft and ESR. Figures S2–S4 support AFT data with radial plots.</p>
Cosmogenic radionuclide and thermochronology data from the Tian Shan and northern Pamir
<p>The zip folder <em>Kudriavtseva_etal_TianShan_Repository</em> contains the following files and folders:</p> <p>The excel file <em>Kudriavtseva_SuppInfo-Tables_S1-S7 </em>provides seven data tables with cosmogenic <sup>10</sup>Be, low-temperature thermochronology, and geospatial data from the Tian Shan and northern Pamir. These data tables form part of the Supporting Information for the study <em>"Impact of Quaternary glaciations on denudation rates in north Pamir </em><strong>– </strong><em>T<em>ian Sh</em>an inferred from cosmogenic <sup>10</sup>Be and low-temperature thermochronology" </em>by Kudriavtseva et al.</p> <p>The folders <em>Be10-glacial-correction </em>and <em>Be10-no_correction </em>include input files for calculating <sup>10</sup>Be-derived denudation rates using the open-source program CAIRN v.1 (Mudd et al., 2016) and shapefiles of drainage basins from the Tian Shan and northern Pamir. These data include original 10Be data from this study, as well as published 10Be data from Grin et al. (2018) and Charreau et al. (2023).</p> <p>The folder <em>Thermochronology_Data </em>includes two excel files summarizing published AFT and AHe data from the Tian Shan, input data for calculating exhumation rates using <em>age2exhume</em> MATLAB code (van der Beek & Schildgen, 2023), and the resulting exhumation rates. Additionally, this folder contains two text files with the input AFT and AHe data; they can be directly imported into MATLAB.</p>
Low-temperature thermochronology database of the Carpathian fold-and-thrust belt (ZFT; ZHe; AFT; AHe) compilation from 1999 to 2023
<p>The following tables contain the low-temperature thermochronology dataset used in the Carpathian belt's exhumation model inversion. This dataset includes information from four thermochronometers: Apatite and Zircon Fission Track (AFT and ZFT), as well as (U-Th)/He on Apatites and Zircons (AHe and ZHe). Compiled from 1999 to 2023, this database encompasses available literature data related to low-temperature thermochronology in the region. </p><p>Excel table as well as a PDF file describe the database.</p>
Supporting information for: An assessment of monazite fission-track thermochronology as a proxy for low-magnitude cooling, Catalina-Rincon Metamorphic Core Complex, AZ, U.S.A.
<p><span>The following supporting information contains: The detailed location and age data for the geochronological, isotopic, and geochemical data used in this study, and their associated publications. Detailed thermochronometric data and associated thermal history modelling information for all thermochronology and modelling presented in the study.</span></p>
Constraining Andean Propagation of Exhumation at the Limit of the Eastern Cordillera, NW Argentina, using Low-Temperature Thermochronology in a Structural Context - Supporting Information
<p>Supporting information accompanying the publication "Constraining Andean Propagation at the Limit of the Eastern Cordillera, NW Argentina, using Low-Temperature Thermochronology in a Structural Context" published in Tectonics. The dataset contains apatite and zircon (U-Th-Sm)/He and apatite fission track data from the Tilcara Range and San Lucas block, Jujuy, Argentina, as well as additional QTQt thermal models that are discussed in the paper.</p> <p>Table S1 contains full single-grain results from apatite fission track, apatite (AHe) (U-Th-Sm)/He and zircon (ZHe) (U-Th-Sm)/He analyses. Outliers are marked in grey and are not included in the weighted mean age. Figure S1 supports (U-Th-Sm)/He data graphically. Apatite fission track (AFT) data is supported by radial plots in Figure S2. Figure S3 shows QTQt thermal models using either AHe, AFT or ZHe single-grain ages. All of the models results are explained in the main text.</p>
Supplementary Material to "Exothermic reactions and 39Ar–40Ar thermochronology: Hydration leads to younger apparent ages"
<p>Here we briefly describe the supplementary materials for the publication "Exothermic reactions and 39Ar–40Ar thermochronology: Hydration leads to younger apparent ages" in Geology, 52(6), 458-462 by Schorn, S., Moulas, E., & Stüwe, K. (2024).</p>
Thermochronology dataset for Himalaya
<p>Dataset from the Himalaya comprises 1785 thermochronologic ages compiled from papers published through July 2022; full data sources are provided in the associated file. We have excluded some reported ages from the Siwaliks (Sub-Himalayan fold-thrust belt), as that sedimentary unit commonly yields unreset ages. We have also excluded the western and eastern syntaxis regions, where extremely rapid exhumation is driven by processes that are different from those in the main part of the Himalaya (Zeitler et al., 2014; Butler, 2019). Finally, we exclude any pre-Himalayan ages (> 60 Ma), as these are not directly linked to exhumation during Himalayan mountain building. The dataset comprises 345 white mica <sup>40</sup>Ar/<sup>39</sup>Ar ages, 236 ZFT ages, 783 AFT ages, 281 ZHe ages, and 140 AHe ages. Data are provided in an Excel worksheet.</p>
Published and new Geochronology, Thermochronology, Geodetic, and Earthquake Data from the Fairweather Transform Region
<p>Published and new Geochronology, Thermochronology, Geodetic, and Earthquake Data from the Fairweather Transform Region used in <strong>Benowitz, J., </strong>Lease, R., Hauessler, P., Pavlis, P., Mann, M., Fairweather Transform Orogenesis: 25 million years of Crustal-block vertical extrusion and double indenter tectonics since ca. 3 Ma., for <i>Tectonophysics</i>.</p>
Samples, thermochronology and modeling results
<p>Supplementary Data 1: Sample location and thermochronological data applied in the current study.</p> <p>Supplementary Data 2: Modeled paleotemperature and corresponding erosion and erosion rate. For wDML samples, alternative erosion estimates are provided for a range of geothermal gradients for the basalts.</p>
Dataset for: Heat Transfer and Production in Cratonic Continental Crust: Constraints from U-Pb Thermochronology of Xenoliths from the Siberian Craton
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Sand, gravel, cobbles, and boulders: Detrital thermochronology shows that one size does not tell all
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Isotopic Constraints from Carbonates on the Thermochronologic Evolution of Fluid Flow and Faulting in the Monitor Range, Central Nevada, USA
<p>The dataset contains the following information:</p> <p>"Full data summary"- Isotopic data and GPS coordinates for all samples analyzed in this study.</p> <p>"L013 report", "L052 report"- Raw clumped isotope data for all samples.</p> <p>"U-Pb raw data"- Calcite U/Pb ratios of psuedo-spots for all unknown samples and standards analyzed in this study.</p> <p>"Yanay CC20"- Zircon U/Pb data for standards and unkown sample grains.</p>
Thermochronology data in Ebro basin and model input parameters for computing cooling histories
<p>Two files (word and excel) containing Table DR1 that refer to the model input parameters and Table DR2 with details of the (U-Th-Sm)/He analyses. </p>
Phanerozoic tectonic and sedimentation history of the Arctic: constraints from deep-time low-temperature thermochronology data of Ellesmere Island and Northwest Greenland
<p>We present thermochronology and geochronology data from basement and (meta-)sedimentary samples collected on Ellesmere Island (Canadian High Arctic) and Northwest Greenland. The interpretations of our data are described and discussed in a paper in the journal Tectonics, titled “Phanerozoic tectonic and sedimentation history of the Arctic: constraints from deep-time low-temperature thermochronology data of Ellesmere Island and Northwest Greenland”. Our data include apatite fission track analyses, apatite (U-Th-Sm)/He analyses, and U-Pb analyses of detrital zircons. The data were used for inverse Monte Carlo simulations for obtaining time-temperature histories. We include descriptions of the analytical details related to the measurements, tests for potential effects of radiation damage on the (U-Th-Sm)/He age distributions, and we display the results of the Monte Carlo simulations for the individual samples. Our data set comprises a table summarizing constraints and specific parameters used for simulations (Table S1, summary input modelling), a table displaying the results of the simulations (Table S2, summary outcome thermal history inversions), a table displaying calculations of modelled overburden (Table S3, calculation of net burial and exhumation), a table summarizing the results of apatite fission track data, followed by several tables with the single-grain age and length data of fission track analyses (Table S4), a table with the detailed results of apatite (U-Th-Sm)/He thermochronology (Table S5), a table with single-grain zircon U-Pb data (Table S6), and a table with the results of statistical analysis for distinguishing individual age groups from the detrital zircon U-Pb age distributions (Table S7).</p>
Supporting Information for "How erosion influence fault segmentation and earthquakes in thrust belts: Low-temperature thermochronology and fluvial shear stress analyses on the southern Longmen Shan, eastern Tibet"
<p>Supporting Information for</p> <p>How erosion influence fault segmentation and earthquakes in thrust belts: Low-temperature thermochronology and fluvial shear stress analyses on the southern Longmen Shan, eastern Tibet</p> <p>Yijia Ye<sup>1</sup>, Xibin Tan<sup>1, </sup>*, Yiduo Liu<sup>2</sup>, Feng Shi<sup>1</sup>, Yuan-Hsi Lee<sup>3</sup>, Michael A. Murphy<sup>2</sup>, Xiwei Xu<sup>4</sup></p> <ol> <li>State Key Laboratory of Earthquake Dynamics, Institute of Geology, China Earthquake Administration, Beijing, 100029, China</li> <li>Department of Earth and Atmospheric Sciences, University of Houston, Houston, TX, 77204-5007, USA</li> <li>Department of Earth and Environmental Sciences, National Chung-Cheng University, Chia-Yi, 62102, Taiwan</li> <li>Institute of Crustal Dynamics, China Earthquake Administration, Beijing, 100085, China</li> </ol> <p><em>* </em>Corresponding author. E-mail address: <a href="mailto:tanxibin@sina.com">tanxibin@sina.com</a></p> <p> </p> <p><strong>Contents of this file </strong></p> <p>Figures S1 and Table S1</p>
Data for: Thermochronologic constraints on the extensional history of the southeastern Black Mountains, Death Valley, CA
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Detrital thermochronology reveals drainage capture in the eastern Tibetan Plateau after Late Pliocene - Early Pleistocene
<p>dataset for manuscript</p>
Mesozoic–Cenozoic thermochronology of the Tarim–Southern Tianshan system, NW China: Implications for hydrocarbon accumulation
<p>data</p>
Data Sets of Timing and Kinematics of Late Cenozoic Strike-slip Faults in Western Tibetan Plateau: New Constraints from Provenance Analysis and Detrital Thermochronology
<p>Data Sets of Wei et al. (2023). The manuscript is titled Timing and Kinematics of Late Cenozoic Strike-slip Faults in Western Tibetan Plateau: New Constraints from Provenance Analysis and Detrital Thermochronology</p>
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