يعرض 1 - 20 نتائج من 62 نتيجة بحث عن '"U-Pb chronology"', وقت الاستعلام: 0.60s تنقيح النتائج
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    Academic Journal
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    المساهمون: University of Western Ontario (UWO), Institut für Mineralogie Hannover, Leibniz Universität Hannover=Leibniz University Hannover, Institut für Geowissenschaften Heidelberg, Universität Heidelberg Heidelberg = Heidelberg University, Technical University of Berlin / Technische Universität Berlin (TUB), DLR Institut für Planetenforschung, Deutsches Zentrum für Luft- und Raumfahrt Berlin (DLR), Laboratoire Magmas et Volcans (LMV), Institut de Recherche pour le Développement (IRD)-Institut national des sciences de l'Univers (INSU - CNRS)-Centre National de la Recherche Scientifique (CNRS)-Université Clermont Auvergne (UCA)-Observatoire de Physique du Globe de Clermont-Ferrand (OPGC), Institut national des sciences de l'Univers (INSU - CNRS)-Centre National de la Recherche Scientifique (CNRS)-Université Clermont Auvergne (UCA)-Institut national des sciences de l'Univers (INSU - CNRS)-Centre National de la Recherche Scientifique (CNRS)-Université Clermont Auvergne (UCA), Friedrich-Alexander Universität Erlangen-Nürnberg = University of Erlangen-Nuremberg (FAU), Bayerisches Geoinstitut (BGI), Universität Bayreuth Deutschland = University of Bayreuth Germany = Université de Bayreuth Allemagne

    المصدر: ISSN: 0016-7037.

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    Academic Journal

    المصدر: Sheen , A I , Herd , C D K , Staddon , L , Darling , J R , Schwarz , W H & Tait , K T 2024 , ' Baddeleyite microstructural response to shock metamorphism in three enriched shergottites and implications for UPb geochronology ' , Geochimica et Cosmochimica Acta , vol. 366 , pp. 267-283 . https://doi.org/10.1016/j.gca.2023.12.002

    مصطلحات موضوعية: Baddeleyite, Microstructure, Shergottite, U-Pb chronology, EBSD

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    المصدر: Earth Sciences Research Journal; Vol. 21 No. 2 (2017); 59-65 ; Earth Sciences Research Journal; Vol. 21 Núm. 2 (2017); 59-65 ; 2339-3459 ; 1794-6190

    وصف الملف: application/pdf

    Relation: https://revistas.unal.edu.co/index.php/esrj/article/view/65192/pdf; Asis, J., Tahir, S. H., Rahim, A. R., Konjing, Z., Kob, R. C., & Tjia, H. D. (2017). Smaller benthic foraminifera Analysis of Kudat Formation, Kudat, Sabah: Preliminary Interpretation. Geological Behavior, 1(1), 27-29.; Boynton, W. V. (1984). Geochemistry of the rare earth elements: Meteorite studies. In: Henderson, P. (ed.). Rare Earth Element Geochemistry. Elsevier, 36(6), 323-338.; Chen, H. A., Zhu, X. P., Ma, D. F., Huang, H. X., Li, G. M., Li Y.B., . Liu, C. Q. (2013). Geochronology and geochemistry of the Bolong porphyry Cu- Au deposit, Tibet and its mineralizing significance. Acta Geologica Sinica, 87(10), 1593-1611.; Compston, W., Williams, I. S., & Kirschvink, J. L. (1992). Zircon U-Pb AGES for the early cambrian time-scale. Journal of the Geological Society, 149(2), 171-184.; Coulon, C., Maluski, H., & Bollinger, C. (1986). Mesozoic and cenozoic volcanic rocks from central and southern Tibet: 39 Ar-40 Ar dating, petrological characteristics and geodynamical significance. Earth and Planetary Science Letters, 79(3), 281-302.; Defant, M. J., & Drummond, M. S. (1990). Derivation of some modern arc magmas by melting of young subducted lithosphere. Nature, 347, 662-665.; Deng, S. L., Tang, J. X., Li, Z. J., Yao, X. F., & Wang, Y. (2011). Geochemical characteristics of rock mass in the Gaerqiong Cu-Au deposit, Tibet. Journal of Chengdu University of Technology (Natural Science Edition), 38 (1), 85-91.; Geng, Q. R., Pan, G. T., Wang, L. Q., Peng, Z. M., & Zhang, Z. (2011). Tethyan evolution and metallogenic geological background of the Bangong Co-Nujiang belt and the Qiangtang massif in Tibet. Geological Bulletin of China, 30(8), 1261-1274.; Harris, N., Inger, S., & Ronghua, X. (1990). Cretaceous plutonism in Central Tibet: an example of post-collision magmatism. Journal of Volcanology and Geothermal Research, 44(1), 21-32.; Huang, H. X., Li, G. M., Liu, B., Dong, S. L., Shi, H. Z., Zhang, Z. L., & Fan, A. H. (2012). Zircon U-Pb Geochronology and Geochemistry of the Tiangongnile Skarn-type Cu-Au Deposit in Zhongba County, Tibet: Their Genetic and Tectonic Setting Significance. Acta Geoscientica Sinica, 33(4), 424-434.; Huang, H. X., Li, G. M., Liu, B., Zhang, Z. L., Ma, D., Qu, Z., Xiao, W. F., & Liu, H. (2014). Discovery of Shangxu orogenic type gold deposit in northern Tiber and its significance. Mineral Deposits, 33(3), 486-496.; Lei, C. Y., Li, Z. J., Zhang, Z., Hu, Z. H., Wang, H. X., & Song, J. L. (2012). Geochemical Characteristics and Geodynamic Significance of the Granites in the Ga’erqiong Cu-Au deposit, Tibet. Acta Geoscientica Sinica, 33(4), 601-612.; Li, Z. J., Tang, J. X., Yao, X. F., Duo, J., Liu, H. F., Deng, S. L., . Hu, Z. H. (2011). Geological characteristics and prospecting potential of Gaerqiong copper-gold polymetallic deposit in Ali District, northern Tibet. Mineral Deposits, 30(6), 1149-1153.; Liu, H., Huang, H. X., Li, G. M., Xiao, W. F., Zhang, Z. L., Liu, B., . Ma, D. (2015). Factor analysis in geochemical survey of the Shangxu gold deposit, northern Tibet. Geology in China, 42(4), 1126-1136.; Ludwig K. R. (2003). User's manual for Isoplot 3.00: a geochronological toolkit for Microsoft Excel. Berkeley Geochronology Center: Special Publication, 1-70.; Lv, L. N., Cui, Y. B., Song, L., Zhao, Y. Y., Qu, X. M., & Wang, J.P. (2011). Geochemical characteristics and zircon LA- ICP -MS U-Pb dating of Galae skarn gold (copper) deposit, Tibet and its significance. Earth Science Frontiers, 18 (5),224-242.; Maniar, P. D., & Piccoli, P. M. (1989). Tectonic discrimination of granitoids. Geological Society of America Bulletin Journal, 101, 635-643.; Middlemost, E. A. K. (1985). Magmas and Magmatic Rocks. London: Longman. Pag. 266.; Pan, G. T., Mo, X. X., Hou, Z. Q., Zhu, D. C., Wang, L. Q., Li, G. M., . Liao, Z. L. (2007). Spatial-temporal framewoke of Gangdese Orogenic Belt and its evolution. Acta Petrologica Sinica, 22(3), 521-533.; Pearce, J. A., Harris, N. B. W., & Tindle, A. G. (1984). Trace element discrimination diagrams for the tectonic interpretation of granitic rocks. Journal of Petrology, 25,956-983.; Peccerillo, R., & Taylor, S. R. (1976). Geochemistry of eocene calc-alkaline volcanic rocks from the Kastamonu area, Northern Turkey. Contributions to Mineralogy and Petrology, 58, 63-81.; Plank, T. (2005). Constraints from Thorium/Lanthanum on sediment recycling at subduction zones and the evolution of the continents. Journal of Petrology, 46(5), 921-944.; Qu, X. M., Xin, H. B., Xu, W. Y., Yang, Z. S., & Li, Z. (2006). Discovery and significance of copper-bearing bimodal rock series in Coqin area of Tibet. Acta Petrologica Sinica, 22(3), 707-716.; Qu, X. M., Wang, R. J., Xin, H. B., Zhao, Y. Y., & Fan, X. T. (2009). Geochronology and geochemistry of igneous rocks related to the subduction of the Tethys oceanic plate along the Bangong Lake arc zone, the western Tibetan Plateau. Geochimica, 38(6), 523-535.; Rahim, I. A., & Usli, M. N. R. (2017). Slope stability study around kampung Kuala Abai, Kota Belud, Sabah, Malaysia. Malaysian Journal of Geoscience, 1(1), 38-42.; Ridzuan, A. A., Zahar, U. A. U., & Noor, N. A. M. (2017). Association of evacuation dimensions towards risk perception of the Malaysian students who studied at Jakarta, Medan, and Acheh in Indonesia. Malaysian Journal of Geoscience, 1(1), 07-12.; Sun, S. S., & Mchdonough, W. F. (1989). Chemical and isotopic systematics of oceanic basalts: implication for mantle composition and processes. In: Saunders, A. D. & Norry, M. J., (eds.). Magmatism in the Ocean Basins, Geological Society Special Pulication, 42, 303-345.; Tang, J. X., Zhang, Z., Li, Z. J., Sun, Y., Yao, X. F., Hu, Z. H., . He L. (2013). The Metallogensis, Deposit Model and Prospecting Direction of the Ga’erqiong-Galale Copper-gold Ore Field, Tibet. Acta Geoscientica Sinica, 34(4),385-394.; Wang, W., Zeng, L. S., Liu, J., Xiao, P., & Gao, L. (2013). The late Cretaceous andesite Shiying and determining the geochemical characteristics in Cuoqin, Tibet. Chinese Journal of Geology, 48(2), 484-500.; Xiao, Y. F., Sun, Y., Wang, Q., Li, Z. J., Wang, Y. L., Zhang, S. M., . He J. L. (2012). The discovery of rare intermetallic compounds (Ni-Cr-Fe, Cu-Zn) in the Garqiong copper-gold deposit of Tibet. Geology in China, 39(5), 1311-1317.; Yao, X. F., Tang, J. X., Li, Z. J., Deng, S. L., Ding, S., Hu, Z. H., & Zhang Z. (2012). Magma Origin of Two Plutons from Gaerqiong Copper-Gold Deposit and It's Geological Significance, Western Bangonghu-Nujiang Metallogenic Belt, Tibet: Implication from Hf Isotope Characteristics. Journal of Jilin University(Earth Science Edition), (S2): 188-197.; Yao, X. F., Tang, J. X., Li, Z. J., Deng, S. L., Ding, S., Hu, Z. H., & Zhang Z. (2013). The Redefinition of the Ore-forming Porphyrys Age in Ga’erqiong Skarn-type Gold—Copper Deposit, Western Bangong Lake-Nujiang River Metallogenic Belt, Xizang(Tibet). Geological Review, 59(1), 193-200.; You, L. K., & Rahim, I. A. (2017). Application of GSI system for slope stability studies on selected slopes of the crocker formation in Kota Kinabalu area, Sabah. Geological Behavior, 1(1), 10-12.; Zhang, Z., Tang, J. X., Chen, Y. C., Li, Z. J., Song, J. L., Yao, X. F., . Wang, H. X. (2013). Skarn mineral characteristics of the Gaerqiong Cu-Au deposit in Bangong Co-Nujiang River suture zone, Tibet. Acta Petrologica Et Mineralogica, 32(3), 305-317.; Zhao, Z. H. (2010). Trace element geochemistry of accessory minerals and its applications in petrogenesis and metallogenesis. Earth Science Frontiers, 17(1), 267-286.; Zhu, D. C., Mo, X. X., Zhao, Z. D., Niu, Y. L., Pan, G. T., Wang, L. Q., & Liao Z. L. (2009). Permian and Early Cretaceous tectonomagmatism in southern Tibet and Tethyan evolution: New perspective. Earth Science Frontiers, 16(2),001-020.; Zhu, D. C., Zhao, Z. D., & Niu, Y. L. (2001). The Lhasa terrane: record of a microcontinent and its histories of drift and growth. Earth and Planetary Science Letters, 301(1), 241-255.; Zorpi, M. J., Coulon, C., & Orsini, J. B. (1991). Hybridization between felsic and mafic magmas in calc-alkaline granitoids: a case study in northern Sardinia, Italy. Chemical Geology, 92, 45-86.; https://revistas.unal.edu.co/index.php/esrj/article/view/65192

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    وصف الملف: application/pdf

    Relation: https://revistas.unal.edu.co/index.php/esrj/article/view/65192; Universidad Nacional de Colombia Revistas electrónicas UN Earth Sciences Research Journal; Earth Sciences Research Journal; Ouyang, Yuan and Yang, Wunian and Huang, Hanxiao and Liu, Hong and Zhang, Jianlong and Zhang, Jianhua (2017) Metallogenic Dynamics Background of Ga’erqiong Cu-Au Deposit in Tibet, China. Earth Sciences Research Journal, 21 (2). pp. 59-65. ISSN 2339-3459; https://repositorio.unal.edu.co/handle/unal/63584; http://bdigital.unal.edu.co/64030/

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    المصدر: Connelly , J , Bollard , J F A & Bizzarro , M 2017 , ' Pb-Pb chronometry and the early Solar System ' , Geochimica et Cosmochimica Acta , vol. 201 , pp. 345-363 . https://doi.org/10.1016/j.gca.2016.10.044

    وصف الملف: application/pdf

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    Academic Journal

    المصدر: Skursch , O , Corfu , F , Tegner , C , Lesher , C E , Andreasen , R , Hagen-Peter , G A & Vervoort , J D 2022 , ' Zircon UPb chronology and Hf isotopes of the Lebowa Granite Suite and petrogenesis of the Bushveld Complex, South Africa ' , Contributions to Mineralogy and Petrology , vol. 177 , no. 2 , 26 . https://doi.org/10.1007/s00410-022-01889-7

    الاتاحة: https://pure.au.dk/portal/da/publications/zircon-upb-chronology-and-hf-isotopes-of-the-lebowa-granite-suite-and-petrogenesis-of-the-bushveld-complex-south-africa(cdf610ad-0c98-4080-a3fa-1864be514c92).html
    https://doi.org/10.1007/s00410-022-01889-7
    http://www.scopus.com/inward/record.url?scp=85124414226&partnerID=8YFLogxK

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