Mineralogical and geochemical study of hydrothermal dolomite from the Daliang zinc deposit in Guizhou, Southwest China: new evidence for the genesis
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[1] R. Hu,et al. Trace element characteristics of magnetite: Constraints on the genesis of the Lengshuikeng Ag–Pb–Zn deposit, China , 2020 .
[2] T. Gan,et al. Early Silurian Wuchuan–Sihui–Shaoguan exhalative sedimentary pyrite belt, South China: constraints from zircon dating for K-bentonite of the giant Dajiangping deposit , 2020, Acta Geochimica.
[3] D. Banks,et al. Geological, geochemical and microthermometric characteristics of the Hakkari region Zn-Pb deposits, SE Turkey , 2020 .
[4] L. Ye,et al. Genesis of the Maoping carbonate-hosted Pb–Zn deposit, northeastern Yunnan Province, China: evidences from geology and C–O–S–Pb isotopes , 2020, Acta Geochimica.
[5] Yucai Song,et al. New Mapping of the World-Class Jinding Zn-Pb Deposit, Lanping Basin, Southwest China: Genesis of Ore Host Rocks and Records of Hydrocarbon-Rock Interaction , 2020, Economic Geology.
[6] JianGuo Gao,et al. Geology, isotope geochemistry, and geochronology of the Huamuqing carbonate-hosted Pb–Zn deposit, southwest China , 2020, Arabian Journal of Geosciences.
[7] H. Tian,et al. Paleo-environmental variation and its control on organic matter enrichment of black shales from shallow shelf to slope regions on the Upper Yangtze Platform during Cambrian Stage 3 , 2020 .
[8] Kang Wang,et al. Fluid inclusions and C–H–O–S–Pb isotope systematics of the Caixiashan sediment-hosted Zn-Pb deposit, eastern Tianshan, northwest China: Implication for ore genesis , 2020 .
[9] K. Luo,et al. New insights into the evolution of Mississippi Valley-Type hydrothermal system: A case study of the Wusihe Pb-Zn deposit, South China, using quartz in-situ trace elements and sulfides in situ S-Pb isotopes , 2019 .
[10] Xuanyu Yang,et al. Study on the surface particle distribution characteristics of silt with different moisture content , 2019, Arabian Journal of Geosciences.
[11] Shucheng Tan,et al. In-situ S and Pb isotope constraints on an evolving hydrothermal system, Tianbaoshan Pb-Zn-(Cu) deposit in South China , 2019 .
[12] Z. Hou,et al. Sediment-hosted Pb–Zn deposits in the Tethyan domain from China to Iran: Characteristics, tectonic setting, and ore controls , 2019, Gondwana Research.
[13] Chong Xu,et al. Sources and ore-forming fluid pathways of carbonate-hosted Pb–Zn deposits in Southwest China: implications of Pb–Zn–S–Cd isotopic compositions , 2019, Mineralium Deposita.
[14] Yan Liu,et al. Fluid inclusion constraints on the hydrothermal evolution of the Dalucao Carbonatite-related REE deposit, Sichuan Province, China , 2019, Ore Geology Reviews.
[15] L. Ye,et al. Trace Element Contents in Sphalerite from the Nayongzhi Zn-Pb Deposit, Northwestern Guizhou, China: Insights into Incorporation Mechanisms, Metallogenic Temperature and Ore Genesis , 2018, Minerals.
[16] R. Shaw,et al. REE mineralisation within the Ditrău Alkaline Complex, Romania: Interplay of magmatic and hydrothermal processes , 2018, Lithos.
[17] L. Ye,et al. Genesis of fahlore in the Tianbaoshan lead–zinc deposit, Sichuan Province, China: a scanning electron microscopy–energy dispersive spectroscopy study , 2018, Acta Geochimica.
[18] Mei-Fu Zhou,et al. Late Paleozoic SEDEX deposits in South China formed in a carbonate platform at the northern margin of Gondwana , 2018 .
[19] Wei-dong Sun,et al. Ore-fluid geochemistry and metallogeny of the Dunde iron–zinc deposit in western Tianshan, Xinjiang, China: Evidence from fluid inclusions, REE and C–O–Sr isotopes of calcite , 2016, Ore Geology Reviews.
[20] Tao Wu,et al. New insights into the metallogeny of MVT Zn-Pb deposits: A case study from the Nayongzhi in South China, using field data, fluid compositions, and in situ S-Pb isotopes , 2018 .
[21] D. Sangster. Toward an integrated genetic model for vent-distal SEDEX deposits , 2018, Mineralium Deposita.
[22] E. Oelkers,et al. The experimental determination of REE partition coefficients in the water-calcite system , 2017 .
[23] Matthew D. Ledvina. Fluid inclusion constraints on the hydrothermal processes responsible for Cu-Au mineralization in the Ertsberg East Skarn System, Papua, Indonesia , 2017 .
[24] Wenxiang Zhang,et al. Petrogenesis of the Huashanguan A-type granite complex and its implications for the early evolution of the Yangtze Block , 2017 .
[25] Hong-Peng Fan,et al. Geochronologic and geochemical constraints of the petrogenesis of Permian mafic dykes in the Wuding area, SW China: Implications for Fe–Ti enrichment in mafic rocks in the ELIP , 2017 .
[26] Ke‐yong Wang,et al. Genesis of the Tianbaoshan Pb–Zn–Cu–Mo polymetallic deposit in eastern Jilin, NE China: Constraints from fluid inclusions and C–H–O–S–Pb isotope systematics , 2017 .
[27] Yuxu Zhang,et al. Cadmium and sulfur isotopic compositions of the Tianbaoshan Zn–Pb–Cd deposit, Sichuan Province, China , 2016 .
[28] Zhilong Huang,et al. Geological, rare earth elemental and isotopic constraints on the origin of the Banbanqiao Zn–Pb deposit, southwest China , 2015 .
[29] J. Brugger,et al. Zinc complexation in chloride-rich hydrothermal fluids (25-600°C): A thermodynamic model derived from ab initio molecular dynamics , 2015 .
[30] J. Hoefs. Stable Isotope Geochemistry , 2015 .
[31] R. Hu,et al. Microscale sulfur isotopic compositions of sulfide minerals from the Jinding Zn–Pb deposit, Yunnan Province, Southwest China , 2014 .
[32] X. Jian,et al. In situ geochemistry of Lower Paleozoic dolomites in the northwestern Tarim basin: Implications for the nature, origin, and evolution of diagenetic fluids , 2014 .
[33] J. Horita. Oxygen and carbon isotope fractionation in the system dolomite–water–CO2 to elevated temperatures , 2014 .
[34] E. Carranza,et al. Nature, diversity and temporal-spatial distributions of sediment-hosted Pb–Zn deposits in China , 2014 .
[35] Zhilong Huang,et al. The origin of the Maozu carbonate-hosted Pb–Zn deposit, southwest China: Constrained by C–O–S–Pb isotopic compositions and Sm–Nd isotopic age , 2013 .
[36] Jiaxi Zhou,et al. Ore genesis of the Tianbaoshan carbonate-hosted Pb–Zn deposit, Southwest China: geologic and isotopic (C–H–O–S–Pb) evidence , 2013 .
[37] Minghua Zheng,et al. The Woxi W–Sb–Au deposit in Hunan, South China: An example of Late Proterozoic sedimentary exhalative (SEDEX) mineralization , 2012 .
[38] A. Pourmand,et al. A novel extraction chromatography and MC-ICP-MS technique for rapid analysis of REE, Sc and Y: Revising CI-chondrite and Post-Archean Australian Shale (PAAS) abundances , 2012 .
[39] Yulong Yang,et al. The Niujiaotang Cd-rich zinc deposit, Duyun, Guizhou province, southwest China: ore genesis and mechanisms of cadmium concentration , 2012, Mineralium Deposita.
[40] L. Yuping,et al. Trace and minor elements in sphalerite from base metal deposits in South China: A LA-ICPMS study , 2011 .
[41] W. Pohl. Economic Geology Principles and Practice: Metals, Minerals, Coal and Hydrocarbons - Introduction to Formation and Sustainable Exploitation of Mineral Deposits , 2011 .
[42] I. Clark. Stable Isotope Geochemistry , 2011 .
[43] W. Changming,et al. Sediment‐hosted Pb‐Zn Deposits in Southwest Sanjiang Tethys and Kangdian Area on the Western Margin of Yangtze Craton , 2010 .
[44] Jin-Hui Yang,et al. Late Paleoproterozoic to early Mesoproterozoic Dongchuan Group in Yunnan, SW China: Implications for tectonic evolution of the Yangtze Block , 2010 .
[45] T. Driesner,et al. The system H2O–NaCl. Part I: Correlation formulae for phase relations in temperature–pressure–composition space from 0 to 1000 °C, 0 to 5000 bar, and 0 to 1 XNaCl , 2007 .
[46] J. Sinclair,et al. Revisiting the “Yanbian Terrane”: Implications for Neoproterozoic tectonic evolution of the western Yangtze Block, South China , 2006 .
[47] Mei-Fu Zhou,et al. The Yanbian Terrane (Southern Sichuan Province, SW China): A Neoproterozoic arc assemblage in the western margin of the Yangtze Block , 2006 .
[48] G. Markl,et al. REE systematics in hydrothermal fluorite , 2005 .
[49] G. Garven,et al. Sediment-hosted lead-zinc deposits: A global perspective , 2005 .
[50] S. Kesler. Ore-Forming Fluids , 2005 .
[51] Y. Kharaka,et al. Deep Fluids in the Continents: I. Sedimentary Basins , 2003 .
[52] Yuan-long Zhao,et al. Submarine-hydrothermal exhalative ore layers in black shales from South China and associated fossils — insights into a Lower Cambrian facies and bio-evolution , 2001 .
[53] Shao Shu-xun. Geochemistry of mineralizing fluid of Cd-rich zinc deposit: Taking Niujiaotang Cd-rich zinc deposit, Duyun, Guizhou for example , 2000 .
[54] Xian‐Hua Li. Geochemistry of the Longsheng Ophiolite from the southern margin of Yangtze Craton, SE China , 1997 .
[55] W. McDonough,et al. The composition of the Earth , 1995 .
[56] P. Möller,et al. Rare earth element fractionation in metamorphogenic hydrothermal calcite, magnesite and siderite , 1992 .
[57] Jay M. Gregg,et al. Fluid-Inclusion Studies of Regionally Extensive Epigenetic Dolomites, Bonneterre Dolomite (Cambrian), Southeast Missouri: Evidence of Multiple Fluids during Dolomitization and Lead-Zinc Mineralization , 1992 .
[58] S. Taylor,et al. The continental crust: Its composition and evolution , 1985 .
[59] L. Cathles,et al. Thermal constraints on the formation of mississippi valley-type lead-zinc deposits and their implications for episodic basin dewatering and deposit genesis , 1983 .
[60] D. Sverjensky. The origin of a mississippi valley-type deposit in the Viburnum Trend, Southeast Missouri , 1981 .
[61] M. Clynne,et al. Freezing point depression of aqueous sodium chloride solutions , 1978 .
[62] H. Taylor. The Application of Oxygen and Hydrogen Isotope Studies to Problems of Hydrothermal Alteration and Ore Deposition , 1974 .
[63] H. Ohmoto. Systematics of Sulfur and Carbon Isotopes in Hydrothermal Ore Deposits , 1972 .