The effect of hydrothermal fluids on Ordovician carbonate rocks, southern Ordos Basin, China
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[1] H. Baioumy,et al. Mineralogical and geochemical characteristics of the Paleozoic source rocks, Akkas gas field, Western Desert of Iraq: Implications for their origin, maturation and Ordovician-Silurian transition , 2020 .
[2] F. Sun,et al. Triassic gold-silver metallogenesis in Qingchengzi orefield, North China Craton: Perspective from fluid inclusions, REE and H–O–S–Pb isotope systematics , 2020, Ore Geology Reviews.
[3] J. Hower,et al. Organic associations of non-mineral elements in coal: A review , 2020 .
[4] Jianguo Li,et al. Mineralogy, geochemistry, and fluid action process of uranium deposits in the Zhiluo Formation, Ordos Basin, China , 2019, Ore Geology Reviews.
[5] S. Dai,et al. Enrichment of critical elements (Nb-Ta-Zr-Hf-REE) within coal and host rocks from the Datanhao mine, Daqingshan Coalfield, northern China , 2019, Ore Geology Reviews.
[6] Jianguo Li,et al. Uranium occurrence state in the Tarangaole area of the Ordos Basin, China: Implications for enrichment and mineralization , 2019 .
[7] Chengyan Lin,et al. Petrological and geochemical constraints on fluid types and formation mechanisms of the Ordovician carbonate reservoirs in Tahe Oilfield, Tarim Basin, NW China , 2019, Journal of Petroleum Science and Engineering.
[8] J. Spangenberg,et al. Petroleum as source and carrier of metals in epigenetic sediment-hosted mineralization , 2019, Scientific Reports.
[9] J. Kinnaird,et al. Mineralizing fluids of the supergene-enriched Mashitu South Cu-Co deposit, Katanga Copperbelt, DRC , 2019, Ore Geology Reviews.
[10] C. Cai,et al. Alteration of solid bitumen by hydrothermal heating and thermochemical sulfate reduction in the Ediacaran and Cambrian dolomite reservoirs in the Central Sichuan Basin, SW China , 2019, Precambrian Research.
[11] D. Lentz,et al. Geochemical, isotopic, and fluid inclusion signatures of Zn-Pb mineralization in the Tiran mining district, Isfahan, Sanandaj-Sirjan zone (Iran) , 2018, Ore Geology Reviews.
[12] S. Horn,et al. Textural characteristics and trace element distribution in carbonate-hosted Zn-Pb-Ag ores at the Paleoproterozoic Black Angel deposit, central West Greenland , 2018, Mineralium Deposita.
[13] Daofeng Zhang,et al. Paleogeomorphy evolution of the Ordovician weathering crust and its implication for reservoir development, eastern Ordos Basin , 2018 .
[14] Kui-Feng Yang,et al. Fenitization in the giant Bayan Obo REE-Nb-Fe deposit: Implication for REE mineralization , 2018 .
[15] T. Fan,et al. Genesis of Upper Cambrian-Lower Ordovician dolomites in the Tahe Oilfield, Tarim Basin, NW China: Several limitations from petrology, geochemistry, and fluid inclusions , 2018 .
[16] A. Boyce,et al. Micro-scale sulfur isotope and chemical variations in sphalerite from the Bleiberg Pb-Zn deposit, Eastern Alps, Austria , 2017 .
[17] A. Derkowski,et al. Influence of palaeoweathering on trace metal concentrations and environmental proxies in black shales , 2017 .
[18] M. Fayek,et al. Hydrothermal mineralization in the sandstone–hosted Hangjinqi uranium deposit, North Ordos Basin, China , 2017 .
[19] Yuandong Wu,et al. Characteristics of hydrothermal sedimentation process in the Yanchang Formation, south Ordos Basin, China: Evidence from element geochemistry , 2016 .
[20] François Renard,et al. Dissolution-precipitation reactions controlling fast formation of dolomite under hydrothermal conditions , 2016 .
[21] S. Barker,et al. Isotopic, Chemical, and Textural Evidence for Pervasive Calcite Dissolution and Precipitation Accompanying Hydrothermal Fluid Flow in Low-Temperature, Carbonate-Hosted, Gold Systems , 2016 .
[22] L. Hinnov,et al. A record of astronomically forced climate change in a late Ordovician (Sandbian) deep marine sequence, Ordos Basin, North China , 2016 .
[23] Xiaomei Wang,et al. New insights into the formation mechanism of high hydrogen sulfide–bearing gas condensates: Case study of Lower Ordovician dolomite reservoirs in the Tazhong uplift, Tarim Basin , 2016 .
[24] C. Ward,et al. A review of anomalous rare earth elements and yttrium in coal , 2016 .
[25] P. Kukla,et al. Impacts of hydrothermal dolomitization and thermochemical sulfate reduction on secondary porosity creation in deeply buried carbonates: A case study from the Lower Saxony Basin, northwest Germany , 2016 .
[26] C. Xue,et al. The ore-forming process of the Maoping Pb–Zn deposit, northeastern Yunnan, China: Constraints from cathodoluminescence (CL) petrography of hydrothermal dolomite , 2015 .
[27] Baoshou Zhang,et al. Application of sulfur and carbon isotopes to oil–source rock correlation: A case study from the Tazhong area, Tarim Basin, China , 2015 .
[28] Xuefeng Zhang,et al. The fate of CO2 derived from thermochemical sulfate reduction (TSR) and effect of TSR on carbonate porosity and permeability, Sichuan Basin, China , 2015 .
[29] X. Pang,et al. Origin and quantitative source assessment of deep oils in the Tazhong Uplift, Tarim Basin , 2015 .
[30] I. Probert,et al. Calibration of stable isotope composition of Thoracosphaera heimii (dinoflagellate) calcite for reconstructing paleotemperatures in the intermediate photic zone , 2014 .
[31] Wenzhi Zhao,et al. The porosity origin of dolostone reservoirs in the Tarim, Sichuan and Ordos basins and its implication to reservoir prediction , 2014, Science China Earth Sciences.
[32] Zhao Zhenyu,et al. Natural gas accumulation and models in Ordovician carbonates, Ordos Basin, NW China , 2014 .
[33] E. Dubinina,et al. Sources and fluid regime of quartz-carbonate veins at the Sukhoi Log gold deposit, Baikal-Patom Highland , 2014, Petrology.
[34] D. Morrow. Zebra and boxwork fabrics in hydrothermal dolomites of northern Canada: Indicators for dilational fracturing, dissolution or in situ replacement? , 2014 .
[35] G. Dix,et al. Hydrothermal Dolomitization of Upper Ordovician Limestone, Central-East Canada: Fluid Flow in a Craton-Interior Wrench-Fault System Likely Driven by Distal Taconic Tectonism , 2014, The Journal of Geology.
[36] A. Stefánsson,et al. Thermodynamics of Geothermal Fluids , 2018 .
[37] Zhongjun Zhao,et al. Vertical zonation of weathered crust ancient karst and reservoir evaluation and prediction—A case study of M55–M51 sub-members of Majiagou Formation in gas fields, central Ordos Basin, NW China , 2013 .
[38] A. Putnis,et al. Hydrothermal replacement of Aragonite by Calcite: interplay between replacement, fracturing and growth , 2013 .
[39] Guochun Zhao,et al. Lithotectonic elements of Precambrian basement in the North China Craton: Review and tectonic implications , 2013 .
[40] E. Shock,et al. Thermodynamics of Organic Transformations in Hydrothermal Fluids , 2013 .
[41] A. Stefánsson,et al. Mineral Solubility and Aqueous Speciation Under Hydrothermal Conditions to 300 °C – The Carbonate System as an Example , 2013 .
[42] A. Navrotsky,et al. Thermodynamics of Carbonates , 2013 .
[43] N. Qiu,et al. Thermal evolution and maturation of lower Paleozoic source rocks in the Tarim Basin, northwest China , 2012 .
[44] Xinshan Wei,et al. Evolution of the Ordovician top boundary and its relationship to reservoirs' development, Ordos Basin , 2012 .
[45] Z. Rahim,et al. Diverse fracture properties and their impact on performance in conventional and tight-gas reservoirs, Saudi Arabia: The Unayzah, South Haradh case study , 2012 .
[46] B. Rusk. Cathodoluminescent textures and trace elements in hydrothermal quartz , 2012 .
[47] A. Saller,et al. Partial dolomitization of a Pennsylvanian limestone buildup by hydrothermal fluids and its effect on reservoir quality and performance , 2011 .
[48] S. Jiang,et al. Sr–Nd isotopic and REE geochemical constraints on the provenance of fine-grained sands in the Ordos deserts, north-central China , 2011 .
[49] P. Peng,et al. The role of metal sulfates in thermochemical sulfate reduction (TSR) of hydrocarbons: Insight from the yields and stable carbon isotopes of gas products , 2011 .
[50] R. M. Prol-Ledesma,et al. Morphology of pyrite in particulate matter from shallow submarine hydrothermal vents , 2010 .
[51] A. Hofmann,et al. Carbonated mantle sources for Cenozoic intra-plate alkaline basalts in Shandong, North China , 2010 .
[52] M. Tucker,et al. Carbonate Mineralogy and Chemistry , 2009 .
[53] A. Putnis. Mineral Replacement Reactions , 2009 .
[54] I. Bindeman,et al. Oxygen isotope heterogeneity and disequilibria of olivine crystals in large volume Holocene basalts from Iceland: Evidence for magmatic digestion and erosion of Pleistocene hyaloclastites , 2008 .
[55] L. Diamond,et al. Modification of gas speciation in quartz-hosted fluid inclusions by stray laser radiation during LA-ICPMS analysis , 2008 .
[56] T. Guo,et al. Evidence for multiple stages of oil cracking and thermochemical sulfate reduction in the Puguang gas field, Sichuan Basin, China , 2008 .
[57] Ling Youzhu,et al. Tectonic evolution of the western margin of the Ordos Basin (Central China) , 2008 .
[58] S. Wilde,et al. Petrogenesis of an Alkali Syenite–Granite–Rhyolite Suite in the Yanshan Fold and Thrust Belt, Eastern North China Craton: Geochronological, Geochemical and Nd–Sr–Hf Isotopic Evidence for Lithospheric Thinning , 2007 .
[59] I. Al-Aasm,et al. Burial dolomitization and dissolution of Upper Jurassic Abenaki platform carbonates, Deep Panuke reservoir, Nova Scotia, Canada , 2006 .
[60] Langhorne B. Smith. Origin and reservoir characteristics of Upper Ordovician Trenton–Black River hydrothermal dolomite reservoirs in New York , 2006 .
[61] Peter K. Swart,et al. Tectonic-hydrothermal brecciation associated with calcite precipitation and permeability destruction in Mississippian carbonate reservoirs, Montana and Wyoming , 2006 .
[62] J. Dai,et al. Stable carbon isotope compositions and source rock geochemistry of the giant gas accumulations in the Ordos Basin, China , 2005 .
[63] Wei Li,et al. Tectonic and stratigraphic controls of hydrocarbon systems in the Ordos basin: A multicycle cratonic basin in central China , 2005 .
[64] Erik Flügel,et al. Microfacies of Carbonate Rocks: Analysis, Interpretation and Application , 2004 .
[65] J. López-Cuevas,et al. The conversion of mineral celestite to strontianite under alkaline hydrothermal conditions , 2004 .
[66] S. Bottrell,et al. Thermochemical sulphate reduction and the generation of hydrogen sulphide and thiols (mercaptans) in Triassic carbonate reservoirs from the Sichuan Basin, China , 2003 .
[67] T. Monecke,et al. Genetic significance of the trace element content in metamorphic and hydrothermal quartz: a reconnaissance study , 2002 .
[68] T. Wagner,et al. Fluid–rock interaction processes related to hydrothermal vein-type mineralization in the Siegerland district, Germany: implications from inorganic and organic alteration patterns , 2002 .
[69] C. Cai,et al. Thermochemical sulphate reduction in Cambro-Ordovician carbonates in Central Tarim , 2001 .
[70] Jiaren Ye,et al. Petroleum geological dynamics of Lower Paleozoic in the Ordos Basin, northwest China , 2000 .
[71] Fang Hao,et al. Thermal Regime, Interreservoir Compositional Heterogeneities, and Reservoir-Filling History of the Dongfang Gas Field, Yinggehai Basin, South China Sea: Evidence for Episodic Fluid Injections in Overpressured Basins? , 2000 .
[72] R. H. Worden,et al. THE EFFECTS OF THERMOCHEMICAL SULFATE REDUCTION UPON FORMATION WATER SALINITY AND OXYGEN ISOTOPES IN CARBONATE GAS RESERVOIRS , 1996 .
[73] P. Möller,et al. Rare earth element fractionation in metamorphogenic hydrothermal calcite, magnesite and siderite , 1992 .
[74] Vijai Shukla. Epigenetic Dolomitization and the Origin of Xenotopic Dolomite Texture: DISCUSSION , 1986 .
[75] D. Sibley,et al. Epigenetic Dolomitization and the Origin of Xenotopic Dolomite Texture , 1984 .
[76] N. Møller,et al. The prediction of mineral solubilities in natural waters: The Na-K-Mg-Ca-H-Cl-SO4-OH-HCO3-CO3-CO2-H2O system to high ionic strengths at 25°C , 1984 .