Hydrothermal titanite from the Chengchao iron skarn deposit: temporal constraints on iron mineralization, and its potential as a reference material for titanite U–Pb dating

Tschermaks mineralogische und petrographische Mitteilungen - Tập 111 Số 4 - Trang 593-608 - 2017
Hao Hu1, Jianwei Li2, Christopher R.M. McFarlane3
1State Key Laboratory of Geological Processes and Mineral Resources, China University of Geosciences (Wuhan), Wuhan, China
2State Key Laboratory of Geological Processes and Mineral Resources, China University of Geosciences (Wuhan), Wuhan 430074, China
3Department of Earth Sciences, University of New Brunswick, Fredericton, Canada

Tóm tắt

Từ khóa


Tài liệu tham khảo

Aleinikoff JN, Wintsch RP, Tollo RP, Unruh DM, Fanning CM, Schmitz MD (2007) Ages and origins of rocks of the Killingworth dome, south-central Connecticut: implications for the tectonic evolution of southern New England. Am J Sci 307:63–118

Dare SA, Barnes S, Beaudoin G, Méric J, Boutroy E, Potvin-Doucet C (2014) Trace elements in magnetite as petrogenetic indicators. Mineral Deposita 49:785–796

Deng XD, Li JW, Wen G (2014) Dating iron skarn mineralization using hydrothermal allanite-(La) U–Th–Pb isotopes by laser ablation ICP-MS. Chem Geol 382:95–110

El Korh A (2013) Ablation behavior and constraints on the U–Pb and Th–Pb geochronometers in titanite analyzed by quadrupole inductively coupled plasma mass spectrometry coupled to a 193nm excimer laser. Spectrochim Acta B 86:75–87

Frost BR, Chamberlain KR, Schumacher JC (2001) Sphene (titanite): phase relations and role as a geochronometer. Chem Geol 172:131–148

Gao XY, Zheng YF, Chen YX, Guo JL (2011) Geochemical and U–Pb age constraints on the occurrence of polygenetic titanites in UHP metagranite in the Dabie orogen. Lithos 136–139:93–108

Heaman LM (2009) The application of U–Pb geochronology to mafic, ultramafic and alkaline rocks: an evaluation of three mineral standards. Chem Geol 261:42–51

Hu H (2014) Mineralogical, geochemical, and geochronological constrains on the genesis of iron deposits in the Daye district, Eastern China. China University of Geosciences, Wuhan 210 pp (in Chinese with English abstract)

Hu H, Li JW, Lentz D, Ren Z, Zhao XF, Deng XD, Hall D (2014) Dissolution–reprecipitation process of magnetite from the Chengchao iron deposit: insights into ore genesis and implication for in-situ chemical analysis of magnetite. Ore Geol Rev 57:393–405

Hu H, Lentz D, Li JW, McCarron T, Zhao XF, Hall D (2015) Reequilibration processes in magnetite from iron skarn deposits. Econ Geol 110(1):1–8

Hu H, Li JW, McFarlane CR, Luo Y, McCarron T (2017) Textures, trace element compositions, and U–Pb ages of titanite from the Mangling granitoid pluton, East Qinling Orogen: Implications for magma mixing and destruction of the North China Craton. Lithos 284:50–68

Kempe U, Lehmann B, Wolf D, Rodionov N, Bombach K, Schwengfelder U, Dietrich A (2008) U–Pb SHRIMP geochronology of Th-poor, hydrothermal monazite: an example from the Llallagua tin-porphyry deposit, Bolivia. Geochim Cosmochim Ac 72:4352–4366

Krenn E, Putz H, Finger F, Paar WH (2011) Sulfur-rich monazite with high common Pb in ore-bearing schists from the Schellgaden mining district (Tauern window, eastern alps). Miner Petrol 102:51–62

Li JW, Zhao XF, Zhou MF, Vasconcelos P, Ma CQ, Deng XD, de Souza ZS, Zhao YX, Wu G (2008) Origin of the Tongshankou porphyry-skarn Cu-Mo deposit, eastern Yangtze craton, Eastern China: geochronological, geochemical, and Sr-Nd-Hf isotopic constraints. Mineral Deposita 43:315–336

Li JW, Zhao XF, Zhou MF, Ma CQ, de Souza ZS, Vasconcelos P (2009) Late Mesozoic magmatism from the Daye region, eastern China: U–Pb ages, petrogenesis, and geodynamic implications. Contrib Mineral Petr 157:383–409

Li JW, Deng XD, Zhou MF, Liu YS, Zhao XF, Guo JL (2010) Laser ablation ICP–MS titanite U–Th–Pb dating of hydrothermal ore deposits: a case study of the Tonglushan Cu–Fe–Au skarn deposit, SE Hubei Province, China. Chem Geol 270:56–67

Li JW, Vasconcelos PM, Zhou MF, Deng XD, Cohen B, Bi SJ, Zhao XF, Selby D (2014) Longevity of magmatic-hydrothermal systems in the Daye Cu–Fe–Au district, eastern China with implications for mineral exploration. Ore Geol Rev 57:375–392

McFarlane CR, Luo Y (2012) U–Pb geochronology using 193 nm excimer LA–ICP–MS optimized for in-situ accessory mineral dating in thin sections. Geosci Can 39:158–172

Pan Y, Dong P (1999) The lower Changjiang (Yangzi/Yangtze River) metallogenic belt, east central China: intrusion-and wall rock-hosted Cu–Fe–Au, Mo, Zn, Pb, Ag deposits. Ore Geol Rev 15:177–242

Paton C, Hellstrom J, Paul B, Woodhead J, Hergt J (2011) Iolite: freeware for the visualisation and processing of mass spectrometric data. J Anal Atom Spectrom 26:2508–2518

Petrus JA, Kamber BS (2012) VizualAge: a novel approach to laser ablation ICP–MS U–Pb geochronology data reduction. Geostand Geoanal Res 36:247–270

Romer RL, Martinsson O, Perdahl JA (1994) Geochronology of the Kiruna iron ores and hydrothermal alterations. Econ Geol 89:1249–1261

Schandl ES, Gorton MP (2004) A textural and geochemical guide to the identification of hydrothermal monazite: criteria for selection of samples for dating epigenetic hydrothermal ore deposits. Econ Geol 99:1027–1035

Scott DJ, St-Onge MR (1995) Constraints on Pb closure temperature in titanite based on rocks from the Ungava orogen, Canada: implications for U–Pb geochronology and P–T–t path determinations. Geology 23:1123–1126

Shimazaki H (1998) On the occurrence of silician magnetites. Resour Geol 48:23–29

Shu QA, Chen PL, Cheng JR (1992) The geology of iron and copper deposits in Eastern Hubei Province. Metallurgical Industry Press, Beijing 532 pp (in Chinese)

Simonetti A, Heaman LM, Chacko T, Banerjee NR (2006) In situ petrographic thin section U–Pb dating of zircon, monazite, and titanite using laser ablation–MC–ICP–MS. Int J Mass Spectrom 253:87–97

Slack JF, Aleinikoff JN, Belkin HE, Fanning CM, Ransom PW (2008) Mineral chemistry and SHRIMP U–Pb geochronology of Mesoproterozoic polycrase-titanite veins in the Sullivan Pb–Zn–Ag deposit, British Columbia. Can Mineral 46:361–378

Smith MP, Storey CD, Jeffries TE, Ryan C (2009) In situ U–Pb and trace element analysis of accessory minerals in the Kiruna district, Norrbotten, Sweden: new constraints on the timing and origin of mineralization. J Petrol 50:2063–2094

Spandler C, Hammerli J, Sha P, Hilbert-Wolf H, Hu Y, Roberts E, Schmitz M (2016) MKED1: a new titanite standard for in situ analysis of Sm–Nd isotopes and U–Pb geochronology. Chem Geol 425:110–126

Steven N, Creaser R, Wulff K, Kisters A, Eglington B, Miller J (2015) Implications of high-precision re–Os molybdenite dating of the Navachab orogenic gold deposit, Namibia. Geochem–Explor Env A 15:125–130

Storey CD, Jeffries TE, Smith M (2006) Common lead-corrected laser ablation ICP–MS U–Pb systematics and geochronology of titanite. Chem Geol 227:37–52

Storey CD, Smith MP, Jeffries TE (2007) In situ LA–ICP–MS U–Pb dating of metavolcanics of Norrbotten, Sweden: records of extended geological histories in complex titanite grains. Chem Geol 240:163–181

Sun SS, McDonough WF (1989) Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes. Geol Soc Lond Spec Publ 42:313-345

Sun JF, Yang JH, Wu FY, Li XH, Yang YH, Xie LW, Wilde SA (2010) Magma mixing controlling the origin of the early cretaceous Fangshan granitic pluton, North China craton: in situ U–Pb age and Sr-, Nd-, Hf- and O-isotope evidence. Lithos 120(3):421–438

Sun JF, Yang JH, Wu FY, Xie LW, Yang YH, Liu ZC, Li XH (2012) In situ U–Pb dating of titanite by LA–ICPMS. Chinese Sci Bull 57:2506–2516

Xie GQ, Mao JW, Li RL, Qü WJ, Pirajno F, Du AD (2007) Re–Os molybdenite and Ar–Ar phlogopite dating of Cu–Fe–Au–Mo (W) deposits in southeastern Hubei, China. Miner Petrol 90:249–270

Xie GQ, Mao JW, Zhao HJ (2011a) Zircon U–Pb geochronological and Hf isotopic constraints on petrogenesis of late Mesozoic intrusions in the southeast Hubei Province, Middle-lower Yangtze River. Lithos 125:693–710

Xie GQ, Mao JW, Zhao HJ, Wei KT, Jin SG, Pan HJ, Ke YF (2011b) Timing of skarn deposit formation of the Tonglushan ore district, southeastern Hubei Province, Middle-lower Yangtze River valley metallogenic belt and its implications. Ore Geol Rev 43:62–77

Xie GQ, Mao JW, Zhao HJ, Duan C, Yao L (2012) Zircon U–Pb and phlogopite 40Ar–39Ar age of the Chengchao and Jinshandian skarn Fe deposits, southeast Hubei Province, Middle-lower Yangtze River Valley metallogenic belt, China. Mineral Deposita 47:633–652

Xie GQ, Mao JW, Zhu QQ, Yao L, Li YH, Li W, Zhao HJ (2015) Geochemical constraints on cu–Fe and Fe skarn deposits in the Edong district, Middle-lower Yangtze River metallogenic belt, China. Ore Geol Rev 64:425–444

Yao PH, Wang KN, Du CL, Lin ZT, Song X (1993) Records of China's iron ore deposits. Metallurgic Industry, Beijing 662 pp (in Chinese)

Yao L, Xie GQ, Zhang CS, Liu JL, Yang HB, Zheng XW, Liu XF (2012) Mineral characteristics of skarns in the Chengchao large-scale Fe deposit of southeastern Hubei Province and their geological significance. Acta Petrol Sin 28:133–146

Zhai YS, Yao SZ, Ling XD (1992) Regularities of metallogenesis for copper (Gold) deposits in the middle and lower reaches of the Yangtze River area. Beijing. Geological Publishing House, Beijing, 1–120 pp (in Chinese)

Zhai YS, Xiong Y, Yao S, Lin X (1996) Metallogeny of copper and iron deposits in the eastern Yangtse craton, east-central China. Ore Geol Rev 11:229–248

Zhu QQ, Xie GQ, Jiang ZS, Sun JF, Li W (2014) Characteristics and in situ U–Pb dating of hydrothermal titanite by LA–ICPMS of the Jingshandian iron skarn deposit, Hubei Province. Acta Pet Sin 30:1322–1338 (in Chinese with English abstract)