• 中国出版政府奖提名奖

    中国百强科技报刊

    湖北出版政府奖

    中国高校百佳科技期刊

    中国最美期刊

    Tang Ao, Li Guanglai, Su Ye, Guo Guolin, Wei Xinglin, Liu Zhenyu, Chen Guangxu, 2017. EMPA Chemical U-Th-Pb Dating of Uraninite in Ziyunshan Granite, Centre Jiangxi Province. Earth Science, 42(3): 378-388. doi: 10.3799/dqkx.2017.028
    Citation: Tang Ao, Li Guanglai, Su Ye, Guo Guolin, Wei Xinglin, Liu Zhenyu, Chen Guangxu, 2017. EMPA Chemical U-Th-Pb Dating of Uraninite in Ziyunshan Granite, Centre Jiangxi Province. Earth Science, 42(3): 378-388. doi: 10.3799/dqkx.2017.028

    EMPA Chemical U-Th-Pb Dating of Uraninite in Ziyunshan Granite, Centre Jiangxi Province

    doi: 10.3799/dqkx.2017.028
    • Received Date: 2016-08-30
    • Publish Date: 2017-03-15
    • The Ziyunshan peraluminous granite, located in central Jiangxi Province is closely related to uranium and tungsten mineralization. In order to obtain the accurate age of this granite, the electron microscope, SEM and EMPA were firstly used to study uraninites in the Ziyunshan granite in this study. Results show that most of the uraninites are wrapped in biotite or muscovitized biotite, and only one is surrounded by pyrite. Some uraninite grains have been fractured or altered, which indicates uraninite is one of the most important uranium source minerals of granite type uranium deposits in this area. Five uraninite grains electron microprobe U-Th-Pb dating results in the Jiaokeng unit (J3J) are between 154.5 Ma and 168.9 Ma, the weighted average age is 161.8±2.4 Ma (MSWD=0.26, n=26). Chemical ages of three uraninite grains in the Miaoqian unit (J3M) are between 152.8 Ma and 164.7 Ma, the weighted average age is 159.7±3.2 Ma (MSWD=0.2, n=15). Chemical ages obtained here are very consistent with W-bearing granites in the South China. It is confirmed that uraninite EMPA chemical dating is a suitable method for U-fertile peraluminous granites.

       

    • 致谢: 在野外调查过程中,得到了江西省有色地质勘查局、徐山钨矿、松聚源钨矿等单位的大力支持,在此表示诚挚谢意!同时,对各位评审专家提出宝贵意见表示感谢!
    • Bowles, J.F.W., 1990.Age Dating of Individual Grains of Uraninite in Rocks from Electron Microprobe Analyses.Chemical Geology, 83(S1-2):47-53.doi: 10.1016/0009-2541(90)90139-X
      Butera, K.M., Williams, I.S., Blevin, P.L., et al., 2001.Zircon U-Pb Dating of Early Palaeozoic Monzonitic Intrusives from the Goonumbla Area, New South Wales.Australian.Journal of Earth Science, 48(3):457-464.doi: 10.1046/j.1440-0952.2001.00870.x
      Cameron-Schimann, M., 1962.Electron Microprobe Study of Uranium Minerals and It's Application to Some Canadian Deposits [Microform].Journal of Electroanalytical Chemistry, 4(1):51-58. doi: 10.1016/0022-0728(62)80027-8
      Chakoumakos, B.C., Murakami, T., Lumpkin, G.R., et al., 1987.Alpha-Decay-Induced Fracturing in Zircon:The Transition from the Crystalline to the Metamict State.Science, 236(4808):1556-1559.doi: 10.1126/science.236.4808.1556
      Chen, N.S., Sun, M., Wang, Q.Y., et al., 2007.EMP Chemical Ages of Monazites from Central Zone of the Eastern Kunlun Orogen:Records of Multi-Tectonometamorphic Events.Chinese Science Bulletin, 52(16):2252-2263(in Chinese). doi: 10.1007/s11434-007-0299-5
      Chen, P.R., Hua, R.M., Zhang, B.T.et al., 2002.Early Yanshanian Post-Orogenic Granitoids in the Nanling Region-Petrological Constraints and Geodynamic Settings.Science in China (Series D), 32(4):279-287 (in Chinese).
      Cocherie, A., Albarede, F., 2001.An Improved U-Th-Pb Age Calculation for Electron Microprobe Dating of Monazite.Geochimica et Cosmochimica Acta, 65(65):4509-4522.doi: 10.1016/S0016-7037(01)00753-0
      Cocherie, A., Be., M.E., Legendre, O., et al., 2005.Electron Microprobe Dating as a Tool for Determining the Closure of Th-U-Pb Systems in Migmatitic Monazites.American Mineralogist, 90(4):607-618. doi: 10.2138/am.2005.1303
      Cocherie, A., Legender, O., 2007.Potential Minerals for Determining U-Th-Pb Chemical Age Using Electron Microprobe.Lithos, 93(93):288-309.doi: 10.1016/j.lithos.2006.03.069
      Cross, A., Jaireth, S., Rapp, R., 2011.Reconnaissance-Style EPMA Chemical U-Th-Pb Dating of Uraninite.Australian Journal of Earth Sciences, 58(6):675-683.doi: 10.1080/08120099.2011.598190
      Deer, W.A., Howie, R.A., Zussman, J., 1992.An Introduction to the Rock-Forming Minerals.Longman Scientific and Technical, Essex, 696.
      Ewing, R.C., 1994.The Metamict State:1993—The Centennial.Nuclear Instruments & Methods in Physics Research, 91(1-4):22-29.doi:10.1016/0168-583X (94)96186-7
      Fayek, M., Janeczek, J., Ewing, R.C., 1997.Mineral Chemistry and Oxygen Isotopic Aanalyses of Uraninite, Pitchblende and Uranium Alteration Minerals from the Cigar Lake Deposit, Saskatchewan, Canada.Applied Geochemistry, 12(5):549-565.doi:10.1016/S0883-2927 (97)00032-2
      Förster, H.J., Rhede, D., Stein, H.J., et al., 2012.Paired Uraninite and Molybdenite Dating of the Königshain Granite:Implications for the Onset of Late-Variscan Magmatism in the Lausitz Block.International Journal of Earth Sciences, 101(1):57-67.doi: 10.1007/s00531-010-0631-1
      Gao, Y.Y., Li, X.H., Griffin, W.L., et al., 2014.Screening Criteria for Reliable U-Pb Geochronology and Oxygen Isotope Analysis in Uranium-Rich Zircons:A Case Study from the Suzhou A-Type Granites, SE China.Lithos, 192(4):180-191. http://cpfd.cnki.com.cn/Article/CPFDTOTAL-DZDQ201501003009.htm
      Ge, X.K., Qin, M.K., Fan, G., 2011.Review on the Application of Electron Microprobe Chemical Dating Method in the Age Research of Uraninite/Pitchblende.World Nuclear Geoscience, 28(1):55-62 (in Chinese with English abstract).
      Guo, C.L., Wang, D.H., Chen, Y.C., et al., 2007.Precise Zircon SHRIMP U-Pb and Quartz Vein Rb-Sr Dating of Mesozoic Taoxikeng Tungsten Polymetal Lic Deposit in Southern Jiangxi.Mineral Deposits, 26(4):432-442 (in Chinese with English abstract).
      Guo, G.L., Zhang, Z.S., Liu, X.D., et al., 2012.EPMA Chemical U-Th-Pb Dating of Uraninite in Guangshigou Uranium Deposit.Journal of East China Institute of Technology, 35(4):309-314 (in Chinese with English abstract).
      Horn, I., Rudnick, R.L, McDonough, W.F., 2000.Precise Elemental and Isotope Ratio Determination by Simultaneous Solution Nebulization and Laser Ablation-ICP-MS:Application to U-Pb Geochronology.Chemical.Geology, 167(3):281-301.doi:10.1016/S0009-2541(99) 00168-0
      Hua, R.M., Chen, P.R., Zhang, W.L., et al., 2005.Metallogeneses and Their Geodynamic Settings Related to Mesozoic Granitoids in the Nan Ling Range.Geological Journal of China Universities, 11(3):291-304 (in Chinese with English abstract).
      Kempe, U., 2003.Precise Electron Microprobe Age Determination in Altered Uraninite:Consequences on the Intrusion Age and the Metallogenic Significance of the Kirchberg Granite (Erzgebirge, Germany).Contributions to Mineralogy and Petrology, 145(1):107-118.doi: 10.1007/s00410-002-0439-5
      Kotzer, T.G., Kyser, T.K., 1993.O, U, and Pb Isotopic and Chemical Variations in Uraninite:Implications for Setermining the Temporal and Fluid History of Ancient Terrains.American Mineralogist, 78:1262-1274. https://www.researchgate.net/publication/235999500_O_U_and_Pb_Isotopic_and_Chemical_Variations_in_Uraninite_-_Implications_for_Determining_the_Temporal_and_Fluid_History_of_Ancient_Terrains
      Li, G.L., Hua, R.M., Wei, X.L., et al., 2014.Re-Os Isotopic Ages of Two Types of Molybdenite from Zhangdongkeng Tungsten Deposit in Southern Jiangxi Province and Their Geologic Implications.Earth Science, 39(2):165-173 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DQKX201402005.htm
      Li, G.L., Hua, R.M., Wei, X.L., et al., 2011.Rb-Sr Isochron Age of Single-Grain Muscovite in the Xu Shan W-Cu Deposit, Central Jiang Xi, and Its Geological Signficence.Earth Science, 36(2):382-388 (in Chinese with English abstract).
      Li, H.Q., Lu, Y.F., Wan, G., Deng, H., et al., 2006.Dating of the Rock-Forming and Ore Forming Ages and Their Geological Significances in the Furong Ore-Field, Qitian Mountain, Hunan.Geological Review, 52(1):113-121 (in Chinese with English abstract).
      Li, J.D., Bai, D.Y., Wu, G.Y., et al., 2005.Zircon SHRIMP Dating of the Qitianling Granite, Chenzhou, Southern, Hunan, and Its Geological Significance.Geological Billetin of China, 24(5):411-414 (in Chinese with English abstract).
      Li, Q.L., Li, X.H., Lan, Z.W., et al., 2013.Monazite and Xenotime U-Th-Pb Geochronology by Ionmicroprobe:Dating Highly Fractionated Granites at Xihuashan Tungsten Mine, SE China.Contributions to Mineralogy and Petrology, 166(1):65-80.doi: 10.1007/s00410-013-0865-6
      Li, X.H., Liu, X.M., Liu, Y.S., et al., 2015., Accuracy of LA-ICPMS Zircon U-Pb Age Determination:An Inter-Laboratory Comparison.Science in China (Series D), 45(9):1294-1303 (in Chinese). http://www.cnki.com.cn/Article/CJFDTotal-JDXG201510004.htm
      Li, X.J., Guo, T., Wang, Q.F., 2003.Electron Microprobe Chemical Dating Technique.Earth Science Frontiers, 10(2):411-414 (in Chinese with English abstract).
      Liu, J., Mao, J.W., Ye, H.S., et al., 2008.Zircon LA-ICPMS U-Pb Dating of Hukeng Granite in Wugongshan Area, Jiangxi Province and Its Geochemical Characteristics.Acta Perologica Sinica, 24(8):1813-1822 (in Chinese with English abstract). https://www.researchgate.net/publication/283778992_Zircon_LA-ICPMS_U-Pb_dating_of_Hukeng_granite_in_Wugongshan_area_Jiangxi_Province_and_its_geoehemical_characteristics
      Liu, Y., 2013.Geochronology and Geochemical of Ziyunshan Pluton at Yuhuashan Area in Jiangxi and Its Geological Significance (Dissertation).East China University of Technology, Nanchang, 25-32(in Chinese with English abstract).
      Ludwig, K.R., 1991.ISOPLOT; A Plotting and Regression Program for Radiogenic-Isotope Data; Version 2.53.Open-File Report.U.S.Geological Survey, Denver.
      Luo, J.C., Hu, R.Z., Shi, S.H., 2015.Timing of Uranium Mineralization and GeologicalImplications of Shazijiang Granite-Hosted Uranium Deposit in Guangxi, South China:New Constraint from Chemical U-Pb Age.Journal of Earth Science, 26(6):911-919.doi: 10.1007/s12583-015-0542-y
      Mao, J.W., Xie, G.Q., Li, X.F., et al., 2004.Mesozoic Large Scale Mineralization and Multiple Lithospheric Extension in South China.Earth Science Frontiers, 11(1):45-55(in Chinese with English abstract). https://www.researchgate.net/publication/230474119_Mesozoic_Large-scale_Mineralization_and_Multiple_Lithospheric_Extensions_in_South_China
      Matthew, V.M., Andrew, G.T., Gordon, P.W., et al., 2015.Release of Uranium from Highly Radiogenic Zircon Through Metamictization:The Source of Orogenic Uranium Ores.Geology, 44(1).doi: 10.1130/G37238.1
      Montel, J.M., Foret, S., Veschambre, M., et al., 1996.Electron Microprobe Dating of Monazite.Chemical Geology, 131(1-4):37-53.doi: 10.1016/0009-2541(96)00024-1
      Nemchin, A.A., Horstwood, M.S.A., Whitehouse, M.J., 2013.High-Spatial-Resolution Geochronology.Elements, 9(1):31-37.doi: 10.2113/gselements.9.1.31
      Ozha, M.K., Mishra, B., Singh, G., 2015.Reaction Aureoles within Biotite and Albite Surrounding Uraninite and Possible Mobilization of Radio-Centres:An Example from Rajasthan, India.Mineral Resources in a Sustainable World, 1863-1866.
      Peng, S.B., Zhu, J.P., Li, Z.C., et al., 2004.U-Th-Pb Dating by Electron Microprobe and Its Application in Structural Analysis.Rock & Mineral Analysis, 23(11):44-51(in Chinese with English abstract).
      Procházka, V., Seydoux-Guillaume, A.M., Trojek, T., et al., 2011.Alteration Halos around Radioactive Minerals in Plutonic and Metamorphic Rocks of Northern Moldanubian Area, Bohemian Massif.European Journal of Mineralogy, 23(4):551-566.doi: 10.1127/0935-1221/2011/0023-2108
      Suzuki, K., Adachi, M., 1991.Precambrian Provenance and Silurian Metamorphism of the Tsubonosawa Paragneiss in the South Kitakami Terrane, Northeast Japan, Revealed by the Chemical Th-U-Total Pb Isochron Ages of Monazite, Zircon and Xenotime.Geochemical Journal, 25(5):357-376.doi: 10.2343/geochemj.25.357
      Suzuki, K., Adachi, M., Tanaka, T., 1991.Middle Precambrian Provenance of Jurassic Sandstone in the Mino Terrane, Central Japan:T-U-Total Pb Evidence from an Electron Microprobe Monazite Study.Sedimentary Geology, 75(S1-2):141-147.doi:10.1016/0037-0738 (91)90055-I
      Tang, A., 2016.Study on Chronology, Rock Geochemistry, Uranium Bearing Mineral of Ziyunshan Peraluminous Granite, Centre JiangXi (Dissertation).East China Institute of Technology, 25-37(in Chinese with English abstract).
      Tang, A., Li, G.l., Zhou, L.Q., 2015.Compositional Characteristics of Biotite in Ziyunshan Ore Bearing Granite, Central Jiangxi:Implications for Petrogenesis and Mineralization.Journal of Mineralogy and Petrology, 35(3):29-34 (in Chinese with English abstract). http://or.nsfc.gov.cn/handle/00001903-5/259954
      Tiepolo, M., 2003.A Laser Probe Coupled with ICP-Double-Focusing Sectorfield Mass Spectrometer for in Situ Analysis of Geological Samples and U.Canadian Mineralogist, 41(5):259-272.doi: 10.2113/gscanmin.41.2.259
      Votyakov, S.L., Ivanov, K.S., Khiller, V.V., 2011.Chemical Microprobe Th-U-Pb Age Dating of Monazite and Uraninite Grains from Granites of the Yamal Crystalline Basement.Doklady Earth Sciences, 439(1):994-997.doi: 10.1134/S1028334X1107018X
      Weber, W.J., Ewing, R.C., 2002.Radiation Effects in Crystalline Oxide Host Phases for the Immobilization of Actinides.MRS Proceedings, 713.dio:10.1557/PROC-713-JJ3.1
      White, L.T., Ireland, T.R., 2012.High-Uranium Matrix Effect in Zircon and Its Implications for SHRIMP U-Pb Age Determinations.Chemical Geology, 306-307(19):78-91.doi: 10.1016/j.chemgeo.2012.02.025
      Williams, I.S., Hergt, J.M., 2000.U-Pb Dating of Tasmanian Dolerites:A Cautionary Tale of SHRIMP Analysis of High-U Zircons.In:Woodhead, J.D., Hergt, J.M., Noble, W.P.eds., Beyond 2000:New Frontiers in Isotope Geoscience.The University of Melbourne, Lorne, 185-188.
      Yan, D.P., Zhou, M.F., Song, H.L., et al., 2003.Origin and Tectonic Significance of a Mesozoic Multi-Layer Over-Thrust System Within the Yangtze Block (South China).Tectonophysics, 361(3-4):239-254.doi: 10.1016/S0040-1951(02)00646-7
      Yang, T.L., Jiang, S.Y.2015.Petrogenesis of Intermediate-Felsic Intrusive Rocks and Mafic Microgranular Enclaves (MMEs) from Dongleiwan Deposit in Jiurui Ore District, Jiangxi Province:Evidence from Zircon U-Pb Geochronology, Geochemistry and Sr-Nd-Pb-Hf Isotope.Earth Science, 40(12):2002-2020 (in Chinese with English abstract). http://d.g.wanfangdata.com.cn/Periodical_dqkx201512005.aspx
      Yao, J.M., Hua, R.M., Lin, J.F., 2005.Zircon LA-ICPMS U-Pb Dating and Geological Characteristics of Huangshaping Granite in Southeast Hunan Province, China.Acta Petrologica Sinica, 21(3):688-686 (in Chinese with English abstract). https://www.researchgate.net/publication/280687801_Zircon_LA-ICPMS_U-Pb_dating_and_geochemical_characteristics_of_Huangshaping_granite_in_southeast_Hunan_province_China
      Yu, G.S., Xiao, K.C., 1986.Basic Characteristics of an Ancient Ophiolite Belt and Plate Tectonics in Northeastern Jinagxi.Regional Geology of China, (4):369-362(in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-ZQYD198604010.htm
      Zhang, W.L., Hua, R.M., Wang, R.C., et al., 2009.New Dating of the Piaotang Granite and Related Tungsten Mineralization in Southern Jiangxi.Acta Petrologica Sinica, 83(5):659-670 (in Chinese with English abstract). https://www.researchgate.net/publication/279717533_New_dating_of_the_Dajishan_granite_and_related_tungsten_mineralization_in_Southern_Jiangxi
      Zhang, W.L., Wang, R.C., Hua, R.M., et al., 2003.Chemical Th-U-Total Pb Isochron of Dating Accessary Minerals:Principle and Application to Zircon from the Piaotang Muscovite Granite in the Xihuashan Complex, South China.Geological Review, 49(3):263-260 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZLP200303005.htm
      Zhao, H.B., Liu, Y.F., Yang, S., et al., 2014.The Application of Electron Microprobe Dating Method on a Genetic Type of Uraninite.Rock & Mineral Analysis, 33(1):102-109 (in Chinese with English abstract).
      Zhao, K, D., Jiang, S.Y., Ling, H.F., et al., 2014.Reliability of LA-ICP-MS U-Pb Dating of Zircons with High U Concentrations:A Case Study from the U-Bearing Douzhashan Granite in South China.Chemical Geology, 389:110-121.doi:10.1016/j.chemgeo.201 4.09.018
      Zhou, J.X., Chen, Z.Y., Rui, Z.Y., 2002.Th-U-TPb Chemical Dating of Monazite by Electron Probe.Rock & Mineral Analysis, 21(4):241-246 (in Chinese with English abstract).
      陈能松, 孙敏, 王勤燕, 等, 2007.东昆仑造山带昆中带的独居石电子探针化学年龄:多期构造变质事件记录.科学通报, 52(11):1297-1306. http://www.cnki.com.cn/Article/CJFDTOTAL-KXTB200711015.htm
      陈培荣, 华仁民, 章邦桐, 2002.南岭燕山早期后造山花岗岩类:岩石学制约和地球动力学背景.中国科学 (D辑), 32(4):279-289. http://www.cnki.com.cn/Article/CJFDTOTAL-JDXK200204002.htm
      葛祥坤, 秦明宽, 范光, 2011.电子探针化学测年法在晶质铀矿/沥青铀矿定年研究中的应用现状.世界核地质科学, 28(1):55-62. http://www.cnki.com.cn/Article/CJFDTOTAL-GWYD201101012.htm
      郭春丽, 王登红, 陈毓川, 等, 2007.赣南中生代淘锡坑钨矿区花岗岩锆石SHRIMP年龄及石英脉Rb-Sr年龄测定.矿床地质, 26(4):432-442. http://www.cnki.com.cn/Article/CJFDTOTAL-KCDZ200704008.htm
      郭国林, 张展适, 刘晓东, 等, 2012.光石沟铀矿床晶质铀矿电子探针化学定年研究.东华理工大学学报:自然科学版, 35(4):309-314. http://www.cnki.com.cn/Article/CJFDTOTAL-HDDZ201204004.htm
      华仁民, 陈培荣, 张文兰, 等, 2005.南岭与中生代花岗岩类有关的成矿作用及其大地构造背景.高校地质学报, 11(3):291-304. http://www.cnki.com.cn/Article/CJFDTOTAL-GXDX200503002.htm
      李光来, 华仁民, 韦星林, 等, 2011.江西中部徐山钨铜矿床单颗粒白云母Rb-Sr等时线定年及其地质意义.地球科学, 36(2):382-388. http://www.earth-science.net/WebPage/Article.aspx?id=2091
      李光来, 华仁民, 韦星林, 等, 2014.赣南樟东坑钨矿两类矿化中辉钼矿的Re-Os同位素定年及其地质意义.地球科学, 39(2):165-173. http://www.earth-science.net/WebPage/Article.aspx?id=2816
      李华芹, 路远发, 王登红, 等, 2006.湖南骑田岭芙蓉矿田成岩成矿时代的厘定及其地质意义.地质论评, 52(1):113-121. http://www.cnki.com.cn/Article/CJFDTOTAL-DZLP200601018.htm
      李金冬, 柏道远, 伍光英, 等, 2005.湘南郴州地区骑田岭花岗岩锆石SHRIMP定年及其地质意义.地质通报, 24(5):411-414. http://www.cnki.com.cn/Article/CJFDTOTAL-ZQYD200505003.htm
      李献华, 柳小明, 刘勇胜, 等, 2015.LA-ICPMS锆石U-Pb定年的准确度:多实验室对比分析.中国科学 (D辑), 45(9):1294-1303. http://www.cnki.com.cn/Article/CJFDTOTAL-JDXK201509004.htm
      李学军, 郭涛, 王庆飞, 2003.电子探针化学测年方法.地学前缘, 10(2):411-414. http://www.cnki.com.cn/Article/CJFDTOTAL-DXQY200302026.htm
      刘珺, 毛景文, 叶会寿, 等, 2008.江西省武功山地区浒坑花岗岩的锆石U-Pb定年及元素地球化学特征.岩石学报, 24(8):1813-1822. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200808013.htm
      刘颖, 2013. 江西省玉华山地区紫云山岩体年代学、地球化学特征及地质意义 (硕士学位论文). 南昌: 东华理工大学, 25-32.
      毛景文, 谢桂青, 李晓峰, 等, 2004.华南地区中生代大规模成矿作用与岩石圈多阶段伸展.地学前缘, 11(1):45-55. http://www.cnki.com.cn/Article/CJFDTOTAL-DXQY200401002.htm
      彭松柏, 朱家平, 李志昌, 等, 2004.国外电子探针铀-钍-铅定年方法及其在构造分析中的应用前景.岩矿测试, 23(11):44-51. http://www.cnki.com.cn/Article/CJFDTOTAL-YKCS200401011.htm
      唐傲, 2016. 赣中紫云山过铝质花岗岩年代学、岩石地球化学及载铀矿物特征研究 (硕士学位论文). 南昌: 东华理工大学, 25-37.
      唐傲, 李光来, 周龙全, 等, 2015.赣中紫云山岩体含矿花岗岩黑云母成分特征及其成岩成矿意义.矿物岩石, 35(3):29-34. http://www.cnki.com.cn/Article/CJFDTOTAL-KWYS201503005.htm
      姚军明, 华仁民, 林锦富, 2005.湘东南黄沙坪花岗岩LA-ICPS锆石U-Pb定年及岩石地球化学特征.岩石学报, 21(3):688-686. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200503011.htm
      杨堂礼, 蒋少涌, 2015.江西九瑞矿集区东雷湾矿区中酸性侵入岩及其铁镁质包体的成因:锆石U-Pb年代学、地球化学与Sr-Nd-Pb-Hf同位素制约.地球科学, 40(12):2002-2020. http://www.earth-science.net/WebPage/Article.aspx?id=3205
      于根生, 肖柯才, 1986.赣东北古蛇绿岩带及板块构造基本特征.中国区域地质, (4):369-362. http://www.cnki.com.cn/Article/CJFDTOTAL-ZQYD198604010.htm
      张文兰, 王汝成, 华仁民, 等, 2003.副矿物的电子探针化学定年方法原理及应用.地质论评, 49(3):263-260. http://www.cnki.com.cn/Article/CJFDTOTAL-DZLP200303005.htm
      张文兰, 华仁民, 王汝成, 等, 2009.赣南漂塘钨矿花岗岩成岩年龄与成矿年龄的精确测定.地质学报, 83(5):659-670. http://www.cnki.com.cn/Article/CJFDTOTAL-DZXE200905007.htm
      赵慧博, 刘亚非, 阳珊, 等, 2014.电子探针测年方法应用于晶质铀矿的成因类型探讨.岩矿测试, 33(1):102-109. http://www.cnki.com.cn/Article/CJFDTOTAL-YKCS201401018.htm
      周剑雄, 陈振宇, 芮宗瑶, 2002.独居石的电子探针钍-铀-铅化学测年.岩矿测试, 21(4):241-246. http://www.cnki.com.cn/Article/CJFDTOTAL-YKCS200204001.htm
    • Relative Articles

    • Cited by

      Periodical cited type(12)

      1. 谷勇,王珂,范鹏飞,刘传东,黄宏业,欧阳平宁,王前林. 湘东明月峰地区金管冲铀矿床沥青铀矿电子探针U-Th-Pb化学定年及其地质意义. 东华理工大学学报(自然科学版). 2024(03): 258-266 .
      2. 文思博,朱强,程银行. 鄂尔多斯盆地砂岩型铀矿成矿时代及铀富集时空规律. 华北地质. 2023(03): 1-11+34 .
      3. 陈旭,刘晓东,覃金宁,姜必广,南小龙. 诸广三九矿田石壁窝矿区主要铀矿物电子探针定年. 铀矿地质. 2022(02): 247-256 .
      4. 李晓峰,韦星林,朱艺婷,李祖福,邓宣驰. 华南稀有金属矿床:类型、特点、时空分布与背景. 岩石学报. 2021(12): 3591-3614 .
      5. 郭春影,秦明宽,徐浩,任忠宝,邹明亮,白芸,赵宇霆. 广西苗儿山铀矿田张家铀矿床成矿时代:沥青铀矿微区原位测定. 地球科学. 2020(01): 72-89 . 本站查看
      6. 武勇,秦明宽,郭冬发,蔡煜琦,王凤岗,吴玉,郭国林,刘章月. 康滇地轴中南段牟定1101铀矿区沥青铀矿成矿时代及成因. 地球科学. 2020(02): 419-433 . 本站查看
      7. 黄卉,潘家永,洪斌跃,康清清,钟福军. 陕西华阳川铀-多金属矿床晶质铀矿电子探针U-Th-Pb化学定年及其地质意义. 矿床地质. 2020(02): 351-368 .
      8. 王伟,王生云,刘涛,李天石,陈云杰,马骊,赵如意,宋振涛. 甘肃红石泉伟晶岩型铀矿床地质、地球化学特征及成因探讨. 现代地质. 2020(02): 244-253 .
      9. 戚佳伟,张树明,杨春四,蓝德初,王利玲. 甘肃红石泉地区伟晶状白岗岩LA-ICP-MS锆石U-Pb年龄与铀成矿关系. 地质通报. 2019(04): 562-572 .
      10. 黎广荣,郭福生,金腾瑞,张炜强,张运涛,杨庆坤,陈留勤,周万蓬,于玉帅. 江西省峡江-广丰地区白垩纪红盆-火山盆地对铀成矿的制约探讨. 大地构造与成矿学. 2019(03): 542-557 .
      11. 高龙刚,陈佑纬,毕献武,胡瑞忠,高成,董少花,骆金诚. 陕西华阳川铀铌矿床中铀矿物的年代学与矿物化学研究及其对铀成矿的启示. 地质学报. 2019(09): 2273-2291 .
      12. Wenbin Ning,Junpeng Wang,Deng Xiao,Fenfang Li,Bo Huang,Dong Fu. Electron Probe Microanalysis of Monazite and Its Applications to U-Th-Pb Dating of Geological Samples. Journal of Earth Science. 2019(05): 952-963 .

      Other cited types(8)

    • Created with Highcharts 5.0.7Amount of accessChart context menuAbstract Views, HTML Views, PDF Downloads StatisticsAbstract ViewsHTML ViewsPDF Downloads2024-072024-082024-092024-102024-112024-122025-012025-022025-032025-042025-052025-06010203040
      Created with Highcharts 5.0.7Chart context menuAccess Class DistributionFULLTEXT: 26.1 %FULLTEXT: 26.1 %META: 72.5 %META: 72.5 %PDF: 1.3 %PDF: 1.3 %FULLTEXTMETAPDF
      Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 5.5 %其他: 5.5 %其他: 0.2 %其他: 0.2 %China: 0.9 %China: 0.9 %San Mateo: 0.1 %San Mateo: 0.1 %Singapore: 0.1 %Singapore: 0.1 %[]: 0.9 %[]: 0.9 %上海: 0.6 %上海: 0.6 %临汾: 0.1 %临汾: 0.1 %乌鲁木齐: 0.0 %乌鲁木齐: 0.0 %保定: 0.1 %保定: 0.1 %北京: 20.1 %北京: 20.1 %南京: 0.1 %南京: 0.1 %南昌: 0.4 %南昌: 0.4 %台州: 0.2 %台州: 0.2 %合肥: 0.1 %合肥: 0.1 %吉安: 0.0 %吉安: 0.0 %呼和浩特: 0.1 %呼和浩特: 0.1 %哥伦布: 0.1 %哥伦布: 0.1 %唐山: 0.1 %唐山: 0.1 %圣彼得堡: 0.0 %圣彼得堡: 0.0 %天津: 0.3 %天津: 0.3 %太原: 0.0 %太原: 0.0 %安康: 0.1 %安康: 0.1 %广州: 0.1 %广州: 0.1 %张家口: 0.8 %张家口: 0.8 %成都: 0.2 %成都: 0.2 %扬州: 0.2 %扬州: 0.2 %承德: 0.1 %承德: 0.1 %抚州: 0.2 %抚州: 0.2 %新乡: 0.1 %新乡: 0.1 %晋城: 0.1 %晋城: 0.1 %杭州: 0.9 %杭州: 0.9 %柳州: 0.1 %柳州: 0.1 %武汉: 2.1 %武汉: 2.1 %沈阳: 0.0 %沈阳: 0.0 %泉州: 0.1 %泉州: 0.1 %泰安: 0.0 %泰安: 0.0 %洛阳: 0.0 %洛阳: 0.0 %深圳: 0.1 %深圳: 0.1 %温州: 0.0 %温州: 0.0 %湖州: 0.7 %湖州: 0.7 %湘潭: 0.0 %湘潭: 0.0 %漯河: 0.2 %漯河: 0.2 %漳州: 0.1 %漳州: 0.1 %石家庄: 0.3 %石家庄: 0.3 %福州: 0.1 %福州: 0.1 %纽瓦克: 0.1 %纽瓦克: 0.1 %芒廷维尤: 16.6 %芒廷维尤: 16.6 %芝加哥: 0.3 %芝加哥: 0.3 %莫斯科: 0.6 %莫斯科: 0.6 %衢州: 0.1 %衢州: 0.1 %西宁: 42.4 %西宁: 42.4 %西安: 0.4 %西安: 0.4 %贵阳: 0.2 %贵阳: 0.2 %运城: 0.1 %运城: 0.1 %连云港: 0.0 %连云港: 0.0 %邯郸: 0.1 %邯郸: 0.1 %邵阳: 0.1 %邵阳: 0.1 %郑州: 0.1 %郑州: 0.1 %重庆: 0.2 %重庆: 0.2 %长沙: 0.5 %长沙: 0.5 %青岛: 0.1 %青岛: 0.1 %香港: 0.1 %香港: 0.1 %马鞍山: 0.0 %马鞍山: 0.0 %其他其他ChinaSan MateoSingapore[]上海临汾乌鲁木齐保定北京南京南昌台州合肥吉安呼和浩特哥伦布唐山圣彼得堡天津太原安康广州张家口成都扬州承德抚州新乡晋城杭州柳州武汉沈阳泉州泰安洛阳深圳温州湖州湘潭漯河漳州石家庄福州纽瓦克芒廷维尤芝加哥莫斯科衢州西宁西安贵阳运城连云港邯郸邵阳郑州重庆长沙青岛香港马鞍山

    Catalog

      通讯作者: 陈斌, bchen63@163.com
      • 1. 

        沈阳化工大学材料科学与工程学院 沈阳 110142

      1. 本站搜索
      2. 百度学术搜索
      3. 万方数据库搜索
      4. CNKI搜索

      Figures(5)  / Tables(1)

      Article views (6017) PDF downloads(30) Cited by(20)
      Proportional views

      /

      DownLoad:  Full-Size Img  PowerPoint
      Return
      Return