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叶蜡石化蚀变过程中的元素活动性与流体性质:以山西五台地区白云叶蜡石矿为例
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  • 英文篇名:Element mobility and fluid characteristics during pyrophyllite alteration:A case study from the Baiyun pyrophyllite deposit,Wutai County,Shanxi Province
  • 作者:张少颖 ; 张华锋
  • 英文作者:ZHANG ShaoYing;ZHANG HuaFeng;School of Earth Sciences and Resources,China University of Geosciences;
  • 关键词:热液蚀变 ; 元素迁移 ; 叶蜡石 ; 成矿流体 ; 五台杂岩 ; 华北克拉通
  • 英文关键词:Hydrothermal alteration;;Element mobility;;Pyrophyllite alteration;;Ore-forming fluids;;Wutai Complex;;North China Carton
  • 中文刊名:YSXB
  • 英文刊名:Acta Petrologica Sinica
  • 机构:中国地质大学地球科学与资源学院;
  • 出版日期:2017-06-15
  • 出版单位:岩石学报
  • 年:2017
  • 期:v.33
  • 基金:国家重点研发计划(2016YFC0600106);; 国家自然科学基金重点项目(41230311、41530208)联合资助
  • 语种:中文;
  • 页:YSXB201706016
  • 页数:21
  • CN:06
  • ISSN:11-1922/P
  • 分类号:260-280
摘要
热液蚀变过程中的元素活动性与流体性质对深入理解矿物稳定性和成矿作用具有重要的意义。本文以华北克拉通中北部山西五台地区的白云叶蜡石矿为例,研究了蚀变过程中元素迁移特征和流体性质。该矿体围岩以绿片岩相酸性火山岩为主,岩性为绢云钠长石英片岩并夹有少量的绿泥钠长片岩。矿区内蚀变分带明显,可分为早期的黄铁绢英岩化(绢云母-石英-黄铁矿)和晚期叠加的叶蜡石化(叶蜡石-伊利石-高岭石-石英),而金矿化则主要发育于黄铁绢英岩化带内。Log fo2-pH相图模拟结果显示,早期黄铁绢云岩化蚀变热液具有弱酸性至偏中性(pH=5.24~5.87)和较低氧逸度(位于黄铁矿+黄铜矿稳定相区内)特征;而引起叶蜡石化蚀变的热液具有强酸性(pH=2.07~2.20)和高氧逸度(位于HM缓冲线以上)特征。质量平衡迁移分析结果显示,随着叶蜡石化蚀变作用的增强,叶蜡石矿石中的Al2O3行为较稳定,SiO2、Na2O和K2O含量相对于围岩绢云钠长石英片岩呈不同程度的迁入,而其余氧化物大量活化迁出。微量元素Nb、Ta、Th、U、Rb和Ga含量相对升高,Th/U比值略有升高;Sr、Ba、Zr、Hf明显亏损,Zr/Hf比值从34~41下降到17~22。稀土元素均发生一定程度的活化迁移,且轻稀土迁出程度更高。Y/Ho比值(28~32)高于球粒陨石的Y/Ho(26~28),表明Y-Ho在叶蜡石化蚀变过程中表现出不同的地球化学行为。Eu负异常明显增大,这可能与长石的分解关系密切。围岩绢云钠长石英片岩中金属元素含量较高且Au与As含量之间呈明显正相关性,但在叶蜡石矿石中大部分金属元素含量均低于检出限,说明金属元素在叶蜡石化蚀变作用过程中发生了强烈的活化迁移,这与岩相学上叶蜡石矿石中可见港湾状细粒赤铁矿而缺乏黄铁矿的特征吻合。本文研究结果表明叶蜡石化过程中,大量的所谓不活动元素(如P、Ti、Zr、Hf、Y和Ho等)发生了显著迁移并导致Zr/Hf和Y/Ho比值的解耦,并伴随着大量金属元素的迁出,说明叶蜡石化不利于金矿化的形成。
        Investigation on the element mobility during hydrothermal alteration processes can provide challenging insights into fluid properties and metallogeny. The Baiyun pyrophyllite deposit of the Wutai County,Shanxi Province,provides a natural case for study on fluid properties and elemental mobility,where the wall rocks mainly consist of albite-sericite quartz schist,associated with minor albitechlorite schist. Hydrothermal alteration in the mine is dominated by pyrite-phyllic( sericite-quartz-pyrite) and pyrophyllite( pyrophyllite-illite-kaolinite-quartz). The gold mineralization is mainly developed in the pyrite-phyllic alteration zone. Log fO2-p H diagram is constructed to depict the alteration process,and the phase diagram exhibites that the early pyrite-phyllic alteration fluid was weak acid to partial neutral( p H = 5. 24 ~ 5. 87) with relatively low oxygen fugacity( which was located in the stable area of pyrite and chalcopyrite). The alteration fluid leading to the pyrophyllite alteration,in contrast,was acidic( pH = 2. 07 ~ 2. 20) with relatively high oxygen fugacity( which was above the HM buffer line). According to the immobility of Al_2O_3 from the pyrophyllite ores,the massbalance calculation shows that the contents of SiO_2,Na_2O and K_2O from the pyrophyllite ores are dramatically increased by comparison with the wall rocks( albite-sericite quartz schist),whereas,the other major oxides were prominently moved out. The abundances of Nb,Ta,Th,U,Rb,and Ga were relatively moved in,with Th/U ratios increased slightly. The abundances of Sr,Ba,Zr and Hf were relatively decreased with Zr/Hf ratios declined from 34 ~ 41( wall rocks) to 17 ~ 22( pyrophyllite ores). The rare earth elements were moved out as a whole,and the emigration amounts from LREE to HREE were gradually decreased. The Y/Ho( 28 ~ 32) ratios are distinct with those of C1 chondrite( 26 ~ 28),indicating that Y and Ho exhibit different behavior during pyrophyllite alteration.The negative Eu anomalies of the pyrophyllite ores are obvious,being attributed to decomposition of feldspars. The contents of Au and As within the albite-sericite quartz schist exhibit positive correlation ships with each other. By contrast,most metal ore-forming elements of the pyrophyllite ores are below the detected limit,suggesting the elements have been moved away during the pyrophyllite alteration. This phenomenon is consistent with the lithology features of pyrophyllite ores( visible harbor-shaped hematite and lacking of relevant pyrite). Our data indicates that the acidic and oxidized fluids can migrate amounts of so-called inactive elements,such as P,Ti,Zr,Hf,REE and other elements,simultaneously decoupled the ratios of Zr/Hf and Y/Ho during pyrophyllite alteration.Meanwhile,the fluids for pyrophyllite alteration leading to a superimposed destroy on the early formed gold mineralization,are not conducive for Au precipitation.
引文
Aja SU,Wood SA and Williams-Jones AE.1995.The aqueous geochemistry of Zr and the solubility of some Zr-bearing minerals.Applied Geochemistry,10(6):603-620
    Alderton DHM,Pearce JA and Potts PJ.1980.Rare earth element mobility during granite alteration:Evidence from southwest England.Earth and Planetary Science Letters,49(1):149-165
    Bai J.1986.The Early Precambrian Geology of Wutaishan.Tianjin:Tianjin Science and Technology Press,1-475(in Chinese)
    Bai J,Wang RZ and Guo JJ.1992.The Major Geological Events of Early Precambrian and Their Dating in Wutaishan.Beijing:Geological Publishing Press(in Chinese)
    Baker JH.1985.Rare earth and other trace element mobility accompanying albitization in a Proterozoic granite,W.Bergslagen,Sweden.Mineralogical Magazine,49(350):107-115
    Blackburn WH,Metcalf RV and Ragland PC.1994.Geochemical evolution of the Precambrian Old Rag Granite,Virginia,U.S.A.:Testing a U-Th exploration model.Chemical Geology,111(1-4):177-206
    Brendebach B,Altmaier M,Rothe J,Neck V and Denecke MA.2007.EXAFS study of aqueous ZrIV and ThIV complexes in alkaline CaCl2solutions:Ca3[Zr(OH)6]+4 and Ca4[Th(OH)8]+4.Inorganic Chemistry,46(16):6804-6810
    Brown AJ,Cudahy TJ and Walter MR.2006.Hydrothermal alteration at the Panorama formation,North Pole dome,Pilbara craton,Western Australia.Precambrian Research,151(3):211-223
    Charoy B and Raimbault L.1994.Zr-,Th-,and REE-rich biotite differentiates in the A-type granite pluton of Suzhou(eastern China):The key role of fluorine.Journal of Petrology,35(4):919-962
    Chen B and Zhai MG.2003.Geochemistry of Late Mesozoic lamprophyre dykes from the Taihang Mountains,North China,and implications for the sub-continental lithospheric mantle.Geological Magazine,140:87-93
    Cooke DR and Simmons SF.2000.Characteristics and genesis of epithermal gold deposits.Reviews in Economic Geology,13(12):221-244
    Dempster TJ,Hay DC and Bluck BJ.2004.Zircon growth in slate.Geology,32(3):221-224
    Du LL,Yang CH,Guo JH,Wang W,Ren LD,Wan YS and Geng YS.2010.The age of the base of the Paleoproterozoic Hutuo Group in the Wutai Mountains area,North China Craton:SHRIMP zircon U-Pb dating of basaltic andesite.Chinese Science Bulletin,55(17):1782-1789
    Du LL,Yang CH,Wang W,Ren LD,Wan YS,Song HX,Geng YS and Hou KJ.2011.The re-examination of the age and stratigraphic subdivision of the Hutuo Group in the Wutai Mountains area,North China Craton:Evidences from geology and zircon U-Pb geochronology.Acta Petrologica Sinica,27(4):1037-1055(in Chinese with English abstract)
    Du LL,Yang CH,Wang W,Ren LD,Wan YS,Wu JS,Zhao L,Song HX,Geng YS and Hou KJ.2013.Paleoproterozoic rifting of the North China Craton:Geochemical and zircon Hf isotopic evidence from the 2137Ma Huangjinshan A-type granite porphyry in the Wutai area.Journal of Asian Earth Sciences,72:190-202
    Evans BW and Guggenheim S.1988.Talc,pyrophyllite,and related minerals.Reviews in Mineralogy and Geochemistry,19(1):225-294
    Fourcade S and Allegre CJ.1981.Trace elements behavior in granite genesis:A case study the calc-alkaline plutonic association from the Querigut complex(Pyrénées,France).Contributions to Mineralogy and Petrology,76(2):177-195
    Gammons CH and Williams-Jones AE.1997.Chemical mobility of gold in the porphyry-epithermal environment.Economic Geology,92(1):45-59
    Gong QJ,Deng J,Yang LQ,Zhang J,Wang QF and Zhang GX.2011.Behavior of major and trace elements during weathering of sericitequartz schist.Journal of Asian Earth Sciences,42(1-2):1-13
    Grant JA.1986.The isocon diagram:A simple solution to Gresens’equation for metasomatic alteration.Economic Geology,81(8):1976-1982
    Grant JA.2005.Isocon analysis:A brief review of the method and applications.Physics and Chemistry of the Earth,Parts A/B/C,30(17-18):997-1004
    Gresens RL.1967.Composition-volume relationships of metasomatism.Chemical Geology,2:47-65
    Gromet LP and Silver LT.1983.Rare earth element distributions among minerals in a granodiorite and their petrogenetic implications.Geochimica et Cosmochimica Acta,47(5):925-939
    Guo S,Ye K,Chen Y,Liu JB and Zhang LM.2013.Introduction of mass-balance calculation method for component transfer during the opening of a geological system.Acta Petrologica Sinica,29(5):1486-1498(in Chinese with English abstract)
    Haas JR,Shock EL and Sassani DC.1995.Rare earth elements in hydrothermal systems:Estimates of standard partial molal thermodynamic properties of aqueous complexes of the rare earth elements at high pressures and temperatures.Geochimica et Cosmochimica Acta,59(21):4329-4350
    Hemley JJ,Montoya JW,Marinenko JW and Luce RW.1980.Equilibria in the system Al2O3-SiO2-H2O and some general implications for alteration/mineralization processes.Economic Geology,75(2):210-228
    Hildebrand FA.1961.Hydrothermally altered rocks in eastern Puerto Rico.US Geological Survey Professional Paper,424:B219-B221
    Jiang N,Sun SH,Chu XL,Mizuta T and Ishiyama D.2003.Mobilization and enrichment of high-field strength elements during late-and post-magmatic processes in the Shuiquangou syenitic complex,northern China.Chemical Geology,200(1-2):117-128
    Johnson JW,Oelkers EH and Helgeson HC.1992.SUPCRT92:Asoftware package for calculating the standard molal thermodynamic properties of minerals,gases,aqueous species,and reactions from 1to 5000 bar and 0 to 1000℃.Computers&Geosciences,18(7):899-947
    Kr9ner A,Wilde SA,Li JH and Wang KY.2004.Age and evolution of a Late Archaean to Early Paleozoic upper to Lower crustal section in the Wutaishan/Hengshan terrain of northern China.Journal of Asian Earth Sciences,24(5):577-595
    Kr9ner A,Wilde SA,O’Brien PJ,Li JH,Passchier CW,Walte NP and Liu DY.2005.Field relationships,geochemistry,zircon ages and evolution of a Late Archaean to Paleoproterozoic lower crustal section in the Hengshan Terrain of northern China.Acta Geologica Sinica,79(5):605-629
    Li JX and Qian XL.1991.A study on the Longquanguan shear zone in the northern part of the Taihang Mountains.Shanxi Geology,6(1):17-29(in Chinese)
    Li JL,Wang KY,Wang QC,Liu XH and Zhao ZY.1990.Early Proterozoic collision belt in the Wutaishan area,China.Scientia Geologica Sinica,25(1):1-11(in Chinese with English abstract)
    Li QG,Liu SW,Wang ZQ,Chu ZY,Song B,Wang YB and Wang T.2008.Contrasting provenance of Late Archean metasedimentary rocks from the Wutai Complex,North China Craton:detrital zircon U-Pb,whole-rock Sm-Nd isotopic,and geochemical data.International Journal of Earth Sciences,97(3):443-458
    Li XC,Fan HR,Santosh M,Hu FF,Yang KF and Lan TG.2013.Hydrothermal alteration associated with Mesozoic granite-hosted gold mineralization at the Sanshandao deposit,Jiaodong Gold Province,China.Ore Geology Reviews,53:403-421
    Liu CH,Zhao GC,Liu FL and Shi JR.2016a.Constraints of volcanic rocks of the Wutai Complex(Shanxi Province,northern China)on a giant Late Neoarchean intra-oceanic arc system in the Trans-North China Orogen.Journal of Asian Earth Sciences,123:178-212
    Liu CH,Liu FL,Shi JR,Liu PH,Yang H,Liu LS,Wang W and Tian ZH.2016b.Depositional age and provenance of the Wutai Group:Evidence from zircon U-Pb and Lu-Hf isotopes and whole-rock geochemistry.Precambrian Research,281:269-290
    Liu DY,Page RW,Compston W and Wu JS.1985.U-Pb zircon geochronology of Late Archaean metamorphic rocks in the Taihangshan-Wutaishan area,North China.Precambrian Research,27(1-3):85-109
    Liu SW,Pan YM,Xie QL,Zhang J and Li QG.2004.Archean geodynamics in the Central Zone,North China Craton:Constraints from geochemistry of two contrasting series of granitoids in the Fuping and Wutai complexes.Precambrian Research,130(1-4):229-249
    Lu J.2009.Lithogeochemistry and mineralogical mapping of the Dongyaozhuang gold deposit in Wutai County,Shanxi Province.Master Degree Thesis.Beijing:China University of Geosciences(in Chinese)
    MacLean WH.1988.Rare earth element mobility at constant inter-REEratios in the alteration zone at the Phelps Dodge massive sulphide deposit,Matagami,Quebec.Mineralium Deposita,1988,23(4):231-238
    Miao PS,Zhang ZF,Zhang JZ,Zhao ZX and Xu SC.1999.Paleoproterozoic stratigraphic sequence in the Wutai Mountain area.Regional Geology of China,18(4):405-413(in Chinese with English abstract)
    Michard A.1989.Rare earth element systematics in hydrothermal fluids.Geochimica et Cosmochimica Acta,53(3):745-750
    Mikucki EJ.1998.Hydrothermal transport and depositional processes in Archean lode-gold systems:A review.Ore Geology Reviews,13(1-5):307-321
    Nesbitt RW,Pascual E,Fanning CM,Toscano M,Sáez r and Almodóvar GR.1999.U-Pb dating of stockwork zircons from the eastern Iberian Pyrite Belt.Journal of the Geological Society,156(1):7-10
    Noyes HJ,Frey FA and Wones DR.1983.A tale of two plutons:Geochemical evidence bearing on the origin and differentiation of the Red Lake and Eagle Peak plutons,central Sierra Nevada,California.The Journal of Geology,91(5):487-509
    Peng P,Zhai MG,Zhang HF and Guo JH.2005.Geochronological constraints on the Paleoproterozoic evolution of the North China Craton:SHRIMP zircon ages of different types of mafic dikes.International Geology Review,47(5):492-508
    Pirajno F.2012.Hydrothermal Mineral Deposits:Principles and Fundamental Concepts for the Exploration Geologist.Springer Science&Business Media
    Polat A,Kusky T,Li JH,Fryer B,Kerrich R and Patrick K.2005.Geochemistry of Neoarchean(ca.2.55~2.50Ga)volcanic and ophiolitic rocks in the Wutaishan greenstone belt,central orogenic belt,North China craton:Implications for geodynamic setting and continental growth.Geological Society of America Bulletin,117:1387-1399
    Qi DM,Zhou HW,Gong YJ,Xiong SF,Jia D,Zhang J and Zhang MY.2015.Element mobility during the fluid-rock hydrothermal alteration:Evidence from altered porphyritic granite inⅣpipe of the Qiyugou gold deposit,Henan Province.Acta Petrologica Sinica,31(9):2655-2673(in Chinese with English abstract)
    Qian JH,Wei CJ,Zhou XW,Zhang YH and Chu H.2013.Geochemistry of garnet-mica schist in the Wutai Group and its implications.Acta Petrologica et Mineralogica,32(4):405-416(in Chinese with English abstract)
    Rasmussen B.2005.Zircon growth in very low grade metasedimentary rocks:Evidence for zirconium mobility at~250℃.Contributions to Mineralogy and Petrology,150(2):146-155
    Roaldset E.1975.Rare earth element distributions in some Precambrian rocks and their phyllosilicates,Numedal,Norway.Geochimica et Cosmochimica Acta,39(4):455-469
    Rubin JN,Henry CD and Price JG.1993.The mobility of zirconium and other“immobile”elements during hydrothermal alteration.Chemical Geology,110(1-3):29-47
    Rusk B,Koenig A and Lowers H.2011.Visualizing trace element distribution in quartz using cathodoluminescence,electron microprobe,and laser ablation-inductively coupled plasma-mass spectrometry.American Mineralogist,96(5-6):703-708
    Sasaki T,Kobayashi T,Takagi I and Moriyama H.2006.Solubility measurement of zirconium(IV)hydrous oxide.Radiochimica Acta,94(9-11):489-494
    Salvi S and Williams-Jones AE.1996.The role of hydrothermal processes in concentrating high-field strength elements in the Strange Lake peralkaline complex,northeastern Canada.Geochimica et Cosmochimica Acta,60(11):1917-1932
    Scott KM.2005.Rutile geochemistry as a guide to porphyry Cu-Au mineralization,Northparkes,New South Wales,Australia.Geochemistry:Exploration,Environment,Analysis,5(3):247-253
    Seedorff E,Dilles JH,Proffett JM,Einaudi MT,Zurcher L,Stavast WJA,Barton MD and Johnson DA.2005.Porphyry deposits:Characteristics and origin of hypogene features.Economic Geology100th Anniversary Volume,29:251-298
    Sharma RP.1979.Origin of the pyrophyllite-diaspore deposits of the Bundelkhand Complex,central India.Mineralium Deposita,14(3):343-352
    Sinyakovskaya I,Zaykov V and Kitagawa R.2005.Types of pyrophyllite deposits in foldbelts.Resource Geology,55:405-418
    Sun M,Armstrong RL and Lambert RSJ.1992.Petrochemistry and Sr,Pb,and Nd isotopic geochemistry of Early Precambrian rocks,Wutaishan and Taihangshan areas,China.Precambrian Research,56(1-2):1-31
    Sun SS and McDonough WF.1989.Chemical and isotopic systematics of oceanic basalts:Implications for mantle composition and processes.In:Saunders AD and Norry MJ(eds.).Magmatism in the Ocean Basins.Geological Society,London,Special Publications,42(1):313-345
    Sun WL,Niu YL,Ma YX,Liu Y,Zhang GR,Hu ZX,Zhang ZW,Chen S,Li JY,Wang XL and Gong HM.2015.Petrogenesis of the Chagangnuoer deposit,NW China:A general model for submarine volcanic-hosted skarn iron deposits.Science Bulletin,60(3):363-379
    Sverjensky DA,Hemley JJ and D'angelo WM.1991.Thermodynamic assessment of hydrothermal alkali feldspar-mica-aluminosilicate equilibria.Geochimica et Cosmochimica Acta,55(4):989-1004
    Takahashi Y,Tada A and Shimizu H.2004.Distribution pattern of rare earth ions between water and montmorillonite and its relation to the sorbed species of the ions.Analytical Sciences,20(9):1301-1306
    Terakado Y and Fujitani T.1998.Behavior of the rare earth elements and other trace elements during interactions between acidic hydrothermal solutions and silicic volcanic rocks,southwestern Japan.Geochimica et Cosmochimica Acta,62(11):1903-1917
    Tian YQ.1991.Geology and Gold Mineralization of Wutai-Hengshan Greenstone Belt.Taiyuan:Shanxi Science and Technology Press,1-44(in Chinese)
    Tian YQ,Wang AJ,Yu KR and Xu WL.1998.Geodynamics of the vein gold mineralization in the Wutaishan-Hengshan terrain,Shanxi Province.North China J.Geol.Miner.Resour.,13:301-456(in Chinese)
    Valsami-Jones E and Ragnarsdóttir KV.1997.Controls on uranium and thorium behaviour in ocean-floor hydrothermal systems:Examples from the Pindos ophiolite,Greece.Chemical Geology,135(3-4):263-274
    Van Dongen M,Weinberg RF and Tomkins AG.2010.REE-Y,TI,and P remobilization in magmatic rocks by hydrothermal alteration during Cu-Au deposit formation.Economic Geology,105(4):763-776
    Wan YS,Miao PS,Liu DY,Yang CH,Wang W,Wang HC,Wang ZJ,Dong CY,Du LL and Zhou HY.2010.Formation ages and source regions of the Palaeoproterozoic Gaofan,Hutuo and Dongjiao groups in the Wutai and Dongjiao areas of the North China Craton from SHRIMP U-Pb dating of detrital zircons:Resolution of debates over their stratigraphic relationships.Chinese Science Bulletin,55(13):1278-1284
    Wang CY,Li XF,Xiao R,Bai YP,Yang F,Mao W and Jiang SK.2012.Elements mobilization of mineralized porphyry rocks during hydrothermal alteration at Zhushahong porphyry copper deposit,Dexing district,South China.Acta Petrologica Sinica,28(12):3869-3886(in Chinese with English abstract)
    Wang KY,Hao J,Wilde SA and Cawood PA.2000.Reconsideration of some key geological problems of Late Archean-Early Proterozoic in the Wutaishan-Hengshan area:Constraints from SHRIMP U-Pb zircon data.Scientia Geologica Sinica,35(2)175-184(in Chinese with English abstract)
    Wang ZH,Wilde SA,Wang KY and Yu LJ.2004.A MORB-arc basaltadakite association in the 2.5Ga Wutai greenstone belt:Late Archean magmatism and crustal growth in the North China Craton.Precambrian Research,131(3):323-343
    Wang ZH.2009.Tectonic evolution of the Hengshan-Wutai-Fuping complexes and its implication for the Trans-North China Orogen.Precambrian Research,170(1):73-87
    Watson EB and Harrison TM.1983.Zircon saturation revisited:temperature and composition effects in a variety of crustal magma types.Earth and Planetary Science Letters,64(2):295-304
    Whitney DL and Evans BW.2010.Abbreviations for names of rockforming minerals.American Mineralogist,95(1):185-187
    Wilde SA,Cawood P and Wang KY.1997.The relationship and timing of granitoid evolution with respect to felsic volcanism in the Wutai Complex,North China Craton.In:Precambrian Geology and Metamorphic Petrology:Proceedings of the 30th International Geological Congress.Beijing,China:VSP International Science Publishers,75
    Wilde SA,Cawood PA,Wang KY,Nemchin A and Zhao GC.2004.Determining Precambrian crustal evolution in China:A case-study from Wutaishan,Shanxi Province,demonstrating the application of precise SHRIMP U-Pb geochronology.In:Malpas J,Fletcher CJN,Ali JR and Aitchison JC(eds).Aspects of the Tectonic Evolution of China.Geological Society,London,Special Publications,226(1):5-25
    Wilde SA and Zhao GC.2005.Archean to Paleoproterozoic evolution of the North China craton.Journal of Asian Earth Sciences,24:519-522
    Wilde SA,Cawood PA,Wang KY and Nemchin AA.2005.Granitoid evolution in the Late Archean Wutai Complex,North China Craton.Journal of Asian Earth Sciences,24(5):597-613
    Wood SA.1990.The aqueous geochemistry of the rare-earth elements and yttrium:2.Theoretical predictions of speciation in hydrothermal solutions to 350℃at saturation water vapor pressure.Chemical Geology,88(1-2):99-125
    Wu CH and Zhong CT.1998.The Paleoproterozoic SW-NE collision model for the central North China Carton.Progress in Precambrian Research,21(3):28-50(in Chinese with English abstract)
    Zen EA.1961.Mineralogy and petrology of the Al2O3-SiO2-H2O in some pyrophyllite deposits of North Carolina.American Mineralogist,46(1-2):52-66
    Zhang J,Zhao GC,Li SZ,Sun M,Liu SW and Yin CQ.2009.Deformational history of the Fuping Complex and new U-Th-Pb geochronological constraints:Implications for the tectonic evolution of the Trans-North China Orogen.Journal of Structural Geology,31:177-193
    Zhang HD,Zhang HF,Santosh M and Li SR.2014.Fluid inclusions from the Jinchang Cu-Au deposit,Heilongjiang Province,NE China:Genetic style and magmatic-hydrothermal evolution.Journal of Asian Earth Sciences,82:103-114
    Zhao GC,Wilde SA,Cawood PA and Sun M.2001.Archean blocks and their boundaries in the North China Craton:Lithological,geochemical,structural and P-T path constraints and tectonic evolution.Precambrian Research,107(1):45-73
    Zhao GC,Kr9ner A,Wilde SA,Sun M,Li SZ,Li XP,Zhang J,Xia XPand He YH.2007.Lithotectonic elements and geological events in the Hengshan-Wutai-Fuping belt:A synthesis and implications for the evolution of the Trans-North China Orogen.Geological Magazine,144(05):753-775
    Zhu YF,An F and Tan JJ.2011.Geochemistry of hydrothermal gold deposits:A review.Geoscience Frontiers,2(3):367-374
    白瑾1986.五台山早前寒武纪地质.天津:天津科学技术出版社,1-475
    白瑾,王汝铮,郭进京.1992.五台山早前寒武纪重大地质事件及其年代.北京:地质出版杜
    杜立林,杨崇辉,王伟,任留东,万渝生,宋会侠,耿元生,侯可军.2011.五台地区滹沱群时代与地层划分新认识:地质学与锆石年代学证据.岩石学报,27(4):1037-1055
    郭顺,叶凯,陈意,刘景波,张灵敏.2013.开放地质体系中物质迁移质量平衡计算方法介绍.岩石学报,29(5):1486-1498
    卢静.2009.山西省五台县东腰庄金矿岩石地球化学特征与矿物学填图.硕士学位论文.北京:中国地质大学
    李江海,钱祥麟.1991.太行山北段龙泉关剪切带研究.山西地质,6(1):17-29
    李继亮,王凯怡,王清晨,刘小汉,赵中岩.1990.五台山早元古代碰撞造山带初步认识.地质科学,25(1):1-11
    苗培森,张振福,张建中,赵祯祥,续世朝.1999.五台山区早元古代地层层序探讨.中国区域地质,18(4):405-413
    祁冬梅,周汉文,宫勇军,熊索菲,贾耽,张金,张旻玥.2015.岩石热液蚀变作用过程元素的活动性---河南祁雨沟金矿Ⅳ号岩体蚀变花岗斑岩的研究.岩石学报,31(9):2655-2673
    钱加慧,魏春景,周喜文,张颖慧,初航.2013.五台岩群石榴云母片岩地球化学特征及其地质意义.岩石矿物学杂志,32(4):405-416
    田永清.1991.五台山-恒山绿岩带地质及金的成矿作用.太原:山西科技出版社,1-44
    田永清,王安建,余克忍,许文良.1998.山西省五台山-恒山地区脉状金矿成矿的地球动力学.华北地质矿产杂志,13(4):342-343
    王翠云,李晓峰,肖荣,白艳萍,杨锋,毛伟,将松坤.2012.德兴朱砂红斑岩铜矿热液蚀变作用及元素地球化学迁移规律.岩石学报,28(12):3869-3886
    王凯怡,郝杰,Wilde SA,Cawood PA.2000.山西五台山-恒山地区晚太古-早元古代若干关键地质问题的再认识:单颗粒锆石离子探针质谱年龄提出的地质制约.地质科学,35(2):175-184
    吴昌华,钟长汀.1998.华北陆台中段吕梁期的SW-NE向碰撞-晋蒙高级区孔兹岩系进入下地壳的构造机制.前寒武纪研究进展,21(3):28-50
    (1)山西省第三地质工程勘察院.2013.山西省五台县豆村幅1∶5万区域地质图

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