九瑞矿集区燕山期构造-岩浆作用及其与铜金多金属成矿关系研究

蒋少涌, 徐耀明, 朱志勇, 周巍, 孔凡斌, 孙岩. 九瑞矿集区燕山期构造-岩浆作用及其与铜金多金属成矿关系研究[J]. 岩石学报, 2013, 29(12): 4051-4068.
引用本文: 蒋少涌, 徐耀明, 朱志勇, 周巍, 孔凡斌, 孙岩. 九瑞矿集区燕山期构造-岩浆作用及其与铜金多金属成矿关系研究[J]. 岩石学报, 2013, 29(12): 4051-4068.
JIANG ShaoYong, XU YaoMing, ZHU ZhiYong, ZHOU Wei, KONG FanBin, SUN Yan. Study on Mesozoic tectonics and granitic magmatism and their relationship with Cu-Au mineralization in the Jiurui ore district, Jiangxi Province[J]. Acta Petrologica Sinica, 2013, 29(12): 4051-4068.
Citation: JIANG ShaoYong, XU YaoMing, ZHU ZhiYong, ZHOU Wei, KONG FanBin, SUN Yan. Study on Mesozoic tectonics and granitic magmatism and their relationship with Cu-Au mineralization in the Jiurui ore district, Jiangxi Province[J]. Acta Petrologica Sinica, 2013, 29(12): 4051-4068.

九瑞矿集区燕山期构造-岩浆作用及其与铜金多金属成矿关系研究

  • 基金项目:

    本文受科技部973项目(2012CB416706)、十二五国家科技支撑计划(2011BAB04B03)和国家自然科学基金项目(41072055)联合资助

Study on Mesozoic tectonics and granitic magmatism and their relationship with Cu-Au mineralization in the Jiurui ore district, Jiangxi Province

  • 九瑞地区是长江中下游成矿带中最重要的铜金多金属矿集区,成矿作用可分为海西期喷流沉积期及燕山期岩浆热液期,其中燕山期的构造-岩浆热事件对成矿至关重要。本文在详细的野外矿田构造-地层-岩浆岩调查与分析及室内成岩成矿机理研究基础上,对九瑞矿集区构造系统、岩浆系统和成矿系统进行了综合研究。梳理厘定出该区主要控岩成矿断裂构造为NEE(近EW)向脆韧性走向叠掩逆冲断裂带和SN(近SN)向张扭性横向破碎断裂带。两组断裂形成“井”字形的构造格架,制约着该区的岩浆岩分布并与成矿密切相关。区内岩浆岩种类繁多,与成矿有关的主要是花岗闪长斑岩和石英闪长玢岩。两类岩体侵位的时期都集中在燕山早中期(138~148Ma)。其产状一般为岩株、岩锥、岩枝和岩墙等。岩枝、岩墙多沿NEE向逆冲断层带,尤其是沿其特有的“Y”字形断裂分布。而与成矿关系最为密切的岩株、岩锥则都侵位于NEE向和SN向断裂的交汇处。本文特别强调前人关注不够的SN(近SN)向张裂带及其控岩成矿作用。在本区确定的4组SN向张扭性带中,其中第2组宋家湾-严家村一线同NEE断裂带的几处交汇处是值得进一步详查的预测区。九瑞矿集区矿床成因类型主要包括矽卡岩型、斑岩型(包括隐爆角砾岩型)、沉积-热液叠加改造型和热液脉型等。在不同矿区,各种不同成因类型的矿床可以叠加复合为不同的矿床式,如①武山式(沉积-热液叠加改造型+矽卡岩型矿化);②丰山洞式(矽卡岩型+隐爆角砾岩型矿化);③城门山式(斑岩型+矽卡岩型+沉积-热液叠加改造型矿化);④洋鸡山式(隐爆角砾岩型+斑岩型矿化)。
  • 加载中
  • [1]

    Bureau of Geology and Mineral Resource of Anhui Province. 1987. Regional Geology of Anhui Province. Beijing: Geological Publishing House, 471-548 (in Chinese)

    [2]

    Bureau of Geology and Mineral Resource of Hubei Province. 1990. Regional Geology of Hubei Province. Beijing: Geological Publishing House, 518-583 (in Chinese)

    [3]

    Butler RWH. 1985. Thrust tectonics: A personal view. Geological Magazine, 122(3): 223-232

    [4]

    Chang YF, Liu XP and Wu YC. 1991. The Copper-Iron Belt of the Lower and Middle Yangtze River. Beijing: Geological Publishing House, 1-379 (in Chinese)

    [5]

    Chen GN and Grapes RH. 2009. Genesis of Granite: In-Situ Melting and Crustal Evolution. Beijing: China University of Geosciences Press, 1-253 (in Chinese)

    [6]

    Chen ZH, Xing GF, Guo KY, Zeng Y, Kuang FX, He ZY, Ke X, Yu MG, Zhao XL and Zhang Y. 2011. Zircon U-Pb ages of ore-bearing granitic bodies in northern Jiujiang-Ruichang metallogenic district of the mineralization belt of the Middle-Lower Reaches of the Yangtze River, and its geological significance. Acta Geologica Sinica, 85(7): 1146-1158 (in Chinese with English abstract)

    [7]

    Chester JS, Chester FM and Kronenberg AK. 2005. Fracture surface energy of the Punchbowl fault, San Andreas system. Nature, 437(7055): 133-136

    [8]

    Dill HG. 2010. The "chessboard" classification scheme of mineral deposits: Mineralogy and geology from aluminum to zirconium. Earth-Science Reviews, 100(1-4): 1-420

    [9]

    Ding X, Jiang SY, Zhao KD, Nakamura E, Kobayashi K, Ni P, Gu LX and Jiang YH. 2006. In-situ U-Pb SIMS dating and trace element (EMPA) composition of zircon from a granodiorite porphyry in the Wushan copper deposit, China. Mineralogy and Petrology, 86(1-2): 29-44

    [10]

    Dong SW, Zhang YQ, Long CX, Yang ZY, Ji Q, Wang T, Hu JM and Chen XH. 2007. Jurassic tectonic revolution in China and new interpretation of the Yanshan Movement. Acta Geologica Sinica, 81(11): 1449-1461 (in Chinese with English abstract)

    [11]

    Gu LX, Hu WX, Ni P, He JX, Xu YT, Lu JJ, Lin CM and Li WQ. 2003. New discussion on the South China-type massive sulphide deposits formed on continental crust. Geological Journal of China Universities, 9(4): 592-608 (in Chinese with English abstract)

    [12]

    Gu LX, Zaw K, Hu WX, Zhang KJ, Ni P, He JX, Xu YT, Lu JJ and Lin CM. 2007. Distinctive features of Late Palaeozoic massive sulphide deposits in South China. Ore Geology Reviews, 31(1-4): 107-138

    [13]

    Hou HS, Gao R, Lu ZW, Ma LC and Xu K. 2012. Tomography imaging of near-surface velocity structure experiment and its application in the ore concentrate area of the Lower and Middle Yangtze River. Acta Geologica Sinica, 86(6): 940-947 (in Chinese with English abstract)

    [14]

    Huang XB, Pei RF, Mei YX, Qu HY, Fang P and Zhu AM. 2011. Analysis of geological characteristics and ore-search prospect of the Aoxia-Dingjiashan, Jiujiang-Ruichang area in Jiangxi Province. Geology and Prospecting, 47(4): 531-542 (in Chinese with English abstract)

    [15]

    Jiang SY, Li L, Zhu B, Ding X, Jiang YH, Gu LX and Ni P. 2008. Geochemical and Sr-Nd-Hf isotopic compositions of granodiorite from the Wushan copper deposit, Jiangxi Province and their implications for petrogenesis. Acta Petrologica Sinica, 24(8): 1679-1690 (in Chinese with English abstract)

    [16]

    Jiang SY, Sun Y, Sun MZ, Bian LZ, Xiong YG, Yang SY, Cao ZQ and Wu YM. 2010. Reiterative fault systems and superimposed mineralization in the Jiurui metallogenic cluster district, Middle and Lower Yangtze River mineralization belt, China. Acta Petrologica Sinica, 26(9): 2751-2767 (in Chinese with English abstract)

    [17]

    Jiang SY, Ding QF, Yang SY, Zhu ZY, Sun MZ, Sun Y, Xiong YG and Bian LZ. 2011. Discovery and significance of carbonate mud mounds from Cu-polymetallic deposits in the Middle and Lower Yangtze metallogenic belt: Examples from the Wushan and Dongguashan deposits. Acta Geologica Sinica, 85(5): 744-756 (in Chinese with English abstract)

    [18]

    Jiang SY, Xu YM, Zhou W, Zhu ZY, Kong FB and Sun Y. 2012. Discovery of fault-grinding siliceous breccia rock in the Jiurui ore district, Jiangxi Province, and its formation mechanism and mineralization significance. Acta Petrologica Sinica, 28(10): 3076-3086 (in Chinese with English abstract)

    [19]

    Kong FB, Jiang SY, Xu YM, Zhu ZY, Qian H and Bian LZ. 2012. Submarine hydrothermal exhalation with superimposed magmatic-hydrothermal mineralization in the Wushan copper deposit, Jiangxi Province: Constraints from geology, ore texture and ore deposit geochemistry. Acta Petrologica Sinica, 28(12): 3929-3937 (in Chinese with English abstract)

    [20]

    Li HY, Yang ZS, Meng YF, Zeng PS and Xu WY. 2004. Geological characteristics of massive sulfide deposits in Tongling ore concentration area, Anhui Province. Mineral Deposits, 23(3): 327-333 (in Chinese with English abstract)

    [21]

    Li HY, Li YJ, Hou ZQ, Yang ZS, Meng YF, Zeng PS and Xu WY. 2005. Geochemical features of the Xinqiao massive sulfide deposit in Anhui Province. Chinese Journal of Geology, 40(3): 337-345 (in Chinese with English abstract)

    [22]

    Li JW, Li XH, Pei RF, Mei YX, Wang YL, Qu WJ, Huang XB and Zang WS. 2007. Re-Os age of molybdenite from the southern ore zone of the Wushan copper deposit, Jiangxi Province, and its geological significance. Acta Geologica Sinica, 81(6): 801-807 (in Chinese with English abstract)

    [23]

    Li L and Jiang SY. 2009. Petrogenesis and geochemistry of the Dengjiashan porphyritic granodiorite, Jiujiang-Ruichang metallogenie district of the Middle-Lower Reaches of the Yangtze River. Acta Petrologica Sinica, 25(11): 2877-2888 (in Chinese with English abstract)

    [24]

    Li XH, Li WX, Wang XC, Li QL, Liu Y, Tang GQ, Gao YY and Wu FY. 2010. SIMS U-Pb zircon geochronology of porphyry Cu-Au-(Mo) deposits in the Yangtze River Metallogenic Belt, eastern China: Magmatic response to Early Cretaceous lithospheric extension. Lithos, 119(3-4): 427-438

    [25]

    Mao JW, Shao YJ, Xie GQ, Zhang JD and Chen YC. 2009. Mineral deposit model for porphyry-skarn polymetallic copper deposits in Tongling ore dense district of Middle-Lower Yangtze Valley metallogenic belt. Mineral Deposits, 28(2): 109-119 (in Chinese with English abstract)

    [26]

    McClay KR and Buchanan PG. 1992. Thrust faults in inverted extensional basins. In: Thrust Tectonics. Geological Society, London, Special Publications, 93-104

    [27]

    Micklethwaite S, Sheldon HA and Baker T. 2010. Active fault and shear processes and their implications for mineral deposit formation and discovery. Journal of Structural Geology, 32(2): 151-165

    [28]

    Muchez P, Heijlen W, Banks D, Blundell D, Boni M and Grandia F. 2005. Extensional tectonics and the timing and formation of basin-hosted deposits in Europe. Ore Geology Reviews, 27(1-4): 241-267

    [29]

    Nabelek PI and Liu M. 2004. Petrologic and thermal constraints on the origin of leucogranites in collisional orogens. Transactions of the Royal Society of Edinburgh-Earth Sciences, 389: 73-85

    [30]

    Niu YL. 2005. Generation and evolution of basalitic magma: Same basic consepts and new view on the orgin of Mesozoic-Cenozic basalitic volcanism in eastern China. Geological Journal of China Universities, 11(1): 9-46

    [31]

    Pirajno F, Ernst RE, Borisenko AS, Fedoseev G and Naumov EA. 2009. Intraplate magmatism in Central Asia and China and associated metallogeny. Ore Geology Reviews, 35(2): 114-136

    [32]

    Pirajno F. 2010. Intracontinental strike-slip faults, associated magmatism, mineral systems and mantle dynamics: Examples from NW China and Altay-Sayan (Siberia). Journal of Geodynamics, 50(3-4): 325-346

    [33]

    Shang YJ, Yue ZQ, Xia BD, Lin HM and Li GH. 2002. A tectonic escape model for the formation of sedimentary basins in the Yangzhou block of the Lower Yangtze Region, eastern China. Journal of Asian Earth Sciences, 20(2): 105-117

    [34]

    Shu LS, Shi YS and Guo LZ. 1995. Plate Tectonic and Terrane Structure in Middle Part of Jiangnan Orogen and Their Collisonal Movement. Nanjing: Nanjing University Press, 17-149 (in Chinese)

    [35]

    Sun Y, Shi ZJ and Gou FY. 1993. Study on mechanical parameters of rocks and regional layer-slip systems in Hunan-Jiangxi areas. Science in China (Series B), 36(8): 962-975

    [36]

    Sun Y, Jiang SY, Zhou W and Lu XC. 2013. Nano-coating texture on the shear slip surface in rocky materials. Advanced Materials Research, 669: 108-114

    [37]

    Suppe J. 1983. Geometry and kinematics of fault-bend folding. American Journal of Science, 283(7): 684-721

    [38]

    Suppe J and Medwedeff DA. 1990. Geometry and kinematics of fault-propagation folding. Eclogae Geologicae Helvetiae, 83: 409-454

    [39]

    Suppe J. 2011. Mass balance and thrusting in detachment folds. In: McClay K, Shaw J and Suppe J (eds.). Thrust fault-related folding. AAPG Memoir, No. 94: 21-37

    [40]

    Tullis J. 2002. Deformation of granitic rocks: Experimental studies and natural examples. Reviews of Mineralogy and Geochemistry, 51(1): 51-56

    [41]

    Wang CY, Zhang XK, Chen BY, Chen XB, Song SY, Zheng JH, Hu HX and Lou H. 1997. Crustal structure of Dabieshan orogenic belt. Science in China (Series D), 40(5): 456-462

    [42]

    Wang LS, Liu SW, Li C and Xu MJ. 2006. Structure of crust and upper mantle and seismic observations in several crustal-tectonic regions. In: Recent Progress in Geology and Geochemistry.Nanjing: Nanjing University Press, 376-389 (in Chinese)

    [43]

    Wang WB, Ji SX, Xing WC, Wu HI, Zhou HM and Xue YY. 1986. Geological characteristics and genesis of stratabound deposits of Cu-bearing pyrite in the Jiujiang-Ruichang area, Jiangxi, China. Bulletin of Nanjing Institute of Geology and Mineral Resources, 7: 26-40 (in Chinese)

    [44]

    Wilson B, Dewers T, Reches Z and Brune J. 2005. Particle size and energetics of gouge from earthquake rupture zones. Nature, 434(7034): 749-752

    [45]

    Wu LS and Zou XQ. 1997. Re-Os isotopic age study of the Chengmenshan copper deposit, Jiangxi Province. Mineral Deposits, 16(4): 376-381 (in Chinese with English abstract)

    [46]

    Xu KQ and Zhu JC. 2009. Origin of the Sedimentary- (or Volcanosedimentary-) Iron-Copper Deposits in Some Fault Depression Belts in South China. Beijing: Science Press, 426-499 (in Chinese)

    [47]

    Xu YM, Jiang SY, Zhu ZY, Zhou W, Kong FB and Sun MZ. 2012. Geochronology, geochemistry and mineralization of the quartz diorite-porphyrite and granodiorite porphyry in the Shanshangwan area of the Jiurui ore district, Jiangxi Province. Acta Petrologica Sinica, 28(10): 3306-3324 (in Chinese with English abstract)

    [48]

    Xu YM, Jiang SY, Zhu ZY, Zhou W, Kong FB, Sun MZ and Xiong YG. 2013. Geochronology, geochemistry and mineralogy of ore-bearing and ore-barren intermediate-acid intrusive rocks from the Jiurui ore district, Jiangxi Province and their geological Implications. Acta Petrologica Sinica, 29(12): 4291-4310 (in Chinese with English abstract)

    [49]

    Xypolias R. 2009. Some new aspects of kinematic vorticity analysis in naturally deformed quartzites. Journal of Structural Geology, 31(1): 3-10

    [50]

    Yang SY, Jiang SY, Li L, Sun Y, Sun MZ, Bian LZ, Xiong YG and Cao ZQ. 2011. Late Mesozoic magmatism of the Jiurui mineralization district in the Middle-Lower Yangtze River Metallogenic Belt, eastern China: Precise U-Pb ages and geodynamic implications. Gondwana Research, 20(4): 831-843

    [51]

    Yue WZ, Wei NY, Song W and Liu FM. 1986. Sedimentary facies of the Late Carboniferous Weining age and its control to the metallogenesis of massive sulphide deposits. Bulletin of Nanjing Institute of Geology and Mineral Resources, 7(4): 19-40 (in Chinese with English abstract)

    [52]

    Zeng PS, Meng YF, Yang ZS, Pei RF and Wang SC. 2004. Hydrothermal sedimentary rocks of sedex-type massive sulfide deposits in Tongling ore cluster area, Anhui Province. Mineral Deposits, 23(3): 334-343 (in Chinese with English abstract)

    [53]

    Zhai YS, Yao SZ and Lin XD. 1992. The Metallogenic Features of Fe and Cu (Au) in the Middle and Lower Reaches of the Changjiang River. Beijing: Geological Publishing House, 1-235 (in Chinese)

    [54]

    Zhai YS, Yao SZ and Zhou ZG. 1999. Research on orefield tectonics of copper and gold deposits in the Middle-Lower Reaches of the Yangtze River. Wuhan: China University of Geosciences Press, 1-195 (in Chinese)

    [55]

    Zhai YS, Wang JP, Peng RM and Liu JJ. 2009. Research on superimposed metallogenic systems and polygenetic mineral deposits. Earth Science Frontiers, 16(6): 282-290 (in Chinese with English abstract)

    [56]

    Zhang ZJ, Badal J, Li YK, Chen Y, Yang LQ and Teng JW. 2005. Crust-upper mantle seismic velocity structure across Southeastern China. Tectonophysics, 395(1-2): 137-157

    [57]

    附中文参考文献

    [58]

    安徽省地质矿产局. 1987. 安徽省区域地质志. 北京: 地质出版社, 471-548

    [59]

    常印佛, 刘湘培, 吴言昌. 1991. 长江中下游铁铜成矿带. 北京: 地质出版社, 1-379

    [60]

    陈国能, Grapes RH. 2009. 花岗岩成因: 原地重熔与地壳演化. 北京: 中国地质大学出版社, 1-253

    [61]

    陈志洪, 邢光福, 郭坤一, 曾勇, 匡福祥, 贺振宇, 柯学, 余明刚, 赵希林, 张勇. 2011. 长江中下游成矿带九瑞矿集区(北部)含矿岩体的锆石U-Pb定年及其地质意义. 地质学报, 85(7): 1146-1158

    [62]

    董树文, 张岳桥, 龙长兴, 杨振宇, 季强, 王涛, 胡建民, 陈宣华. 2007. 中国侏罗纪构造变革与燕山运动新诠释. 地质学报, 81(11): 1449-1461

    [63]

    顾连兴, 胡文瑄, 倪培, 何金祥, 徐跃通, 陆建军, 林春明, 李伟强. 2003. 再论大陆地壳断裂拗陷带中的华南型块状硫化物矿床. 高校地质学报, 9(4): 592-608

    [64]

    侯贺晟, 高锐, 卢占武, 马立成, 徐康. 2012. 长江中下游金属矿集区近地表速度结构层析成像实验及应用. 地质学报, 86(6): 940-947

    [65]

    湖北省地质矿产局. 1990. 湖北省区域地质志. 北京: 地质出版社, 518-583

    [66]

    黄修保, 裴荣富, 梅燕雄, 瞿泓滢, 方平, 祝爱明. 2011. 江西九瑞坳下-丁家山地质特征及找矿前景分析. 地质与勘探, 47(4): 531-542

    [67]

    蒋少涌, 李亮, 朱碧, 丁昕, 姜耀辉, 顾连兴, 倪培. 2008. 江西武山铜矿区花岗闪长斑岩的地球化学和Sr-Nd-Hf同位素组成及成因探讨. 岩石学报, 24(8): 1679-1690

    [68]

    蒋少涌, 孙岩, 孙明志, 边立曾, 熊永根, 杨水源, 曹钟清, 吴亚民. 2010. 长江中下游成矿带九瑞矿集区叠合断裂系统和叠加成矿作用. 岩石学报, 26(9): 2751-2767

    [69]

    蒋少涌, 丁清峰, 杨水源, 朱志勇, 孙明志, 孙岩, 边立曾. 2011. 长江中下游成矿带铜多金属矿床中灰泥丘的发现及其意义——以武山和冬瓜山铜矿为例. 地质学报, 85(5): 744-756

    [70]

    蒋少涌, 徐耀明, 周巍, 朱志勇, 孔凡斌, 孙岩. 2012. 江西九瑞矿集区硅质断裂磨砾岩带的厘定及其成岩成矿意义. 岩石学报, 28(10): 3076-3086

    [71]

    孔凡斌, 蒋少涌, 徐耀明, 朱志勇, 钱汉东, 边立曾. 2012. 江西武山铜矿床海底喷流与岩浆热液叠加成矿作用: 控矿地质条件、矿石结构构造与矿床地球化学制约. 岩石学报, 28(12): 3929-3937

    [72]

    李红阳, 杨竹森, 蒙义峰, 曾普胜, 徐文艺. 2004. 铜陵矿集区块状硫化物矿床地质特征. 矿床地质, 23(3): 327-333

    [73]

    李红阳, 李英杰, 侯增谦, 杨竹森, 蒙义峰, 曾普胜, 徐文艺. 2005. 安徽新桥块状硫化物矿床地球化学特征. 地质科学, 40(3): 337-345

    [74]

    李进文, 李旭辉, 裴荣富, 梅燕雄, 王永磊, 屈文俊, 黄修保, 臧文栓. 2007. 江西武山铜矿南矿带辉钼矿同位素年龄及其地质意义. 地质学报, 81(6): 801-807

    [75]

    李亮, 蒋少涌. 2009. 长江中下游地区九瑞矿集区邓家山花岗闪长斑岩的地球化学与成因研究. 岩石学报, 25(11): 2877-2888

    [76]

    毛景文, 邵拥军, 谢桂青, 张建东, 陈毓川. 2009. 长江中下游成矿带铜陵矿集区铜多金属矿床模型. 矿床地质, 28(2): 109-119

    [77]

    舒良树, 施央申, 郭令智. 1995. 江南中段板块-地体构造与碰撞造山运动学. 南京: 南京大学出版社, 17-149

    [78]

    王良书, 刘绍文, 李成, 徐鸣洁. 2006. 中国大地地壳若干构造区宽频地震台阵观测与地壳上地幔结构. 见: 地质与地球化学研究进展. 南京: 南京大学出版社, 376-389

    [79]

    王文斌, 季绍新, 邢文臣, 巫怀仁, 周汉民, 薛运义. 1986. 江西九瑞地区含铜黄铁矿型矿床的地质特征及成因. 中国地质科学院南京地质矿产研究所所刊, 7: 26-40

    [80]

    吴良士, 邹晓秋. 1997. 江西城门山铜矿铼-锇同位素年龄研究. 矿床地质, 16(4): 376-381

    [81]

    徐克勤, 朱金初. 2009. 我国东南部几个断裂拗陷带中沉积(或火山沉积)热液迭加类铁铜矿床成因的探讨. 北京: 科学出版社, 426-499

    [82]

    徐耀明, 蒋少涌, 朱志勇, 周巍, 孔凡斌, 孙明志. 2012. 九瑞矿集区山上湾矿区石英闪长玢岩和花岗闪长斑岩的年代学、地球化学及成矿意义. 岩石学报, 28(10): 3306-3324

    [83]

    徐耀明, 蒋少涌, 朱志勇, 周巍, 孔凡斌, 孙明志, 熊永根. 2013. 江西九瑞矿集区成矿与未成矿中酸性侵入岩年代学、岩石化学、矿物化学特征的异同及地质意义. 岩石学报, 29(12): 4291-4310

    [84]

    岳文浙, 魏乃颐, 宋炜, 刘凤美. 1986. 江西九瑞地区晚石炭世威宁期沉积相及其对块状硫化物矿床的控制作用. 中囯地质科学院南京地质矿产研究所所刊, 7(4): 19-40

    [85]

    曾普胜, 蒙义峰, 杨竹森, 裴荣富, 王训诚. 2004. 安徽铜陵矿集区与块状硫化物矿床有关的热水沉积岩. 矿床地质, 23(3): 334-343

    [86]

    翟裕生, 姚书振, 林新多. 1992. 长江中下游地区铁铜(金)成矿规律. 北京: 地质出版社, 1-235

    [87]

    翟裕生, 姚书振, 周宗桂. 1999. 长江中下游铜金矿床矿田构造. 武汉: 中国地质大学出版社, 1-195

    [88]

    翟裕生, 王建平, 彭润民, 刘家军. 2009. 叠加成矿系统与多成因矿床研究. 地学前缘, 16(6): 282-290

  • 加载中
计量
  • 文章访问数:  7194
  • PDF下载数:  11216
  • 施引文献:  0
出版历程
收稿日期:  2013-09-15
修回日期:  2013-11-16
刊出日期:  2013-12-31

目录