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31.
桃山铀矿田桃山断裂及其保矿作用 总被引:2,自引:0,他引:2
桃山铀矿田位于江西省中部,断裂构造发育,既有成矿构造,也有保矿构造,其中斜贯桃山矿田的桃山断裂即是一保矿构造,它形成于车免近时期,走向北东,倾向南东,右行正断,并具铰链断层性质,上盘地块掀斜下落,致使上盘成矿壳层向NW和NE倾斜,由于倾末端的侵蚀深度较小,保矿条件较好,加强这些地带的铀矿勘查和评价具有重要意义。 相似文献
32.
宫同伦 《地球科学与环境学报》1991,(1)
本文用动力成矿观点对小秦岭金矿田富矿体的形成提出了新的解释,对本区的动力成矿特点作了较详细的说明。文中联系到地壳演化的不同阶段对金矿的富化过程进行了较深入的讨论,并提出了新的成矿系列。笔者以基础地质、大地构造和同位素年龄资料为依据对小秦岭金矿田含金石英脉的成因提出了与前人不同的新观点,认为它是晋宁晚期岩浆期后热液矿床。 相似文献
33.
白干湖矿田是由柯可卡尔德、白干湖、巴什尔希和阿瓦尔等钨锡矿床构成的一个超大型钨锡矿田,其中的巴什尔希矿床正处于勘查阶段.文章对其开展了详细的流体包裹体岩相学、显微测温和氢、氧同位素地球化学研究,结果表明热液石英脉中流体包裹体以含CO2包裹体最多,其次为液体包裹体,含子矿物包裹体很少见,属于H2O-CO2-NaCl体系.均一温度范围广,介于260~440℃,集中在300~380℃;成矿流体w(NaCleq)较低,大多介于4%~12%;CO2摩尔分数[x(CO2)]为0.043%~0.595%,集中于0~0.2%.CO2相密度约0.74~0.84 g/cm3,H2O相密度1.02~1.10 g/cm3;成矿时流体压力为80~160MPa.流体演化经历成矿前期、成矿期和成矿后期3个期次,各期次流体演化趋势不同,整体上流体从成矿前期到成矿后期均一温度和盐度逐渐降低.流体包裹体氢、氧同位素组成表明,钨锡主成矿期流体以岩浆水为主,到后期硫化物矿化阶段又混合有大气降水. 相似文献
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新疆祁漫塔格柯可卡尔德钨锡矿床控矿构造及 40Ar-39Ar年代学研究 总被引:1,自引:0,他引:1
位处新疆东昆仑祁漫塔格地区的白干湖是中国西部最新探明的一个具超大型远景规模的钨锡矿田,柯可卡尔德是其中勘查程度最高、规模最大的钨锡矿床.文章在对柯可卡尔德钨锡矿地质特征详细野外调研和剖析的基础上,重点开展了控矿构造和白云母40Ar-39Ar定年研究.结果表明,该矿区内构造活动强烈且具多期次性,可划分为成矿前向西右旋剪切构造、成矿期以NE向为主的左旋张扭性断裂和成矿后近SN向正断层性质断裂等3期.应用白云母40 Ar-39 Ar同位素测年技术,分别测得了强云英岩化钨锡矿化花岗岩脉内白云母的积分年龄为(411.7±2.6) Ma,等时线年龄为(411.8±4.7) Ma(n=8,MSWD=0.21);黑钨矿-石英脉垂直脉壁生长的片状白云母的积分年龄为(412.8±2.4) Ma,等时线年龄为(414.6±3.9) Ma(n=10,MSWD=0.22),厘定了该矿床的成矿时代为晚志留世,认为其形成于东昆仑地区加里东造山旋回的后碰撞构造阶段. 相似文献
35.
江西相山火山-侵入杂岩体锆石SHRIMP定年及其地质意义 总被引:13,自引:2,他引:11
采用锆石SHRIMP微区U-Pb测年技术,测定了江西相山铀矿田火山-侵入杂岩的时代。采自于相山西北部的石马山和西部南陂的鹅湖岭组碎斑熔岩的SHRIMP锆石206Pb/238U表面年龄加权平均值分别为(134.6±1.0)Ma(MSWD=1.5)和(134.1±1.0)Ma(MSWD=0.65),可以限定相山第二火山喷发旋回的结束时代为134 Ma;采自于相山北部巴泉和南部浯漳的似斑状花岗岩的SHRIMP锆石206Pb/238U表面年龄加权平均值为(133.3±0.8)Ma(MSWD=0.82)和(134.7±0.9)Ma(MSWD=1.08),与碎斑熔岩的年龄在误差范围内基本一致,结合野外地质事实和前人的地球化学测试分析结果,确认碎斑熔岩和似斑状花岗岩属于同期、同来源的火山喷发-侵入的产物,形成于134~133 Ma。书堂钻孔ZK111A-1中打鼓顶组顶部流纹英安岩的锆石206Pb/238U表面年龄加权平均值为(141.6±1.7)Ma(MSWD=0.9),表明第一旋回火山喷发的时代应结束于142 Ma,大部分属于晚侏罗世火山活动。岗上英钻孔岩心中石英二长花岗斑岩的锆石206Pb/238U表面年龄加权平均值为(136.4±1.0)Ma(MSWD=1.7),如意亭剖面第二采石场流纹质英安斑岩的锆石206Pb/238U表面年龄加权平均值为(137.4±1.7)Ma(MSWD=1.11);推测这两者应属于早晚两期火山喷发旋回间隔期的次火山-侵入岩,进而限定136~137 Ma为相山两期火山喷发旋回的间隔时期。综合前人资料和本文测试分析结果,可将相山火山喷发第二旋回鹅湖岭组的时代限定为136~133 Ma,应属于早白垩世的火山活动,进而认为将相山地区"鹅湖岭组"的地层时代划归为早白垩世较为合适。 相似文献
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37.
Gang Yu Jiangfeng Chen Chunji Xue Yuchuan Chen Fukun Chen Xiaoyue Du 《Ore Geology Reviews》2009,35(3-4):367-382
The Qingchengzi orefield in northeastern China, is a concentration of several Pb–Zn, Ag, and Au ore deposits. A combination of geochronological and Pb, Sr isotopic investigations was conducted. Zircon SHRIMP U–Pb ages of 225.3 ± 1.8 Ma and 184.5 ± 1.6 Ma were obtained for the Xinling and Yaojiagou granites, respectively. By step-dissolution Rb–Sr dating, ages of 221 ± 12 Ma and 138.7 ± 4.1 Ma were obtained for the sphalerite of the Zhenzigou Zn–Pb deposit and pyrargyrite of the Ag ore in the Gaojiabaozi Ag deposit, respectively. Pb isotopic ratios of the Ag ore at Gaojiabaozi (206Pb/204Pb = 18.38 to 18.53) are higher than those of the Pb–Zn ores (206Pb/204Pb = 17.66 to 17.96; Chen et al. [Chen, J.F., Yu, G., Xue, C.J., Qian, H., He, J.F., Xing, Z., Zhang, X., 2005. Pb isotope geochemistry of lead, zinc, gold and silver deposit clustered region, Liaodong rift zone, northeastern China. Science in China Series D 48, 467–476.]). Triassic granites show low Pb isotopic ratios (206Pb/204Pb = 17.12 to 17.41, 207Pb/204Pb = 15.47 to 15.54, 208Pb/204Pb = 37.51 to 37.89) and metamorphic rocks of the Liaohe Group have high ratios (206Pb/204Pb = 18.20 to 24.28 and 18.32 to 20.06, 207Pb/204Pb = 15.69 to 16.44 and 15.66 to 15.98, 208Pb/204Pb = 37.29 to 38.61 and 38.69 to 40.00 for the marble of the Dashiqiao Formation and schist of the Gaixian Formation, respectively).Magmatic activities at Qingchengzi and in adjacent regions took place in three stages, and each contained several magmatic pulses: ca. 220 to 225 Ma and 211 to 216 Ma in the Triassic; 179 to 185 Ma, 163 to 168 Ma, 155 Ma and 149 Ma in the Jurassic, as well as ca. 140 to 130 Ma in the Early Cretaceous. The Triassic magmatism was part of the Triassic magmatic belt along the northern margin of the North China Craton produced in a post-collisional extensional setting, and granites in it formed by crustal melting induced by mantle magma. The Jurassic and Early Cretaceous magmatism was related to the lithospheric delamination in eastern China. The Triassic is the most important metallogenic stage at Qingchengzi. The Pb–Zn deposits, the Pb–Zn–Ag ore at Gaojiabaozi, and the gold deposits were all formed in this stage. They are temporally and spatially associated with the Triassic magmatic activity. Mineralization is very weak in the Jurassic. Ag ore at Gaojiabaozi was formed in the Early Cretaceous, which is suggested by the young Rb–Sr isochron age, field relations, and significantly different Pb isotopic ratios between the Pb–Zn–Ag and Ag ores. Pb isotopic compositions of the Pb–Zn ores suggest binary mixing for the source of the deposits. The magmatic end-member is the Triassic granites and the other metamorphic rocks of the Liaohe Group. Slightly different proportions of the two end-members, or an involvement of materials from hidden Cretaceous granites with slightly different Pb isotopic ratios, is postulated to interpret the difference of Pb isotopic compositions between the Pb–Zn–(Ag) and Ag ores. Sr isotopic ratios support this conclusion. At the western part of the Qingchengzi orefield, hydrothermal fluid driven by the heat provided by the now exposed Triassic granites deposited ore-forming materials in the low and middle horizons of the marbles of the Dashiqiao Formation near the intrusions to form mesothermal Zn–Pb deposits. In the eastern part, hydrothermal fluids associated with deep, hidden Triassic intrusions moved upward along a regional fault over a long distance and then deposited the ore-forming materials to form epithermal Au and Pb–Zn–Ag ores. Young magmatic activities are all represented by dykes across the entire orefield, suggesting that the corresponding main intrusion bodies are situated in the deep part of the crust. Among these, only intrusions with age of ca. 140 Ma might have released sufficient amounts of fluid to be responsible for the formation of the Ag ore at Gaojiabaozi.Our age results support previous conclusions that sphalerite can provide a reliable Rb–Sr age as long as the fluid inclusion phase is effectively separated from the “sulfide” phase. Our work suggests that the separation can be achieved by a step-resolution technique. Moreover, we suggest that pyrargyrite is a promising mineral for Rb–Sr isochron dating. 相似文献
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40.
湖南仁里稀有金属矿田地质特征、成矿时代 及其找矿意义 总被引:4,自引:3,他引:1
仁里稀有金属矿田位于幕阜山岩体西南缘,是华南地区重要的稀有金属矿产地之一。文章旨在通过对区域成矿条件、矿田地质特征、地球化学特征、成岩成矿时代与稀有金属成矿作用的综合分析,为矿田勘查设计乃至华南地区稀有金属找矿与研究提供理论依据。在矿田范围内对燕山期、武陵期花岗岩及每个矿区代表性伟晶岩进行了系统采样,开展了岩石化学成分分析,同时对矿田内二云母二长花岗岩及锂辉石伟晶岩分别进行了锆石U-Pb、白云母Ar-Ar同位素定年。研究表明:①多期造山与燕山期陆内活化是成矿的有利地质背景,多阶段伸展作用导致幕阜山地区多期大规模的多金属成矿作用发生;②矿田构造主要以NE(或NNE)向构造为主,复合改造NW向及近EW向构造,NE(或NNE)向和NW(或近EW)向构造呈现立交桥式的构造格局,控制了花岗岩和伟晶岩分布;③矿田内伟晶岩属极高分异、富硅、过铝质花岗质岩石,燕山期花岗岩属陆壳改造"S型"花岗岩;④幕阜山岩体由岩体内接触带往岩体外接触带(10 km),由黑云母伟晶岩→二云母伟晶岩→白云母伟晶岩→锂云母伟晶岩→锂辉石白云母伟晶岩过渡,形成了较完整的稀有金属演化序列:无矿化→Be→Be+Nb+Ta→Be+Nb+Ta+Li→Be+Nb+Ta+Li+Cs;⑤稀有金属成矿与构造岩浆时空演化、构造组合、特别是岩浆的分异程度密切相关,矿田内燕山期花岗岩年龄139.3~146.2 Ma,稀有金属成矿年龄为130.5~130.8 Ma。 相似文献