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1.
广东大宝山多金属矿床成矿物质来源同位素证据   总被引:8,自引:0,他引:8  
笔者对大宝山多金属矿床矿石和脉石矿物进行铅、硫、氢和氧同位素组成测定,获得硫化物的206Pb/204Pb值为17.930~18.785;207Pb/204Pb值为15.491~15.772;208Pb/204Pb值为37.990~40.990,并组成良好的线性关系。泥盆系地层中黄铁矿的δ34S为-22.5‰~+17.9‰,矿床硫化物的δ34S为-2.4‰~+4.6‰。黄铁矿、闪锌矿和方铅矿共生矿物对,具有δ34Spy>δ34Ssp>δ34Sgn,用磁黄铁矿的硫同位素组成估算出δ34S∑S为2‰±3‰。硫化物包裹体的氢同位素在-101‰~-123‰之间,与硫化物共生石英的氧同位素为+9.3‰~+17.9‰,换算成水的氧同位素为+0.3‰~+3.9‰,表明成矿热液来源较为复杂。  相似文献   

2.
湖南香花岭锡多金属矿床同位素地球化学研究   总被引:4,自引:0,他引:4  
笔者对湖南香花岭锡多金属矿床成矿期不同的矿物组合进行矿物包裹体温度和硫、铅同位素测定,获得了锡石-硫化物阶段平均-温度为350℃,硫化物阶段平均均-温度为250℃.锡石-硫化物中黄铁矿的δ34为-1.O‰~+5.4‰;闪锌矿的δ34S为+0.8‰-+5.8‰;磁黄铁矿的δ34S为+1.5‰~5.2‰;方铅矿的δ34S为-1.0‰+3.6‰,具有变化范围小,组成稳定的特点.方铅矿的206Pb/204Pb值为17.785~19.341,207Pb/204Pb值为15.416~16.452,208Pb/204Pb值为38.357~42.579.硫同位素指示硫来源于岩浆,铅同位素指示是多来源.  相似文献   

3.
对新疆霍什布拉克铅锌矿床硫化物硫、铅同位素测定,获得成矿早期黄铁矿的δ34S值为-12.1‰~-8.5‰,闪锌矿的δ34S值为-17.6‰,方铅矿的δ34S值为-18.8‰;晚期黄铁矿的δ34S值为+12.8‰~+22.2‰,闪锌矿的δ34S值为+20.0‰~+24.2‰,方铅矿的δ34S值为+14.4‰+22.2‰.成矿从早到晚,硫同位素由大的负值变化到大的正值,方铅矿的206 Pb/204 Pb比值为17.900-18.086,207Pb/204Pb比值为15.586-15.732,208Pb/204Pb比值为37.997-38.381;黄铁矿的206Pb/204Pb比值为17.950,207 pb/204Pb比值为15.633,208 pb/204 Pb比值为38.144.灰岩的206pb/204 Pb比值为18.156-18.875,207Pb/204Pb比值为15.396-15.855,208Pb/204Pb比值为37.631-38.967.硫同位素指示硫来源于海水硫酸盐还原硫.铅同位素指示至少有两上以上来源.  相似文献   

4.
对新疆可可塔勒铅锌矿床物理化学条件和硫铅同位素研究,获得矿床形成温度为300℃;logfo2为-32.75~-33.91; logf2为-6.75~-10.00;pH值为5.3~7.0.矿石和脉石的206 Pb/204Pb比值为18.001~18.200,207pb/204 Pb比值为15.480~15.705,208Pb/204 Pb比值为37.605~38.861.硫化物的206Pb/204Pb比值为18.001~18.176,207pb/204 Pb比值为15.480~15.634,208Pb/204 Pb比值为37.605~38.027;铁帽的206Pb/204Pb比值为18.017~18.200,207pb/204Pb比值为15.509~15.617,208pb/204 Pb比值为37.833~38.283;重晶石和石英的206 pb/204 Pb比值为18.014~18.027,207pb/204 Pb比值为15.482~15.495,208Pb/204Pb比值为37.632~37.675.硫化物的δ34S值为-15.8‰~+5.1‰,其中黄铁矿的δ34S值为-14.3‰~+5.1‰,方铅矿的δ34S值为-15.8‰~-1.0‰,磁黄铁矿的δ34S值为-14.6‰~-1.4‰,闪锌矿的δ34S值为-14.5‰~-11.3‰.硫同位素指示硫来源于岩浆,铅同位素指示铅是多来源.  相似文献   

5.
水竹岭铜-铁-金-硫矿床发育上部层状矿体和下部脉状矿体。上部层状矿石重晶石δ34S值为+19.9‰。上部层状矿石黄铁矿δ34S值为+0.9~+5.8‰,下部脉状矿石黄铁矿δ34S值为+3.2~+6.4‰。下部脉状矿体中方解石的δ18O值为+13.3‰,δ13C值为1.2‰,上部层状矿石白云石的δ18O值为+14.1‰,δ13C值为2.2‰。下部脉状矿石和矿化岩石中黄铁矿的206Pb/204Pb、207Pb/204Pb、208Pb/204Pb平均值分别为18.2241、15.5245和38.2289;上部层状矿石中黄铁矿的206Pb/204Pb、207Pb/204Pb、208Pb/204Pb平均值分别为18.0692、15.5020和38.1232。从下部脉状矿石到上部层状矿石,黄铁矿的δ34S值、206Pb/204Pb、207Pb/204Pb、208Pb/204Pb平均值逐渐降低,δ18O值和δ13C值等逐渐增高。地质和同位素地球化学特征反映水竹岭铜-铁-金-硫矿床为海底热水喷流沉积成因,揭示了块状硫化物矿床的二元结构性。  相似文献   

6.
贵州独山巴年锑矿床是华南锑矿带代表性锑矿床之一。矿体赋存于中泥盆统独山组地层之中。本文对该矿床辉锑矿的硫、铅同位素组成进行了系统分析。结果表明,辉锑矿的δ34S值变化范围为-5.4‰~-1.2‰,平均-4.2‰,计算获得成矿流体中总硫的δ34SΣS=0.1‰,显示岩浆来源硫的同位素特征。辉锑矿铅同位素组成变化范围较窄:206Pb/204Pb为18.561~19.156,平均18.813;207Pb/204Pb为15.703~15.769,平均15.734;208Pb/204Pb为38.573~39.207,平均38.906。绝大多数样品中矿石铅为正常铅,具有华南区域性铅同位素组成特征。我们认为巴年锑矿床成矿金属元素锑除主要来源于赋矿围岩泥盆系外,基底地层也可能提供了部分成矿物质。  相似文献   

7.
宛克勇 《矿产与地质》2008,22(6):541-542
对湖南柏坊铜矿床矿石和脉石矿物进行矿物包裹体、碳、氧、氢和硫同位素测定,获得成矿均一温度约为182℃~192℃,盐度为1.2~4.7wt%。方解石的δ^13C为-2.0‰~3.1‰,δ^18Osmow为12.6‰~20.9‰,δD为-67.3‰~-131.6‰,氢、氧和碳同位素数值随矿体浅部到深部由小到大的变化,显示出热液可能是多来源的。硫化物中辉铜矿的δ^34S为-31.8‰~2.9‰,黄铁矿的δ^34S为-2.1‰~+2.9‰。黄铁矿的硫同位素组成大于辉铜矿的硫同位素组成,表明硫同位素达到平衡,并估算出δ^34S∑s为0‰,δ^34S∑s值小,指示出硫可能是岩浆来源。  相似文献   

8.
驱龙铜矿是西藏陆陆碰撞造山带冈底斯斑岩铜矿带内代表性矿床之一。本文对其含矿斑岩和矿石矿物进行了S、Pb同位素组成分析。驱龙矿床含矿斑岩与矿石矿物的硫同位素组成比较一致,含矿斑岩δ34S为-2.1‰~-1.1‰,黄铜矿δ34S为-6.3‰~-1.0‰,均值-2.76‰;硬石膏δ34S为 12.5‰~ 14.4‰,平均 13.4‰。成矿热液中的硫同位素基本达到了平衡,显示出岩浆硫组成特点。含矿斑岩的206Pb/204Pb范围为18.5104~18.6083,207Pb/204Pb变化于15.5946~15.7329之间,208Pb/204Pb为38.6821~39.1531之间;矿石矿物黄铜矿的206Pb/204Pb、207Pb/204Pb、208Pb/204Pb分别为18.4426~18.5909、15.5762~15.6145、38.5569~38.8568。含矿斑岩与矿石矿物的铅同位素组成比较一致,它们的变化幅度较小,应具有相同的起源与演化历史。无论是岩石铅还是矿石铅,在铅构造模式图上均位于造山带铅演化曲线上。驱龙矿床硫、铅同位素数据暗示,成矿物质主要来自深源岩浆,含矿斑岩起源于西藏造山带加厚的下地壳熔融,具有幔源成分的混染。  相似文献   

9.
宝山铅锌矿床是湘南地区代表性矿床之一。宝山铅锌矿床的成矿作用与156~158 Ma的宝山花岗闪长斑岩密切相关。花岗闪长斑岩主要由古老地壳部分熔融而成。为确定成矿物质来源,文章系统研究了宝山铅锌矿床的硫、铅、碳、氧同位素组成特征。矿床中硫化物黄铁矿、闪锌矿、方铅矿的δ34S值呈狭窄的塔式分布,变化在-2.17‰~6.46‰之间,平均值为3.13‰。δ34S值总体表现为δ34S黄铁矿δ34S闪锌矿δ34S方铅矿,表明硫同位素分馏基本达到了平衡。矿石、花岗闪长斑岩和赋矿地层硫同位素对比研究表明,矿石中的硫主要由岩浆分异演化而来,岩浆中的硫主要来自古老地壳。矿石206Pb/204Pb、207Pb/204Pb和208Pb/204Pb比值分别为18.188~18.844、15.661~15.843和38.562~39.912,赋矿地层206Pb/204Pb、207Pb/204Pb和208Pb/204Pb比值分别为18.268~19.166、15.620~5.721和38.364~39.952。矿石铅同位素组成比地层中的更富放射性成因铅,矿石中部分铅来自宝山花岗闪长质岩浆,在成矿流体运移过程中有部分地层铅参与了成矿,岩浆中的铅主要来自古老地壳。热液方解石的碳、氧同位素组成介于岩浆和赋矿碳酸盐岩的碳、氧同位素之间,主要是由于岩浆流体和碳酸盐岩不同比例的水岩反应所致,测水组有机碳的加入造成了部分热液方解石δ13CPDB值偏低。  相似文献   

10.
拜仁达坝和维拉斯托是近年来在内蒙古东部地区发现的2个大型银多金属矿床,文章对其开展了硫和铅同位素研究。结果表明,拜仁达坝矿床矿石中硫化物的δ34S值为-4.0‰~+1.6‰,维拉斯托矿床矿石中硫化物的δ34S值为-0.8‰~+2.0‰,与岩浆热液型矿床的硫同位素值接近,表明这2个矿床中的硫主要来自岩浆。拜仁达坝矿区43件金属硫化物的206Pb/204Pb值为18.333~18.515,207Pb/204Pb值为15.532~15.656,208Pb/204Pb值为38.057~38.610;维拉斯托矿区20件金属硫化物的206Pb/204Pb值为18.304~18.377,207Pb/204Pb值为15.520~15.610,208Pb/204Pb值为38.112~38.435。拜仁达坝东矿区矿石中的铅同位素组成与维拉斯托矿区相似,变化范围小,相对贫放射性铅同位素,并且均为混合铅。矿石中的铅可能来自围岩地层及深源岩浆。  相似文献   

11.
Calcite samples were extracted both from the rock matrix and the superficial coating of a karstified fault plane of an underground quarry, located in the eastern border of the Paris basin. The karstification is dated as Quaternary. Analysis of mechanical calcite twinning reveals that only the calcite matrix has also undergone a compression trending WNW that can be attributed to the Mio-Pliocene alpine collision. Both coating and matrix have undergone a strike-slip regime with σ1 roughly trending north–south, that could correspond to the regional present-day state of stress, a strike-slip compression rather trending NNW, modified by local phenomena. To cite this article: M. Rocher et al., C. R. Geoscience 335 (2003).  相似文献   

12.
HYDROGEOLOGY     
正20141756 Chen Ruige(Mathematical College,China University of Geosciences,Beijing100083,China);Zhou Xun Numerical Simulation of Groundwater Level Fluctuation in a Coastal Confined Aquifer with Sloping Initial Groundwater Level Induced by the Tide(Geological Bulletin of China,ISSN1671-2552,CN11-4648/P,32(7),2013,p.1099-1104,6 illus.,16 refs.) Key words:confined water,groundwater level  相似文献   

13.
正20141408 Cai Jia(Institute of Geology,Chinese Academy of Geological Sciences,Beijing100037,China);Liu Fulai Petrogenesis and Metamorphic P-T Conditions of Garnet-Spinel-Biotitebearing Paragneiss in Danangou Area,Daqingshan-Wulashan Metamorphic Complex Belt(Acta Petrologica Sinica,ISSN1000-0569,CN11-1922/P,29(7),  相似文献   

14.
15.
正20142386An Guoying(China Aero Geophysical Survey and Remote Sensing Center for Land and Resources,Beijing 100083,China)Application of Satellite Remote Sensing in Regional Hydrogeological Investigation:Taking Cenozoic Strata in Wenquan Sheet(1∶250 000)of Karakoram Range as an Example(Geosci-  相似文献   

16.
正20141016An Chengbang(Key Laboratory of Western China’s Environmental Systems,Ministry of Education,Lanzhou University,Lanzhou 730000,China);Zhao Yongtao Lake Records during the Last Glacial Maximum from Xinjiang,NW China and Their Climatic Impli-  相似文献   

17.
正20141538 Cao Qing(School of Earth Sciences and Engineering,Xi’an Petroleum University,Xi’an 710065,China);Zhao Jingzhou Characteristics and Significance of Fluid Inclusions from Majiagou Formation,Yichuan Huangling Area,Ordos Basin(Advances in Earth Science,ISSN1001-8166,CN62-1091/P,28(7),2013,p.819-828,7 illus.,3 tables,43 refs.)  相似文献   

18.
GEOCHEMISTRY     
正20142002 Wei Hualing(Institute of Geophysical and Geochemical Exploration,Chinese Academy of Geological Sciences,Langfang065000,China);Zhou Guohua Element Content and Mineral Compositions in Different Sizes of Soil in Tongling Area,Anhui Province(Geological Bulletin of China,ISSN1671-2552,CN11-4648/P,32(11),2013,p.1861  相似文献   

19.
正20141768 An Shaopeng(Institute of Rock and Soil Mechannics,Chinese Academy of Sciences,Wuhan 430071,China);Wei Lide Experimental Study on Mechanical Behavior of Xigeda Formation Siltstone and Structure Interface(Journal of Engineering Geology,ISSN1004-9665,CN11-3249/P,21(5),2013,p.702-708,9illus.,1 table,16 refs.)  相似文献   

20.
正20140985Chen Liang(Post-Doctoral Research Station of Mining Engineering,School of Nuclear Resources and Nuclear Fuel Engineering,University of South China,Heng-yang 421001,China);Huang Wei Composition of Major and Correlated Elements with Organic Matters and Paleoclimatic Implication for Lower Paleogene Sediments in Sanshui Basin  相似文献   

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