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1.
峙门口铜—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的δ~(34)S值为+14.10‰~+18.90‰。上部层状矿石黄铁矿和方铅矿的δ~(34)S值为+3.50‰~+5.84‰,下部脉状矿石黄铁矿的δ~(34)S值为+4.80‰~+6.80‰。下部脉状矿石中脉石英的δ~(18)O值为+14.3‰~+1 8.5‰,δ~(30)Si值为-0.3%0~-0.2‰。下部脉状矿石黄铁矿Re/Os比值为78.342~175.540,上(顶)部层状矿石中黄铁矿Re/Os比值为62.298~169.545。从下部脉状矿石到上部层状矿石,δ~(34)S值、Re/Os比值和流体包裹体温度249 ℃→97 ℃逐渐降低,~(206)Pb/~(204)Pb、~(207)Pb/~(204)Pb、~(208)Pb/~(204)Pb平均值和Os_总、Re、~(187)Re等含量逐渐增高。矿石黄铁矿Re-Os同位素等时线年龄303±33 Ma。地质地球化学特征反映峙门口铜—铁—金—硫矿床为海底热水喷流沉积成因。  相似文献   

2.
安徽铜陵天马山金硫矿床地质地球化学特征   总被引:1,自引:0,他引:1  
安徽铜陵天马山金硫矿床发育上部层状矿体和下部网脉状矿体, 地球化学特征呈现出明显的垂向变化和二元结构性。从下部网脉状矿化岩石到上部层状矿石, Pb、Zn、Au、Ag、As、Hg等含量和δ18O值总体逐渐增高, Cu、Mo、Cr、Co、Ni、REE等含量和成矿温度499℃→65℃及δ34S值总体呈逐渐降低趋势。黄铁矿的δ34S值为+4.0‰~+9.6‰, 上部层状块状矿石中方解石和石英的δ18O平均值为+13.7‰, 下部网脉状矿化岩矿石中脉石英或全岩δ18O平均值为+12.3‰。地质地球化学特征反映天马山金硫矿床为海底热水喷流沉积成因。  相似文献   

3.
安徽铜官山铜-铁-金-硫矿床的地球化学特征   总被引:3,自引:0,他引:3       下载免费PDF全文
铜官山铜-铁-金-硫矿床发育上部层状矿体和下部网脉状矿体,地球化学特征呈现出明显的垂向变化和二元结构性.从下部网脉状矿化岩石到上部层状矿石,CaO、MgO、Fe2O3、FeO等含量和δ18O值总体逐渐增高,SiO2、Al2O3,、TiO2、K2O、Na2O、REE等含量和流体包裹体温度(341.9 ℃→178.0 ℃)及δ34S 值总体逐渐降低.黄铁矿δ34S值为( 2.1~ 7.9) ‰,上部层状块状矿石中方解石和石英δ18O平均值为 13.9‰,下部网脉状矿化岩(矿)石中脉石英或全岩δ18O平均值为 11.7‰.  相似文献   

4.
安徽新桥块状硫化物矿床地球化学特征   总被引:6,自引:0,他引:6  
新桥块状硫化物矿床发育双层结构,地球化学特征也呈现出明显的“二元性”和垂向变化。下部网脉状蚀变矿化岩石SiO2、Al2O3、K2O和Na2O等含量较高,上部层状块状矿石和含矿岩石Fe2O3、FeO、CaO、MgO及SiO2等明显富集。稀土含量相对较低,上部层状块状矿层平均值为10.73×10-6,下部通道相蚀变矿化岩石平均值为126.1×10-6。重晶石δ34S值为+16.2‰,硬石膏δ34S值为+11.2‰,黄铁矿δ34S值为+1.5‰~+4.7‰。含矿硅质岩δ18O为+12.0‰~+13.9‰,下部通道相含黄铁矿石英脉δ18O值为+13.3‰~+18.6‰。自下部网脉状矿化到上部层状块状矿层,从粗晶细晶到变胶状胶状黄铁矿,δ34S、δ18O和δ30Si值逐渐降低,206Pb/204Pb、207Pb/204Pb和208Pb/204Pb平均值逐渐增高。  相似文献   

5.
铧厂沟金矿床赋存于新元古界碧口群细碧岩和泥盆系踏坡群灰岩中。矿体受高角度逆冲断层和韧-脆性剪切带控制,呈似层状、透镜状产出,是南秦岭典型的造山型金矿床。根据赋矿围岩不同,该矿床划分为细碧岩矿带和灰岩矿带。细碧岩矿带矿石中黄铁矿的δ~(34)S值范围为-1.3‰~4.7‰,呈塔式分布,具岩浆硫特征;灰岩矿带矿石中黄铁矿的δ~(34)S值为-14.8‰~1.9‰,离散度强,具有生物成因硫和地层硫的特征。矿石黄铁矿的δ~(34)S值均落入碧口群细碧岩(2.1‰~4.7‰)和踏坡群(-22.5‰~6.6‰)的δ~(34)S值范围,指示硫源主要为碧口群和踏坡群。Pb同位素组成中,细碧岩矿带矿石中黄铁矿~(206)Pb/~(204)Pb、~(207)Pb/~(204)Pb和~(208)Pb/~(204)Pb范围分别为18.017~17.856、15.530~15.585和38.150~38.413,灰岩矿带矿石中黄铁矿~(206)Pb/~(204)Pb、~(207)Pb/~(204)Pb和~(208)Pb/~(204)Pb范围分别为18.202~18.491、15.624~15.659和38.690~39.401。细碧岩矿带矿石黄铁矿与围岩细碧岩全岩的~(206)Pb/~(204)Pb、~(207)Pb/~(204)Pb和~(208)Pb/~(204)Pb值相近,灰岩矿带矿石黄铁矿Pb同位素投影点全部落入踏坡群灰岩地层范围内。以上S和Pb同位素结果表明,铧厂沟金矿床金属物质来源于新元古代碧口群细碧岩及泥盆系踏坡群。  相似文献   

6.
广东大宝山多金属矿床成矿物质来源同位素证据   总被引:4,自引:0,他引:4  
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   

7.
中条山铜矿床同位素地球化学研究   总被引:2,自引:0,他引:2  
徐文忻  汪礼明  李蘅  郭新生 《地球学报》2005,26(Z1):130-133
笔者对中条山绛县群和中条群主要铜矿床进行铅、硫、碳、氢、氧同位素测定,获得:横岭关型矿床的206Pb/204Pb比值为17.746~19.270, 207Pb/204Pb比值为15.500~15.684,208 Pb/204Pb比值为37.236~39.931,硫化物的δ34S值为-8.1‰~+36.9‰, δ18OH2O值为+1.7‰~+5.7‰, δD值为-58. 4‰~-111.3‰;铜矿峪型矿床的206Pb/204Pb比值为18.040~46.243 207Pb/204Pb比值为15.565~18.765,208Pb/204Pb比值为37.682~69.623,硫化物的产δ34S值为-7.2‰~+10.2‰, δ18OH2O为+6.3‰~+10.5‰, δD值为-52.8‰~-123.3‰;落家河型矿床的206Pb/204Pb比值为17.591~19.270, 207Pb/204Pb比值为15.494~15.684,208Pb/204Pb比值为37.263~39.931,硫化物的δ34S值为-1‰~-21.9‰, δ18OH2O值为+3.6‰~+6.4‰, δD值为-35.8‰~-70‰;胡-蓖型矿床206 Pb/204 Pb比值为18.097~249.50, 207Pb/204Pb比值为15.578~44.230,208Pb/204Pb比值为35.379~51.480,硫化物的δ34S值为3.4‰~23.2‰, δ18OH2O值为+7.5‰~+12.5‰, δD值为-36.3‰~-72.2‰。  相似文献   

8.
广西高龙微细浸染型金矿床同位素地球化学研究   总被引:2,自引:0,他引:2  
对广西高龙微细浸染型金矿床矿石和脉石矿物进行硫、铅、氢、氧同位素测定,获得沉积岩中黄铁矿的δ34S为-15.3‰~+13.6‰,含矿层中的黄铁矿δ34S值为+0.4‰~+15.6‰,硅质岩中黄铁矿的δ34S为+1.7‰~+9.7‰,硅质岩中辉锑矿的δ34S值为-15.3‰~+0.1‰.从含矿层到硅质岩的黄铁矿,再到硅质岩的辉锑矿,硫同位素组成有降低趋势.黄铁矿的206Pb/204Pb值为8.270~18.470;207Pb/204Pb值为5.620~15.710;208Pb/204Pb值为8.310~38.740.矿床石英的氧同位素为+11.3‰~+23.9‰,水的氧同位素为-4.2‰~+14.4‰,矿物包裹体的氢同位素为-53.4‰~-77.1‰,方解石的氧同位素为+10.5‰~+18.6‰,换算成水中氧同位素为-3.2‰~+10.7‰,氢同位素为-54.5‰~-30.5‰,表明热液可能来源于岩浆热液与大气降水和海水混合.  相似文献   

9.
安徽冬瓜山铜矿床的地球化学特征   总被引:5,自引:2,他引:5  
冬瓜山铜矿床发育上部层状矿体和下部浸染状—脉状矿体,地球化学特征呈现出明显的垂向变化和二元结构性。从下部浸染状—脉状矿化岩石到上部层状块状矿石,CaO、MgO、Fe2O3、FeO、Cu、Au、Zn、Ag、As等含量和δ18O、δ12C值总体逐渐增高,SiO2、Al2O3、TiO2、K2O、Na2O、Pb、Hg、Sb、Mo、REE等含量和流体包裹体温度379·3℃→135·0℃及δ34S值总体逐渐降低。硬石膏δ34S值为 14·8‰~ 20·5‰,黄铁矿δ34S值为 2·7‰~ 7·9‰,含矿硅质岩δ18O为 12·0‰,含铜矿石中菱铁矿δ18O平均值为 13·97‰。地质地球化学特征反映冬瓜山铜矿床为海底热水喷流沉积成因。  相似文献   

10.
藏南柯月铅锌矿床位于特提斯喜马拉雅构造域Sb-Au-Pb-Zn成矿带东段,矿体主要呈透镜状或脉状,严格受北东向断裂构造所控制,赋矿地层为下侏罗统日当组含碳钙质板岩。矿石硫化物硫同位素δ~(34)S介于9.2‰~11.2‰之间,平均值为9.85‰,与区内日当组地层的δ~(34)S值变化范围相似,表明成矿流体中的硫主要来源于容矿地层。矿石硫化物铅同位素组成为:~(206)Pb/~(204)Pb为19.669~19.813,平均值19.740;~(207)Pb/~(204)Pb为15.823~15.979,平均值15.902;~(208)Pb/~(204)Pb为40.104~40.687,平均值40.410。其结果显示,矿石中的铅具有高放射性成因铅的特征,与喜马拉雅结晶基底的铅同位素组成具有相似的比值,表明矿石铅主要来源于喜马拉雅结晶基底。  相似文献   

11.
Lithostratigraphy, physicochemical stratigraphy, biostratigraphy, and geochronology of the 77–70 Ma old series bracketing the Campanian–Maastrichtian boundary have been investigated by 70 experts. For the first time, direct relationships between macro- and microfossils have been established, as well as direct and indirect relationships between chemo-physical and biostratigraphical tools. A combination of criteria for selecting the boundary level, duration estimates, uncertainties on durations and on the location of biohorizons have been considered; new chronostratigraphic units are proposed. The geological site at Tercis is accepted by the Commission on Stratigraphy as the international reference for the stratigraphy of the studied interval. To cite this article: G.S. Odin, C. R. Geoscience 334 (2002) 409–414.  相似文献   

12.
Some olistolites reworked in a Tertiary flysch of Mount Parnon (Peloponnesus, Greece) exhibit a Late Permian assemblage, dominated by Paradunbarula (Shindella) shindensis, Hemigordiopsis cf. luquensis and Colaniella aff. minima. This association corresponds to the Late Wuchiapingian (=Late Dzhulfian), a substage whose algae and foraminifera are generally little known. Contemporaneous limestones crop out in the middle part of the Episkopi Formation in Hydra, but they are rather commonly reworked in Mesozoic and Cainozoic sequences. The palaeobiogeographical affinities shared by the foraminiferal markers of Greece, southeastern Pamir, and southern China, are very strong (up to the specific level), and are congruent with the Pangea B reconstructions. To cite this article: E. Skourtsos et al., C. R. Geoscience 334 (2002) 925–931.  相似文献   

13.
PALEONTOLOGY     
正20141596 Liu Yunhuan(School of Earth Sciences and Resources,Chang’an University,Xi’an 710054,China);Shao Tiequan Early Cambrian Quadrapyrgites Fossils of Xixiang Boita in Southern Shaanxi Province(Journal of Earth Sciences and Environment,ISSN1672-6561,CN61-1423/P,35(3),2013,p.39-43,3 illus.,20 refs.)  相似文献   

14.
正20141719 Chen Zhijun(State Key Laboratory of Geological Processes and Mineral Resources,China University of Geosciences,Wuhan 430074,China);Chen Jianguo Automated Batch Mapping Solution for Serial Maps:A Case Study of Exploration Geochemistry Maps(Journal of Geology,ISSN1674-3636,CN32-1796/P,37(3),2013,p.456-464,2 illus.,2 tables,10 refs.)  相似文献   

15.
正20140962 Chen Fenning(Xi’an Institute of Geology and Mineral Resources,Xi’an710054,China);Chen Ruiming Late Miocene-Early Pleistocene Ostracoda Fauna of Gyirong Basin,Southern Tibet(Acta Geologica Sinica,ISSN0001-5717,CN11-1951/P,87(6),2013,p.872-886,6illus.,56refs.)  相似文献   

16.
PETROLOGY     
正1.IGNEOUS PETROLOGY20142008Cai Jinhui(Wuhan Center,China Geological Survey,Wuhan 430205,China);Liu Wei Zircon U-Pb Geochronology and Mineralization Significance of Granodiorites from Fuzichong Pb-Zn Deposit,Guangxi,South China(Geology and Mineral Resources of South China,ISSN1007-3701,CN42-1417/P,29(4),2013,p.271-281,7illus.,  相似文献   

17.
正20141205Cheng Weiming(State Key Laboratory of Resources and Environmental Information System,Institute of Geographic Sciences and Natural Resources Research,CAS,Beijing 100101,China);Xia Yao Regional Hazard Assessment of Disaster Environment for Debris Flows:Taking Jundu Mountain,Beijing as an  相似文献   

18.
正20141266Fan Chaoyan(Guangdong Provincial Key Laboratory of Mineral Resources and Geological Processes,Guangzhou 510275,China);Wang Zhenghai On Error Analysis and Correction Method of Measured Strata Section with Wire Projection Method(Journal of  相似文献   

19.
正20140582 Fang Xisheng(Key Lab.of Marine Sedimentology and Environmental Geology,First Institute of Oceanography,State Oceanic Administration,Qingdao 266061,China);Shi Xuefa Mineralogy of Surface Sediment in the Eastern Area off the Ryukyu Islands and Its Geological Significance(Marine Geology Quaternary Geology,ISSN0256-1492,CN37  相似文献   

20.
正20141810 Bian Yumei(Geological Environmental Monitoring Center of Liaoning Province,Shenyang 110032,China);Zhang Jing Zoning Haicheng,Liaoning Province,by GeoHazard Risk and Geo-Hazard Assessment(Journal of Geological Hazards and Environment Preservation,ISSN1006-4362,CN51-1467/P,24(3),2013,p.5-9,2 illus.,tables,refs.)  相似文献   

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