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1.
祁漫塔格卡尔却卡铜多金属矿体主要产于花岗闪长岩、似斑状黑云母二长花岗岩体与寒武纪—奥陶纪滩间山群接触部位的矽卡岩带和二长花岗岩中。本次对矿区Ⅶ号带矽卡岩与矿体紧邻的似斑状黑云母二长花岗岩体进行LA-ICP-MS锆石U-Pb测年,获得年龄为410.1Ma±2.6Ma。结合前人获得的花岗闪长岩SHRIMP锆石U-Pb年龄(237 Ma±2Ma)和矿石矿物辉钼矿Re-Os模式年龄(239Ma),认为岩体成岩和成矿时代都发生在印支期,卡而却卡铜多金属矿成矿作用不仅与印支期中酸性侵入岩有关,也与加里东晚期酸性侵入岩有关。祁漫塔格地区矿床形成时代主要集中于加里东中晚期和印支晚期,尽管加里东期岩体在地表出露规模远没有印支期岩体规模宏大,但是加里东晚期岩体对成矿作用的贡献也应该引起足够的重视。  相似文献   

2.
再论东天山白山铼钼矿区成岩成矿时代   总被引:9,自引:2,他引:9  
东天山白山铼钼矿区的成岩成矿时代尚存在海西期和印支期之争.最新的同位素年代学研究表明,矿区南部斜长花岗斑岩的锆石U-Pb年龄为235~245Ma,矿区东部黑云母斜长花岗岩的锆石SHRIMP U-Pb年龄为239Ma±8Ma,矿石中辉钼矿的Re-Os等时线年龄为229Ma±2Ma.结合笔者已报道的燕山期岩浆侵位与成矿的年代学证据,首次提出白山铼钼矿区具有印支期和燕山期2期成岩成矿作用,早期成岩成矿作用发生于中三叠世,晚期成岩成矿作用发生于早侏罗世.  相似文献   

3.
闽北上房钨矿床锆石U-Pb和辉钼矿Re-Os定年及其地质意义   总被引:5,自引:0,他引:5  
上房钨矿床是武夷山成矿带新近发现的大型白钨矿矿床,也是福建省发现的钨矿新类型.矿床产于上房似斑状黑云母正长花岗岩体的外接触带上,赋矿围岩主要为古元古代大金山岩组斜长角闪岩和黑云斜长变粒岩,矿体产状与围岩的片理一致,矿石类型为石英细脉型和浸染型,金属矿物主要为白钨矿和辉钼矿,其次为少量磁黄铁矿、黄铁矿和黄铜矿等.野外地质观察和矿化特征研究表明,上房钨矿的矿床类型为接触交代型.采用LA-ICP-MS锆石U-Pb和辉钼矿Re-Os测年技术,对与成矿有关的上房似斑状黑云母正长花岗岩和与白钨矿共生的辉钼矿进行成岩成矿年代测定,获得上房似斑状正长花岗岩体的成岩年龄为158.8±1.6 Ma(1σ),辉钼矿Re-Os模式年龄为159.40±0.86~149.92±1.39 Ma(n=5),模式年龄的加权平均值为156.5±4.0 Ma,等时线年龄为158.1±5.4 Ma(2σ).同位素定年结果表明,上房钨矿床与矿区似斑状黑云母正长花岗岩关系密切,二者均形成于晚侏罗世,与华南地区中生代大规模钨多金属矿床的成矿时代一致.传统观点认为,华南地区晚侏罗世(160~150 Ma)钨多金属矿床大规模成矿作用集中于南岭成矿带中东段的湘南、粤北和赣南地区,而本文的研究结果则说明这一区域成矿作用向北东延伸进入到武夷山成矿带的闽西和闽北地区.因此,华南钨多金属矿床的空间分布不是传统认为的近东西向,而是具有北东向或北东东向展布的特点,是滨太平洋构造-岩浆-成矿域的重要组成部分.   相似文献   

4.
泉子沟斑岩钼矿床位于内蒙古丰镇市,地处华北克拉通北缘内蒙古台隆凉城断隆内。矿区出露一套燕山期花岗质杂岩体——红娘山杂岩体,主要由中粗粒花岗岩、似斑状花岗岩和石英斑岩组成,钼矿体主要赋存于似斑状花岗岩中。文章在详细的野外地质调查基础上,对泉子沟矿床的成岩成矿时代进行了详细研究,并探讨了地质意义。5件辉钼矿样品的Re-Os模式年龄介于(158.8±2.2)Ma~(161.5±2.2)Ma之间,其加权平均值为(159.8±1.0)Ma(MSWD=0.92),等时线年龄为(161.7±3.1)Ma(MSWD=1.40)。红娘山杂岩体LA-ICP-MS锆石U-Pb年龄分别为:中粗粒花岗岩结晶年龄为(173±1)Ma(MSWD=0.88),似斑状花岗岩侵位年龄为(162±1)Ma(MSWD=0.40),石英斑岩结晶年龄为(160±2)Ma(MSWD=1.90)。辉钼矿Re-Os和锆石U-Pb定年结果表明,泉子沟钼矿床形成于晚侏罗世早期,成矿与似斑状花岗岩关系密切。泉子沟钼矿床的辉钼矿w(Re)介于16.49×10~(-6)~32.87×10~(-6),暗示成矿物质主要来自下地壳。  相似文献   

5.
祁漫塔格卡尔却卡铜多金属矿体主要产于花岗闪长岩、似斑状黑云母二长花岗岩体与寒武纪—奥陶纪滩间山群接触部位的矽卡岩带和二长花岗岩中。本次对矿区Ⅶ号带矽卡岩与矿体紧邻的似斑状黑云母二长花岗岩体进行LA-ICP-MS锆石U-Pb测年,获得年龄为410.1Ma±2.6Ma。结合前人获得的花岗闪长岩SHRIMP锆石U-Pb年龄(237 Ma±2Ma)和矿石矿物辉钼矿Re-Os模式年龄(239Ma),认为岩体成岩和成矿时代都发生在印支期,卡而却卡铜多金属矿成矿作用不仅与印支期中酸性侵入岩有关,也与加里东晚期酸性侵入岩有关。祁漫塔格地区矿床形成时代主要集中于加里东中晚期和印支晚期,尽管加里东期岩体在地表出露规模远没有印支期岩体规模宏大,但是加里东晚期岩体对成矿作用的贡献也应该引起足够的重视。  相似文献   

6.
《地学前缘》2017,(5):109-119
梅树坪钨钼矿床位于南岭成矿带崇余犹矿集区内,矿体发育于九龙脑岩体南缘接触带,构造上受北北东向断裂控制,矿化类型主要为石英脉型钨钼矿化,并发现了细粒花岗岩中浸染状白钨矿化,与成矿有关的岩浆岩以中粗粒斑状黑云母花岗岩为主。本文在矿床地质工作基础上,利用LA-ICP-MS锆石U-Pb法获得中粗粒斑状黑云母花岗岩的年龄为(157.2±1.70)Ma;并利用辉钼矿Re-Os同位素测年,获得黑钨矿化石英脉中的辉钼矿的年龄为(156.2±0.93)Ma。研究表明梅树坪花岗质岩浆活动与成矿作用基本同时,均为燕山晚期,成矿紧随岩浆就位发生。结合前人的研究成果,梅树坪钨钼矿与华南地区钨多金属大规模成矿作用时间150~160 Ma一致。梅树坪钨矿与西华山钨矿等具有相同的成矿时代、成矿背景和相似的成矿条件,预测矿区隐伏岩体南延之内接触带和震旦系变质砂岩外接触带具有很好的找矿潜力。  相似文献   

7.
韩娟 《地质与勘探》2011,47(2):284-293
黄峰岭铀矿隶属我国著名的鹿井铀矿田,其铀矿产与区内高铀含量的中粗粒似斑状黑云母花岗岩有着密切的时空、成因联系.本文对矿区出露的肉红色中粗粒似斑状黑云母花岗岩体进行了锆石SHRIMP U-Pb同位素定年,获得锆石的结晶年龄为235.4±1.1 Ma,说明该岩体的侵位时代为印支期.该印支期的岩体被后期燕山期细粒黑云母花岗岩...  相似文献   

8.
应用LA-ICP-MS对马厂箐岩体中(似)斑状花岗岩的锆石进行了U-Pb定年和微量元素分析。在CL图像上,(似)斑状花岗岩中锆石均发育有典型的振荡环带,锆石的稀土元素配分模式表现为亏损轻稀土,富集重稀土,具有强烈正Ce异常和中度负Eu异常,且呈现出较高的Th/U比值等特征,表明所测锆石均为典型的岩浆锆石。马厂箐岩体(似)斑状花岗岩锆石U-Pb加权平均年龄为(33.78±0.21)Ma(MSWD=0.71),累计概率统计得到正长斑岩锆石U-Th-Pb年龄为(35.6±0.3)Ma、花岗斑岩锆石U-Th-Pb年龄为(35.0±0.2)Ma,宝兴厂矿段铜钼矿辉钼矿Re-Os等时线年龄分别为(35.8±1.6)Ma和(33.9±1.1)Ma,乱硐山矿段接触交代型金矿白云母40Ar/39Ar年龄为(35.25±0.36)Ma,人头箐—金厂箐矿段热液脉型金成矿白云母40Ar/39Ar年龄为(35.35±0.32)Ma,反映斑岩型铜钼矿化、接触交代型金矿化和热液脉型金矿化为同一个构造-岩浆-热液成矿系统的产物,Ⅱ期(33~37Ma)正长斑岩+二长斑岩+花岗斑岩+(似)斑状花岗岩岩性组合是成矿的地质体,为成矿提供了物质、流体和热动力条件,这期斑岩-热液-成矿系统的持续时间约为4Ma,铜、钼、金的成矿主要发生在Ⅱ期岩浆活动的早-中期。  相似文献   

9.
周小栋 《华东地质》2019,(4):241-252
西朝钼矿是近年来在闽东地区新发现的中型斑岩型钼矿床。通过LA-ICP-MS锆石U-Pb定年及辉钼矿Re-Os等时线定年,获得与成矿密切相关的黑云母二长花岗岩锆石U-Pb年龄为115±1.2 Ma(MSWD=0.90),辉钼矿~(187)Re-~(187)Os模式年龄加权平均值为112.6±0.7 Ma(MSWD=0.82),~(187)Re-~(187)Os同位素等时线年龄为113.4±0.9 Ma(MSWD=0.11),成岩、成矿年龄基本一致,成矿稍晚于成岩,二者均为早白垩世晚期岩浆-成矿作用的产物。根据辉钼矿Re含量特征,认为西朝钼矿成矿物质为深部壳幔混合来源。西朝钼矿形成于古太平洋板块向欧亚板块持续俯冲下的伸展构造环境,是岩石圈减薄、局部软流圈物质上涌导致下地壳部分熔融形成的产物。  相似文献   

10.
张作伦  刘建明  曾庆栋 《矿床地质》2011,30(6):1122-1128
内蒙古碾子沟钼矿床位于中亚-蒙古巨型造山带东段,是一中型石英脉型钼矿床,矿体赋存于燕山期中粗粒黑云母二长花岗岩内的断裂带中,矿体与岩体空间关系密切.文章对赋矿围岩和主要金属硫化物分别开展了单颗粒SHRIMP锆石U-Pb定年和硫同位素测试.获得的黑云母二长花岗岩加权平均年龄为(152.4±1.6) Ma(MSWD=0.2...  相似文献   

11.
The Baishiding molybdenum deposit is located in the Central-Middle Guangxi depression zone of the South China Caledonian fold zone. Orebodies occur as quartz-molybdenite veins within the Guiling monzonite pluton and arkosic quartz sandstone of Zhengyuanling Group in the northeastern Guangxi. They are NEE-trending with a dip angle of 75–80°. Zircon SHRIMP U-Pb geochronologic analyses of the Guiling monzonite show age of 424.4 ± 5.6 Ma. It indicates that the Guiling monzonite was emplaced in Silurian. The ore minerals in quartz-molybdenite veins contain molybdenite, pyrite, chalcopyrite and scheelite. Six molybdenite samples yield Re-Os ages between 433.3 ± 6.3 Ma and 417.2 ± 5.7 Ma, with a weighted mean age of 424.6 ± 5.7 Ma, which agrees with the zircon age of the Guiling monzonite pluton. It suggests that the deposit was formed in the Silurian, not the Jurassic as previously thought. The Baishiding deposit is the only Silurian molybdenum deposit so far recognized in the South China. It was probably formed in a crustal shortening setting along the continental margin in the Silurian.  相似文献   

12.
The Middle–Lower Yangtze Region (MLYR) is one of the most important metallogenic belts in China that hosts numerous Cu–Fe–Au–S deposits. The Hucunnan deposit in the central part of MLYR is a newly discovered porphyry–skarn‐type copper–molybdenum deposit during recent drilling exploration. Laser ablation ICP–MS analysis carried out in this study yields U–Pb isotopic ages of 137.5 ± 1.2 Ma for the Cu–Mo bearing granodiorite rock and 125.0 ± 1.5 Ma for the Cu‐bearing quartz diorites. The Re–Os isotopic dating of seven molybdenite samples gave an isochron age of 139.5 ± 1.1 Ma, suggesting a syn‐magma mineralization of molybdenite in the Hucunnan deposit. Since porphyry‐type molybdenum deposits are rare in central MLYR, the discovery of the Hucunnan deposit suggests possible molybdenite mineralizations in the deep places of the Cu–Mo bearing granitoids. In addition, the U–Pb isotopic age of 125 Ma for the Cu‐bearing quartz diorites implies a new Cu mineralization period for the MLYR that was rarely reported by previous studies.  相似文献   

13.
粤西大金山钨锡多金属矿是一个近年新发现的与花岗岩有关的石英脉型钨锡多金属矿,目前估算的资源量已达中型,并具有大型矿床的找矿潜力。矿体形态简单,主要以石英脉的形式产出,由石英脉、云英岩脉和多金属硫化物石英脉等组成。钨锡多金属矿化的主要类型为细脉状和网脉状,围岩蚀变主要有硅化、云英岩化和绿泥石化等。本文在详细介绍矿床地质特征的基础上,对矿床进行了成岩成矿年代学研究。采用LA-MC-ICP-MS锆石U-Pb测年技术,得到了花岗岩的成岩年龄:中细粒黑云母花岗岩形成于82.89±0.35Ma~85.6±0.52Ma,似斑状黑云母花岗岩形成于75.01±0.16Ma~84.17±0.34Ma。通过对与中细粒黑云母花岗岩有关的5件石英脉型辉钼矿进行Re-Os同位素分析,获得其模式年龄为80.07±1.19Ma~84.93±1.42Ma。以上年代学测试结果说明大金山钨锡多金属矿成岩成矿时代为晚白垩世,成岩成矿作用基本同时。本文认为大金山钨锡多金属矿成岩成矿作用发生在华南晚中生代岩石圈拉张-伸展的构造背景下,是华南晚中生代大规模成岩成矿作用的产物。  相似文献   

14.
The Huangsha-Tieshanlong quartz-vein tungsten polymetallic ore deposit, located in the northern Pangushan-Tieshanlong tungsten ore field in eastern Ganxian-Yudu prospecting areas of the Yushan metallogenic belt, is a well-known tungsten deposit in southern Jiangxi province, China. SHRIMP-determined dating of zircons from the Tieshanlong granite yields ages of 168.1±2.1 Ma (n=11, MSWD=1.3). Rhenium and osmium isotopic dating of molybdenite from the Huangsha quartz-vein tungsten deposit determined by ICP-MS yields a weighted average ages of 153±3 Ma and model ages of 150.2±2.1 Ma – 155.4±2.3 Ma. The age of the Huangsha tungsten deposit is 10 to 15 Ma later than the Tieshanlong granite, which shows that there might have been another early Late Jurassic magmatic activity between 150 and 160 Ma, a process which is closely related with tungsten mineralization in this area. The Tieshanlong granite, the Huangsha tungsten deposit and the Pangushan-Tieshanlong ore field were all formed around 150–170 Ma, belonging to products of a Mesozoic second large-scale mineralization. According to the collected molybdenite Re-Os dating results in southern Jiangxi province, the timescale of the associated molybdenum mineralization is 2–6 Ma in the tungsten deposit and the timescale of independent molybdenum mineralization is 1–4 Ma, implying the complexity of tungsten mineralization. Times of molybdenum mineralization are mainly concentrated in the Yanshanian, which includes three stages of 133~135 Ma, 150–162 Ma, and 166–170 Ma, respectively. The 150–162 Ma-stage is in accordance with ages of large-scale W-Sn mineralization, which is mainly molybdenum mineralization characterized by associated molybdenum mineralization with development of an even greater-intensity independent molybdenum mineralization. Independent molybdenum mineralization occurred before and after large-scale W-Sn mineralization, which indicates that favorable prospecting period for molybdenum may be in Cretaceous and early late Jurassic.  相似文献   

15.
《International Geology Review》2012,54(12):1481-1491
ABSTRACT

Liaoning Province in China is an area known for the occurrence of numerous copper and/or molybdenum deposits of variable size. However, the age of mineralization and tectonic setting in this region are still a subject of debate. In this study we describe the geology of these deposits and apply zircon U–Pb and molybdenite Re–Os isotopic dating to constrain their ages and define the metallogenic epochs of this province. The Huatong Cu–Mo deposit yields molybdenite Re–Os model ages of 127.6–126.3 Ma and an isochron age of 127.4 ± 0.7 Ma. The Dongbeigou Mo deposit yields molybdenite Re–Os model ages of 132.6–127.1 Ma, an isochron age of 128.1 ± 5.1 Ma, and a zircon U–Pb age of 129.4 ± 0.3 Ma for the associated monzogranite. The granodiorite associated with the Wanbaoyuan Cu–Mo deposit yields a zircon U–Pb age of 128.4 ± 1.1 Ma; the plagiogranite associated with the Yaojiagou Mo deposit yields an age of 167.5 ± 0.9 Ma; and the biotite–plagioclase gneiss from the Shujigou Cu deposit yields an age of 2549.4 ± 5.6 Ma. These results, together with previous geochronology data, show that intense Cu–Mo porphyry and skarn mineralization were coeval with Early–Middle Jurassic and Early Cretaceous granitic magmatism. The former was associated with the orogeny that followed the collision of the Siberian and North China plates and the resulting closure of the palaeo-Asian Ocean, and the latter with rifting that followed the subduction of the palaeo-Pacific Plate and associated lithospheric thinning. Volcanogenic massive sulfide Cu deposit. mineralization took place much earlier, in the late Archaean, and was related to continent–continent collision, palaeo-ocean closure, the formation of a united continental landmass, bimodal volcanism, magma emplacement, and subsequent metamorphism and deformation of syn-collisional granites.  相似文献   

16.
The Huaheitan molybdenum deposit in the Beishan area of northwest China consists of quartz‐sulfide veins. Orebodies occur in the contact zone of the Huaniushan granite. LA‐ICPMS U–Pb zircon dating constrains the crystallization of the granite at 225.6 ± 2.2 Ma (2σ, MSWD = 4.5). Re–Os dating of five molybdenite samples yield model ages ranging from 223.2 ± 3.5 Ma to 228.6 ± 3.4 Ma, with an average of 225.2 ± 2.4 Ma. The U–Pb and Re–Os ages are identical within the error, suggesting that the granite and related Huaheitan molybdenum deposit formed in the Late Triassic. Our new data, combined with published geochronological results from the other molybdenum deposits in this region, imply that intensive magmatism and Mo mineralization occurred during 240 Ma to 220 Ma throughout the Beishan area.  相似文献   

17.
The Xilamulun molybdenum metallogenic belt, located in eastern Inner Mongolia, China, has great economic potential as a major producer of molybdenum. Four major types of Mo deposits have been recognized in the Xilamulun molybdenum metallogenic belt: porphyry, quartz vein, volcanic-hosted, and greisen. These Mesozoic Mo deposits are closely related to Si- and K-rich intrusives and are usually hosted by granite plutons or located at the endo- or exo-contact zones of the granite porphyry. SHRIMP zircon U–Pb dating gives the emplacement ages of the intrusions related to Mo mineralization as 245.1 ± 4.4, 152.4 ± 1.6, and 139.1 ± 2.3 Ma. Re–Os analysis of five molybdenite samples from the Chehugou porphyry Mo deposit yields an isochron age of 245 ± 5 Ma (2σ), indicating that the mineralization age of the porphyry Mo deposit is about 245 Ma. Re–Os analyses of six molybdenite samples from the Nianzigou quartz-vein-type Mo deposit yield an isochron age of 154.3 ± 3.6 Ma (2σ), constraining the mineralization age of the quartz-vein Mo deposit to 154 Ma. Our results suggest that the Mo mineralization in the Xilamulun belt formed during at least three stages, i.e., the Triassic, Late Jurassic, and Early Cretaceous, and is coeval with the granitic magmatism. The corresponding geodynamic background covers the syncollision between the North China and Siberian plates during the Early to Middle Triassic, a compression setting related to the subduction of the Paleo-Pacific plate during the Jurassic and lithospheric thinning during the Early Cretaceous in eastern China.  相似文献   

18.
采用辉钼矿Re-Os同位素定年,获得的内蒙古阿巴嘎旗比鲁甘干钼矿的辉钼矿Re-Os同位素模式年龄变化范围为236.9±3.7~238.7±2.4Ma,年龄加权平均值为237.9±1.7Ma,表明该矿床形成时代应为印支期。辉钼矿的Re含量平均值为74.065×10~(-6),表明其主要为幔壳混合来源特征。该矿床位于贺根山断裂带以南的兴蒙造山系索伦山-霍林郭勒弧盆系内,为斑岩型钼矿床。钼矿体主要赋存在黑云母花岗斑岩和角岩内,受内外接触带控制。接触带控矿容矿断裂主要有北西向、北东向及近东西向,其内多充填有石英脉。细脉状、网脉状石英脉越发育,钼矿化越强。区域研究表明,印支期是兴蒙造山带及其邻区钼(钨)成矿的重要成矿期之一,但在本区尚属首次发现,为开展索伦山-霍林郭勒成矿带区域成矿规律研究提供了重要参考。  相似文献   

19.
小白石头钨(钼)矿床位于新疆东天山造山带中的中天山地块南缘,该矿床是一个由黑云母花岗岩和花岗闪长岩侵入中元古界卡瓦布拉格群形成的矽卡岩型钨(钼)矿床。辉钼矿作为其主要的矿石矿物之一,呈不同产出状态分布于花岗闪长岩、黑云母花岗岩、矽卡岩和石英脉中。目前,对于小白石头钨(钼)矿成矿时代尚有争议,特别是与花岗闪长岩有关的辉钼矿化形成时代缺乏精确的限定。本文选取与花岗闪长岩有关的不同产状辉钼矿进行Re-Os同位素定年,获得Re-Os加权平均模式年龄为245. 0±1. 7Ma,Re-Os等时线年龄为245. 5±4. 3Ma。准确的Re-Os同位素定年限定小白石头钨(钼)矿床的成矿年龄和花岗闪长岩的侵位年龄为245Ma左右,为矿床模型建立和找矿方向确定提供了关键依据,同时也为东天山区域成矿规律总结提供了重要的年代学证据,并指出新疆东天山—甘肃北山地区存在一条找矿潜力巨大的三叠纪钨钼成矿带。  相似文献   

20.
张可  聂凤军  侯万荣  李超  刘勇 《矿床地质》2012,31(1):129-138
内蒙古哈什吐矿床是新发现的钼矿床。为进一步查明哈什吐钼矿床的形成时间,首次对主要钼矿体的10件辉钼矿样品进行铼-锇同位素分析,所获铼-锇同位素模式年龄变化范围为(147.0±2.1) Ma~(149.5±2.2) Ma,加权平均值为(148.22±0.67) Ma,获得等时线年龄为(148.8±1.6) Ma,MSWD值为0.95。铼-锇同位素年代数据及野外地质证据表明,哈什吐钼矿床为晚侏罗世构造-岩浆作用及相关流体活动的产物。哈什吐钼矿床辉钼矿的w(Re)介于(0.65~2.06)×10-6,平均值为1.28×10-6,通过与区域内同时期形成的若干相似类型钼矿床的Re含量对比分析,初步推测认为哈什吐钼矿床成矿物质源区具有更偏向于壳源的特征。哈什吐斑岩型钼矿床形成时代的厘定对于提高该矿床的理论研究水平和指导隐伏金属矿床的找矿勘查工作均具有重要意义。  相似文献   

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