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1.
龙门钼矿床是太行山北段成矿带内近些年探明的一个大型钼矿床,钼矿体主要产于花岗斑岩、闪长岩和新太古代片麻岩中,以角砾岩型矿石为主.矿区内辉钼矿化主要类型为浸染状、薄膜状、细脉状,发育钾长石化、硅化、绢云母化、黄铁矿化蚀变,类似典型的斑岩型矿床的矿化和蚀变特征.文章对龙门钼矿床的闪长岩和花岗斑岩进行了LA-ICP-MS锆石U-Pb同位素测年,获得闪长岩的锆石谐和年龄为(138.1±0.6)Ma(MSWD=0.6,n=21),花岗斑岩的锆石谐和年龄为(137.0±0.7)Ma(MSWD=1.03,n=17),结合地质特征,显示花岗斑岩晚于闪长岩形成.对主要矿石类型中的辉钼矿进行了Re-Os同位素测年,获得辉钼矿的Re-Os等时线年龄为(136.5±1.5)Ma,与赋矿的花岗斑岩的侵位年龄相一致,二者应为同一岩浆-流体活动的产物.龙门钼矿床辉钼矿样品的w(Re)为13.1×10-6~59.3×10-6,表明其成矿物质来源于壳幔混源.龙门矿区及太行山北段成矿带内的隐爆角砾岩体是下一步找矿勘查的方向.  相似文献   

2.
季德屯钼矿床是近年内在吉林中东部地区发现并初步探明的一个大型斑岩型钼矿床,钼矿体主要赋存在花岗闪长岩体内和花岗闪长岩体与二长花岗岩体的接触带及其附近。花岗闪长岩和二长花岗岩岩体的地质、岩石地球化学和单颗粒锆石U-Pb年代学研究揭示:它们均属于偏铝质、高钾钙碱性系列的I型花岗岩;均富集Rb、K等大离子亲石元素,亏损Nb、Ta、P、Ti、Y等高场强元素;锆石U-Pb年龄分别为(180.2±0.8)Ma和(180.1±0.6)Ma;矿床辉钼矿Re-Os同位素等时线年龄为(169±3)Ma。综合研究表明,季德屯斑岩型钼矿床类型属于与钙碱性、高钾钙碱性岩石系列有关的深成侵入体型钼矿床,形成于古太平洋板块俯冲背景下形成的活动大陆板块边缘岩浆弧环境,其成矿物质主要来源于地壳,从岩体侵位成岩到最终形成钼矿床大致经历了11 Ma。  相似文献   

3.
河南汝阳东沟超大型钼矿床地质特征及找矿标志   总被引:4,自引:1,他引:4       下载免费PDF全文
东沟钼矿属斑岩型钼矿床,矿床(体)赋存于下铺花岗斑岩体内外接触带中,沿岩体呈似层状(帽状)分布,钼矿化与岩石中裂隙发育程度关系密切,矿厚一般130~170 m,最大259.62m.主要矿石类型有安山岩型、英安岩型、闪长细晶岩型和花岗斑岩型辉钼矿矿石,矿化蚀变具典型斑岩型矿床的特征,地球化学异常和花岗斑岩体是主要找矿标志.  相似文献   

4.
内蒙古查干敖包钼矿是宝音图钼矿区矿床之一,为狼山北段发现的斑岩白云母石英脉型钼矿,成矿岩体主要为钾长花岗岩、细晶花岗岩和花岗斑岩,岩体锆石U-Pb平均年龄为(253.5±3.3)Ma。本次研究测得查干敖包辉钼矿的187Re-187Os等时线年龄为(239.2±5.8)Ma,与成矿岩体时代相差约13 Ma,反映钼矿床的形成经历了较长的成岩成矿演化历史。查干敖包钼矿床具有斑岩矿床特点,矿床产于成矿岩体内接触带,但是矿化形成于白云母石英脉中,主要与白云母热液矿物有关,因此是一种特殊的斑岩型钼矿床。  相似文献   

5.
陕西洛南县石家湾钼矿Re-Os同位素年龄及地质意义   总被引:1,自引:0,他引:1  
陕西石家湾钼矿床位于东秦岭成矿带西段黄龙铺地区,钼矿化呈细脉-网脉状分布于花岗斑岩体及其围岩中,与矿化有关的围岩蚀变有钾长石化、硅化、绢云母化,属斑岩型矿床.在矿床中选取不同矿化类型的辉钼矿样品,进行了Re~Os同位素定年,获得模式年龄变化范围为143.1±2.1~145.1±2.2 Ma之间,其加权平均年龄(144.0±1.1 Ma,MSWD=0.91)、等时线年龄(145.4±2.1 Ma,MSWD=0.83)与石家湾斑岩体的成岩年龄(141.4±0.6Ma)相近,说明成岩成矿作用发生在晚侏罗世一早白垩世.综合辉钼矿中Re的含量、硫同位素以及相关岩体的源区特征等多方面证据认为,石家湾斑岩型钼矿的成矿物质主要来自于下地壳,并混有少量幔源成分.  相似文献   

6.
内蒙古牙克石地区近年来发现了岩山中型钼矿床。赋矿围岩以元古界兴华渡口群为主,其次为燕山期花岗斑岩隐伏岩体。该岩体自边部至中心,大致呈石英斑岩-花岗斑岩-花岗闪长岩相变的特点,U-Pb年龄分别为124±1 Ma、127±2 Ma、124±1 Ma。辉钼矿主要以石英(碳酸盐-萤石)辉钼矿脉、长石石英辉钼矿脉、碳酸盐(-萤石)辉钼矿脉的形式存在于围岩中,切穿岩体与地层的接触带。以兴华渡口群为围岩的辉钼矿Re-Os年龄为125.2±1.7 Ma,以花岗斑岩为围岩的辉钼矿Re-Os年龄为126.6±1.8 Ma,长石石英脉中辉钼矿Re-Os年龄为125.3±1.8 Ma。根据矿体与围岩的相互关系及年龄测定结果,无论从时间上和空间上成矿均与燕山期花岗斑岩的侵入密切相关,热液充填活动明显,属岩浆热液型矿床。  相似文献   

7.
安徽马头矿床马头矿段钼矿是采用了物探、化探、地质基础工作与钻探等综合手段进行勘查发现的矿床,在总结该矿床的成矿地质背景、矿床地质特征的基础上,对矿床的成因类型进行分析。研究认为:钼矿床主要赋存于花岗闪长(斑)岩与志留系的接触带中,另赋存于钾长花岗(脉)岩内及其附近,本矿床应属斑岩型矿床。控矿因素主要有构造(断层、节理、裂隙)及接触带,受侵位作用形成的破裂带控制,岩体接触带附近岩体与围岩中节理、裂隙是主要的容矿构造。成矿作用与钾长石化、石英-绢云母化蚀变有密切关系。矿石类型主要为石英脉型辉钼矿石、细脉状辉钼矿石,本矿床含矿母岩应主要为花岗闪长(斑)岩,成矿流体主要来自岩浆晚期-期后热液,矿床成因类型为斑岩型铜钼矿床。  相似文献   

8.
三岔口铜矿床位于新疆东天山大南湖岛弧带的东北缘。目前对于三岔口铜矿床的成因类型及成矿年代还存在争议。三岔口铜矿床中赋矿岩体为闪长岩-花岗闪长岩,发育黑云母化、硅化、绢英岩化、青磐岩化等。测得三岔口铜矿床辉钼矿Re-Os年龄为416Ma±6.4 Ma,含矿闪长岩中锆石LA-ICP-MS U-Pb年龄为425 Ma±3.9 Ma,反映该矿床形成于中志留世。矿区内闪长岩-花岗闪长岩w(Na_2O+K_2O)为3.88%~4.68%,A/NCK值均大于1,为铝饱和岩石。岩体贫钾(w(K_2O)0.47%~1.18%)富钠(w(Na_2O)_2.83%~4.23%),w(TiO_2)偏低(0.41%~0.46%),多属于低钾拉斑系列。岩体富集w(Ba)(260×10~(-6)~4 810×10~(-6)),w(Sr)(644×10~(-6)~797×10~(-6))等大离子亲石元素,亏损w(Nb)(2.1×10~(-6)~2.6×10~(-6)),w(Ta)(0.1×10~(-6)),w(Zr)(11.2×10~(-6)~13.1×10~(-6))等高场强元素,具岛弧岩浆岩的特征。岩体富Na贫K,K_2O/Na_2O0.42,且具有高w(Al_2O_3)(≥16.65%),w(SiO_2)(≥61.3%),w(Sr)(≥644×10~(-6))以及较低的w(Y)(≤13.7×10~(-6))和w(Yb)(≤1.41×10~(-6)),具O型埃达克岩的特征,表明三岔口铜矿床形成于俯冲岛弧环境。结合研究区域内铜(钼)矿床的成矿时代及矿床类型,得出东天山地区有三期斑岩型矿床成矿作用:志留纪的三岔口、玉海斑岩型铜矿床,石炭纪的土屋-延东、延西等斑岩型铜矿床,以及三叠纪的东戈壁、白山斑岩型钼矿床。  相似文献   

9.
高岗山钼矿床是小兴安岭—张广才岭成矿带上首次发现的早三叠世斑岩型钼矿床,对其进行详细的年代学研究,对于研究区域构造演化和拓展找矿方向具有重要意义。为确定高岗山钼矿床的成岩成矿时代,本文开展了同位素年代学的研究。本次用LA-ICP-MS U-Pb方法对矿区内的片麻状花岗闪长岩和与成矿有关的花岗斑岩中的锆石进行了测试,获得其年龄分别为459.8±2.7Ma和259.9±2.0Ma,说明片麻状花岗闪长岩是中奥陶世时洋壳向松嫩"张广才岭地块俯冲形成的,花岗斑岩是晚二叠世时"佳蒙地块"与华北板块北缘东段碰撞形成的。对矿石中的辉钼矿的Re-Os同位素分析,获得其加权平均年龄为250.2±1.4Ma,等时线年龄为247±6Ma,这与成矿岩体的侵位年龄基本一致。  相似文献   

10.
河南省嵩县鱼池岭钼矿是近几年在东秦岭钼矿带中新发现的超大型斑岩钼矿床.该钼矿床产于合峪复式花岗岩体及隐爆角砾岩中.含矿岩体以富二氧化硅、铝质、贫钙、富碱、高F以及K2O含量大于Na2O含量为特征.矿区内辉钼矿化主要类型为浸染状、细脉状、网脉状,薄膜状和薄饼状.成矿围岩蚀变类型有钾长石化、硅化、绢云母化、黄铁矿化、黄铁绢英岩化、绿帘石化、绿泥石化和高岭石化等,具典型的斑岩型钼矿床的矿化和围岩蚀变特征.笔者选取了6件不同矿化类型的辉钼矿样品进行Re-Os同位素定年,获得模式年龄(130.3±2.0)~(131.7±1.9)Ma,等时线年龄(131.2±1.4)Ma.表明该矿床形成于早白垩世,与赋矿的合峪花岗岩体的侵位年龄相一致,应为同一构造-岩浆-流体活动的产物.辉钼矿中Re的含量为12.48×10<'-6>~53.39×10<'-6>,表明成矿物质具有壳幔混源性质.鱼池岭钼矿与东沟、汤家坪等斑岩钼矿形成于同一时期,应为东秦岭-大别地区晚中生代区域岩石圈大规模伸展的响应.  相似文献   

11.
黑龙江省岔路口超大型斑岩钼矿床位于大兴安岭北部,是目前我国东北地区最大的钼矿床,矿体赋存于中酸性杂岩体及侏罗系火山-沉积岩内,其中花岗斑岩、石英斑岩、细粒花岗岩与钼矿化关系密切.本文采用LA-ICP-MS锆石U-Pb定年方法,获得了矿区内二长花岗岩、花岗斑岩、石英斑岩、细粒花岗岩、流纹斑岩、闪长玢岩及安山斑岩的结晶年龄分别为162±1.6 Ma、149±4.6 Ma、148±1.6 Ma、148±1.2 Ma、137±3.3 Ma、133±1.7Ma和132±1.6 Ma.岔路口矿区内至少存在3期岩浆活动,其顺序为侏罗纪火山-沉积岩、二长花岗岩→晚侏罗世花岗斑岩、石英斑岩、细粒花岗岩→早白垩世流纹斑岩、闪长玢岩、安山斑岩.岔路口矿床成矿时代为晚侏罗世,是东北亚大陆内部构造-岩浆活化的产物,形成于古太平洋板块俯冲作用引起的挤压向伸展构造体制转折背景,与我国东部大规模钼矿化爆发期相对应.  相似文献   

12.
邦铺斑岩型钼(铜)矿床位于甲玛铜多金属矿床北东约30 km处,与钼(铜)成矿有关的岩体主要为二长花岗斑岩,次为花岗闪长斑岩及闪长(玢)岩.通过对二长花岗斑岩体进行LA-ICP-MS锆石U-Pb年龄测试,获得了含矿母岩的年龄,二长花岗斑岩的26颗锆石206Pb/238U加权平均年龄为(16.23±0.19)Ma(MSWD...  相似文献   

13.
The Great Xing'an Range (GXR), Northeast (NE) China, is a major polymetallic metallogenic belt in the eastern segment of the Central Asian Orogenic Belt. The newly discovered Xiaokele porphyry Cu (–Mo) deposit lies in the northern GXR. Field geological and geochronological studies have revealed two mineralization events in this deposit: early porphyry‐type Cu (–Mo) mineralization, and later vein‐type Cu mineralization. Previous geochronological studies yielded an age of ca. 147 Ma for the early Cu (–Mo) mineralization. Our 40Ar/39Ar dating yielded 40Ar/39Ar plateau ages of 124.8 ± 0.4 to 124.3 ± 0.4 Ma on K‐feldspar in altered Cu‐mineralized diorite porphyrite dikes that represent the overprinting vein‐type Cu mineralization, consistent with zircon U–Pb ages of the diorite porphyrite (126.4 ± 0.5 to 125.0 ± 0.5 Ma). The Cr and Ni contents and Mg# of the Xiaokele diorite porphyrites are high. The diorite porphyrites at Xiaokele are enriched in light rare‐earth elements (REEs), and large‐ion lithophile elements (e.g., Rb, Ba, and K), are depleted in heavy REEs and high‐field‐strength elements (e.g., Nb, Ta, and Ti), and have weak negative εHf(t) values (+0.29 to +5.27) with two‐stage model ages (TDM2) of 1,164–845 Ma. Given the regional tectonic setting in Early Cretaceous, the ore‐bearing diorite porphyrites were likely formed in an extensional environment related to lithospheric delamination and asthenospheric upwelling induced by subduction of the Paleo‐Pacific Plate. These tectonic events caused large‐scale magmatic activity, ore mineralization, and lithospheric thinning in NE China.  相似文献   

14.
The Tongcun Mo porphyry deposit in northwest Zhejiang is hosted in three porphyry units: Huangbaikeng, Songjiazhuang, and Tongcun, from southwest to northeast. U–Pb zircon ages of 162?±?3.0 Ma for the Huangbaikeng porphyry, 159.9?±?3.0 Ma for the Songjiazhuang porphyry, and 167.6–155.6 Ma for the Tongcun porphyry indicate that these intrusions formed during the Jurassic and are most likely associated with the northwestward subduction of the Izanagi Plate. Trace element compositions of zircons from the Tongcun deposit constrain the oxygen fugacity (fO2) of the magma using zircon Ce anomalies and Ti-in-zircon temperatures. The average magmatic fO2 for the porphyries in the Tongcun deposit is fayalite–magnetite–quartz (FMQ)?+?2.7, which is similar to the Shapinggou (FMQ?+?3.2) and Dabaoshan (FMQ?+?3.5) Mo porphyry deposits, but much higher than that of the reduced Cretaceous ore-barren Shangjieshou porphyry (FMQ-1.1) around 8 km away from the Tongcun deposit. The distinct difference in magmatic oxygen fugacity between the Jurassic and Cretaceous porphyries may help to explain the absence of Mo porphyry mineralization in northwest Zhejiang during the Cretaceous.  相似文献   

15.
The Dawan Mo–Zn–Fe deposit located in the Northern Taihang Mountains in the middle of the North China Craton (NCC) contains large Mo‐dominant deposits. The mineralization of the Dawan Mo–Zn–Fe deposit is associated with the Mesozoic Wanganzhen granitoid complex and is mainly hosted within Archean metamorphic rocks and Proterozoic–Paleozoic dolomites. Rhyolite porphyry and quartz monzonite both occur in the ore field and potassic alteration, strong silicic–phyllic alteration, and propylitic alteration occur from the center of the rhyolite porphyry outward. The Mo mineralization is spacially related to silicic and potassic alteration. The Fe orebody is mainly found in serpentinized skarn in the external contact zone between the quartz monzonite and dolomite. Six samples of molybdenite were collected for Re–Os dating. Results show that the Re–Os model ages range from 136.2 Ma to 138.1 Ma with an isochron age of 138 ± 2 Ma (MSWD = 1.2). U–Pb zircon ages determined by laser ablation inductively coupled plasma mass spectrometry yield crystallization ages of 141.2 ± 0.7 (MSWD = 0.38) and 130.7 ± 0.6 Ma (MSWD = 0.73) for the rhyolite porphyry and quartz monzonite, respectively. The ore‐bearing rhyolite porphyry shows higher K2O/Na2O ratios, ranging from 58.0 to 68.7 (wt%), than those of quartz monzonite. All of the rock samples are classified in the shoshonitic series and characterized by enrichment in large ion lithophile elements; depletion in Mg, Fe, Ta, Ni, P, and Y; enrichment in light rare earth elements with high (La/Yb)n ratios. Geochronology results indicate that skarn‐type Fe mineralization associated with quartz monzonite (130.7 ± 0.6 Ma) formed eight million years later than Mo and Zn mineralization (138 ± 2 Ma) in the Dawan deposit. From Re concentrations in molybdenite and previously presented Pb and S isotope data, we conclude that the ore‐forming material of the deposit was derived from a crust‐mantle mixed source. The porphyry‐skarn type Cu–Mo–Zn mineralization around the Wanganzhen complex is related to the primary magmatic activity, and the skarn‐type Fe mineralization is formed at the late period magmatism. The Dawan Mo–Zn–Fe porphyry‐skarn ores are related to the magmatism that was associated with lithospheric thinning in the NCC.  相似文献   

16.
江西省安远县园岭寨钼矿是南岭地区新发现的大型独立斑岩型钼矿床,矿体主要产出在园岭寨花岗斑岩与寻乌组变质岩的内外接触带中。通过对园岭寨钼矿系统的岩石学、地球化学和成岩成矿时代研究,结果表明,园岭寨花岗斑岩化学成分具有富K2O(6.52%~8.33%)、P2O5(0.17%~0.21%)、过铝质(A/CNK=1.33~1.59),高Mg#(53~68)、贫CaO(0.37%~2.99%)、Na2O(0.27%~1.01%)和K2O/Na2O>1的特征;微量元素以富含Rb,亏损Ba、Sr等大离子亲石元素(LILE)和富含U、Pb、Nd、Zr、Hf等,亏损Nb、Ta、La、Ce、P、Ti等高场强元素(HFSE)为主要特征,Eu负异常不明显(δEu=0.80~0.90),(La/Yb)N=9.27~13.18,轻重稀土分馏明显。结合成因类型判别图解和矿物学特征,园岭寨斑岩为典型的S型花岗岩,以壳源物质的重熔为主,并受一定程度的幔源物质影响。利用LA-MC-ICP-MS锆石U-Pb年龄,获得了花岗斑岩的成岩年龄为165.49±0.59Ma(MSWD=1.4,n=19);利用辉钼矿Re-Os同位素测年法,获得园岭寨钼矿床辉钼矿的结晶年龄为160±1~162.7±1.1Ma,属赣南燕山期第二次钼成矿作用(150~162Ma)。结合区域年代学资料和已知的矿床(点),指出本区进一步找矿工作应集中在中-晚侏罗世-早白垩世Mo、Pb、Zn等矿床的查找上。  相似文献   

17.
The Laojiagou Mo deposit is a newly discovered porphyry Mo deposit located in the Xilamulun Mo metallogenic belt, Northeast China. Mo mineralization mainly occurred within the monzogranite and monzogranite porphyry. Re–Os isochron dating of molybdenites indicate a mineralization age of 234.9 ± 3.1 Ma. Zircon LA–ICP–MS U–Pb analysis for monzogranite porphyry and monzogranite yield 206Pb/238U ages of 238.6 ± 1.8 and 241.3 ± 1.5 Ma, respectively, indicating that Laojiagou Mo mineralization is related to Middle Triassic magmatism. Hf isotopic compositions of zircons from both monzogranite porphyry and monzogranite are characterized by positive εHf(t) values [εHf(t) = 2.9–7.3 and 1.5–7.9, respectively] and young TDM2 model ages, which implies that the magma was derived from juvenile crust created during accretion of the Central Asian Orogenic Belt (CAOB). Identification of the Laojiagou Mo deposit adds another important example of Triassic Mo mineralization in the Xilamulun Mo metallogenic belt where most Triassic Mo deposits in northeast China cluster around the northern margin of North China Craton. Based on the regional geological setting and geochronological and Hf isotope characteristics, we propose that Triassic Mo deposits and related magmatic rocks in northeast China formed during the last stages of evolution of the CAOB. These deposits formed during post-collisional extension after the closure of the Palaeo-Asian Ocean and amalgamation of the North China–Mongolian Block with the Siberian Craton.  相似文献   

18.
《International Geology Review》2012,54(13):1532-1547
The Jitoushan W–Mo ore body is a typical skarn-type deposit with the potential for porphyry Mo mineralization at depth. As it is newly discovered, only a few studies have been conducted on the geochronology and ore genesis of this deposit. The ore district consists of Cambrian to Silurian sedimentary and low-grade metasedimentary strata, intruded by granodiorite, diorite porphyry, granite porphyry, and quartz porphyry. Skarn W–Mo ore bodies are hosted in the contact zone between the granodiorite and Cambrian limestone strata. Within the granodiorite near the contact zone, quartz vein type and disseminated sulphide mineralization are well developed. The Mo-bearing granite porphyry has been traced at depth by drilling. Our results reveal two discrete magmatic events at ca. 138 and ca. 127 Ma in the study area. The molybdenite Re–Os isochronal age of 136.6 ± 1.5 million years is consistent with the first magmatic event. The zircon Hf isotope (?Hf(t) =??12.55?3.91), sulphide isotopes (δ34S = 3.32–5.59‰), and Re content of molybdenite (Recontent = 6.424–19.07 μg) indicate that the ore-forming materials were mainly derived from the deep crust. The regional tectonic system switched from a Late Jurassic transpressive regime to an earliest Cretaceous extensional regime at ca. 145 Ma, and at ca. 138 Ma, the Jitoushan W–Mo deposit formed in an extensional setting.  相似文献   

19.
《Resource Geology》2018,68(1):1-21
The Daheishan Mo deposit of the Lesser Xing'an–Zhangguangcai Range metallogenic belt in northeast China is a super‐large molybdenum deposit with Mo reserves of 1.09 Mt. The Mo mineralization occurs mainly in a granodiorite porphyry. Zircon SIMS U–Pb dating yields a crystallization age of 168.3 ± 1.4 Ma for the granodiorite porphyry. Molybdenite Re–Os dating indicates that Mo mineralization occurred at 169.2 ± 1.2 Ma. These geochronological data indicate that these magmatic and hydrothermal activities occurred during the Middle Jurassic. The granodiorite porphyry can be classified as high‐K calc‐alkaline series, and the rare earth elements (REE) are characterized by a significant fractionation between light REE (LREE) and heavy REE (HREE) with slightly positive Eu anomalies (Eu/Eu* = 1.08–1.12). Large ion lithophile elements (e.g., Rb, U, K, and Pb) are enriched, whereas high field strength elements (e.g., Nb, Ta, Ti, HREEs, and Yb) are strongly depleted. The granodiorite porphyry is also characterized by initial strontium isotope ratios (87Sr/86Sr)i of 0.70460–0.70482 and magmatic zircon δ18O values of 5.2–6.5 ‰ that are similar to those of the mantle. Zircon ɛHf(t) and whole‐rock ε Nd(t) values range from 5.6 to 9.9 and 0.8 to 1.1, respectively. The two‐stage Nd model ages (TDM2) are in the range of 868–894 Ma, similar to Hf model ages, indicating that the parent magma has a uniform source and primarily originated from a juvenile crustal source. Combined with the regional geological history, geochemistry of the Daheishan granodiorite porphyry, and new isotopic age data, we propose that the formation of the Daheishan porphyry Mo deposit is likely related to the subduction of the Paleo‐Pacific Plate.  相似文献   

20.
曹四夭斑岩钼矿床位于内蒙古兴和县,是华北克拉通北缘最大的钼矿床。该矿床中部发育斑岩型钼矿体,外围和上部产出热液脉型铅锌金矿体。文章选取1件与斑岩钼矿化共生的绢云母样品进行了40Ar-39Ar定年,获得40Ar-39Ar坪年龄为(144.4±1.2)Ma,相应的39Ar/36Ar-40Ar/39Ar等时线年龄为(146.4±2.2)Ma(MSWD=0.31),将等时线年龄认作绢云母的Ar封闭年龄,表明曹四夭斑岩钼矿化发生在约146 Ma前。选取14件脉型铅锌矿石中的闪锌矿、黄铁矿和磁黄铁矿样品开展了Rb-Sr定年,获得4件闪锌矿的Rb-Sr等时线年龄为(145.1±3.0)Ma(MSWD=0.63);5件黄铁矿的Rb-Sr等时线年龄为(145.2±1.3)Ma(MSWD=0.53);4件闪锌矿、5件黄铁矿和1件磁黄铁矿的Rb-Sr等时线年龄为(145.3±1.0)Ma(MSWD=0.43)。硫化物Rb-Sr定年结果表明曹四夭矿床脉型铅锌矿化形成于约145 Ma前。本次绢云母40Ar-39Ar和硫化物Rb-Sr定年结果表明,曹四夭矿床斑岩型钼矿化和脉型铅锌金矿化为同期产物,两者均形成于晚侏罗世末期,属于同一个斑岩成矿系统。曹四夭矿床硫化物的w(Rb)和w(Sr)分别为0.1867×10~(-6)~1.305×10~(-6)和0.3175×10~(-6)~6.935×10~(-6),Sr同位素初始比值(87Sr/86Sr)i介于0.709 919~0.711 951之间,平均值0.710 952,结合前人获得的辉钼矿Re含量,认为曹四夭矿床的成矿物质主要来源于地壳。  相似文献   

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