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1.
为了厘清翠中铁钨多金属矿床浅部的粗粒碱长花岗岩和深部的细粒碱长花岗岩与成矿之间的关系,本次工作对这2种岩浆岩分别进行了岩石地球化学、锆石U-Pb年代学和Hf同位素分析,对岩石和矿石开展了Pb同位素研究.粗粒碱长花岗岩和细粒碱长花岗岩的锆石U-Pb年龄分别为503±2.9 Ma和201±6.4 Ma,表明其侵入时代分别为加里东中期和印支晚期-燕山早期.辉钼矿Re-Os同位素模式年龄为202±2.9 Ma,与细粒碱长花岗岩锆石U-Pb年龄基本一致.粗粒碱长花岗岩中锆石的εHf(t)值变化于-8.31~0.57,指示其来源于中元古代古老地壳部分熔融,细粒碱长花岗岩中锆石的εHf(t)值为2.84~4.78,表明其起源于亏损地幔中新增生的年轻地壳物质的部分熔融.综合成岩成矿时代、成矿元素趋势面分析以及岩矿石Pb同位素对比,我们认为翠中铁钨多金属矿床的成矿作用与深部的细粒碱长花岗岩有关.结合区域构造演化历史,推测成矿作用可能形成于佳木斯地块向松嫩地块俯冲挤压的构造环境.   相似文献   

2.
黑龙江省东部松嫩—张广才岭地块与佳木斯地块之间的演化历史以及古亚洲洋构造体系与环太平洋构造体系的叠加与转化一直是地学领域研究的热点问题之一。依据该区古生代—早中生代火成岩的年代学与岩石组合研究,结合碎屑锆石的年代学研究成果,讨论了松嫩—张广才岭地块与佳木斯地块之间的演化历史以及两大构造体系叠加与转化的时间。锆石U-Pb定年结果表明:黑龙江省东部古生代—早中生代岩浆作用可划分成8期:早奥陶世(485Ma)、晚奥陶世(450Ma)、中志留世(425Ma)、中泥盆世(386Ma)、早二叠世(291Ma)、中二叠世(268 Ma)、晚三叠世(201~228 Ma)以及早侏罗世(184 Ma)。早奥陶世—中志留世,岩浆作用主要分布在松嫩—张广才岭地块的东缘,并呈南北向带状展布,主要由闪长岩-英云闪长岩-二长花岗岩组成,显示活动陆缘—碰撞的构造演化历史,揭示松嫩—张广才岭地块与佳木斯地块于中志留世(425Ma)已经拼合在一起,这也得到了早泥盆世地层碎屑锆石年代学的支持。中泥盆世,火山作用分布在佳木斯地块东缘和松嫩—张广才岭地块上,前者为双峰式火山岩组合,后者为A型流纹岩,它们共同揭示该区处于一种碰撞后的伸展环境。早二叠世,佳木斯地块东缘发育一套钙碱性火山岩组合,揭示古亚洲洋俯冲作用的存在,而同期的张广才岭地区则发育一套典型的双峰式火成岩组合,揭示了陆内伸展环境的存在。中二叠世,同碰撞型火山岩分布于佳木斯地块东缘及东南缘,其形成可能与佳木斯地块和兴凯地块的碰撞拼合有关。晚三叠世,张广才岭地区存在的双峰式火山岩和敦—密断裂东南区发育的A型流纹岩均显示陆内的伸展环境,其形成应与古亚洲洋最终闭合后的伸展环境相联系。此外,结合牡丹江断裂两侧均发育中—晚二叠世花岗岩以及佳木斯地块上晚三叠世—早侏罗世岩浆作用的缺失,暗示松嫩—张广才岭地块与佳木斯地块在三叠纪早期沿牡丹江断裂可能存在一次裂解事件。而早—中侏罗世陆缘(东宁—汪清—珲春)钙碱性火山岩和陆内(小兴安岭—张广才岭)双峰式火成岩组合的出现,结合牡丹江断裂两侧"张广才岭群"和"黑龙江群"构造混杂岩的就位,暗示松嫩—张广才岭地块与佳木斯地块在早—中侏罗世再次拼合,这也标志着环太平洋构造体系的开始。  相似文献   

3.
通过对兴蒙造山带东段小兴安岭-张广才岭地区张家湾岩体石英闪长岩、正长花岗岩进行的锆石LA-ICP-MS U-Pb年龄分析测试、岩石地球化学的各项分析测试,综合分析研究表明,石英闪长岩形成于早侏罗世(176.2±1.8Ma),具浆混花岗岩特点,属壳幔混合成因;正长花岗岩形成于中侏罗世(166±2.2Ma),具"S"型花岗岩的地球化学属性,属壳源熔融成因。结合该区大地构造背景,认为张家湾岩体很可能是环太平洋增生地体的佳木斯板块与西侧的张广才岭地块碰撞造山作用形成。  相似文献   

4.
佳木斯地块南缘牡丹江地区的岩石学和地球化学研究表明,"黑龙江群"中存在洋壳残片,为形成于古大陆边缘环境的一套造山建造.牡丹江地区东北部的"麻山群"为佳木斯地块南缘的陆壳基底;其南侧的"黑龙江群"属造山建造,包括阿尔卑斯型超基性岩和具有MORB特征的斜长角闪片岩等.对"黑龙江群"中的斜长角闪片岩以及其南边具有同碰撞特征的钾长花岗岩进行了锆石SHRIMP U-Pb定年.结果表明:斜长角闪片岩具有777±18Ma的结晶年龄,并受到437±7Ma的变质作用的影响;同碰撞的钾长花岗岩形成年龄为461±6Ma.据此指出佳木斯地块南缘的黑龙江群中存在新元古代的洋壳残片并推断牡丹江地区存在早古生代的碰撞事件.  相似文献   

5.
陕西省镇安县桂林沟斑岩型钼矿床位于南秦岭多金属成矿带内,其成矿围岩主要为细粒花岗岩、钾长花岗岩和蚀变的粗粒花岗岩。本文通过对桂林沟斑岩型钼矿床中辉钼矿Re-Os同位素定年以及围岩中锆石U-Pb年代学研究,旨在探讨成矿成岩的关系及其构造意义。结果表明,6件辉钼矿的Re-Os同位素年龄在195.9~198.5Ma之间,加权平均年龄为197.2±1.3Ma,表明桂林沟钼矿形成于早侏罗世。围岩细粒花岗岩、钾长花岗岩和粗粒花岗岩的锆石U-Pb年龄分别为199±1.4Ma、201±3.1Ma和198±11Ma,这说明其成岩和成矿年龄基本一致。值得注意的的是,桂林沟钼矿床的形成年龄不同于前人已报导的秦岭钼矿的三个主要成矿期,即238~213Ma、145~126Ma和116~110Ma,其稍晚于第一成矿期。200~190Ma可能代表了秦岭成矿带一期尚未认识的重要成矿事件,对于南秦岭找矿具有重要意义。该期钼矿形成于秦岭印支期碰撞之后,是在造山带垮塌引起的岩浆-热液事件过程中形成的。  相似文献   

6.
那蓬岩体为混合岩化-花岗岩化作用的产物,主体岩性为中细粒(斑状)黑云母二长混合花岗岩、弱片麻状细粒黑云母二长混合花岗岩,富含堇青石、矽线石、红柱石等富铝矿物,靠近岩体边部为混合片麻岩、花岗片麻岩,逐渐过渡至围岩。对中细粒黑云母二长混合花岗岩进行LA-ICPMS锆石U-Pb同位素测年,锆石以变质锆石为主、岩浆锆石为辅,获得多期锆石UPb年龄,将最新的变质年龄252±1.9Ma作为成岩年龄,将那蓬岩体的成岩时代定为早三叠世。那蓬岩体形成于碰撞造山构造环境。  相似文献   

7.
大兴安岭全胜林场地区晚石炭世岩浆活动及其地质意义   总被引:1,自引:0,他引:1  
大兴安岭全胜林场地区位于兴蒙造山带东段的兴安地块,出露的晚古生代花岗岩主要由中粒黑云母二长花岗岩和中粗粒黑云母正长花岗岩组成,岩石未遭受变质作用。岩石地球化学特征显示两类花岗岩高硅(SiO2=75.72%~76.28%)、富碱(Na2O+ K2O=7.78%~8.89%)、弱过铝(Al2O3=12.42%~13.01%),TiO2、Fe2O3、FeO、MnO、MgO、CaO、P2O5等含量很低,标准矿物分子中石英、钠长石、正长石含量较高,出现少量刚玉分子和极少量的锆石、磷灰石、磁铁矿和钛铁矿等,但未见有碱性暗色矿物;稀土元素总量中等略偏高,轻重稀土分馏明显且轻稀土富集,具中等-较强的负铕异常;大离子亲石元素Rb、K、Pb较富集而Ba、Sr、Eu明显亏损,强烈亏损Nb、Ta、Ti等高场强元素(HFSE)和P元素。岩石所具有的A/CNK<1.1、标准矿物刚玉分子<1%、A/NK>1.0、P2O5与SiO2负相关、较高的分异指数(DI=92.49~97.26)等特征以及偏低的锆石饱和温度(730~834℃),均显示其具有类似于高分异I型花岗岩的特点。岩石中锆石呈半自形-自形柱状,振荡环带较发育,Th/U比值较高(大多介于0.36~1.35),为岩浆成因锆石;四个样品的锆石U-Pb加权平均年龄分别为(322.2±1.2)Ma、(305.9±2.4)Ma、(301.3±2.6)Ma和(294.8±1.6)Ma,代表其岩浆侵位时代为晚石炭世至早二叠世,研究区内出露的二长-正长花岗岩为晚石炭世—早二叠世岩浆侵位活动的产物。岩相学、岩石地球化学、年代学研究以及区域构造演化表明,大兴安岭全胜林场地区晚石炭世岩浆侵位活动可能发生在兴安地块和松嫩地块碰撞拼合所造成的造山晚期-造山后伸展构造背景下,二者最晚于早石炭世末已经完成碰撞拼贴。  相似文献   

8.
高精度同位素年代学和岩石学、元素地球化学研究结果表明,吉林省中部地区存在晚三叠世和早侏罗世两期铝质A型花岗岩。其中三道河正长花岗岩的锆石LA ICPMS年龄为(216±3) Ma,形成于晚三叠世,受控于华北板块和其北侧板块在晚二叠世—早三叠世沿西拉木伦河—长春—延吉缝合带碰撞拼合后的岩石圈伸展作用,标志古亚洲洋构造域的演化结束。天桥岗碱长花岗岩的锆石SHRIMP和TIMS年龄分别为(182±3) Ma和(188±4) Ma,全岩Rb Sr等时线年龄为(185±4) Ma,形成于早侏罗世,可能是与佳木斯板块和松嫩—张广才岭板块在早侏罗世早期沿嘉荫—牡丹江缝合带碰撞拼合有关的伸展作用的产物。这次板块碰撞作用很有可能标志着东北地区东部此时已经开始进入滨太平洋构造域的演化阶段。更详细的研究显示,两期A型花岗岩岩浆都来源于年轻的基性玄武质下地壳的部分熔融,岩浆经历了分离结晶作用。  相似文献   

9.
本文首次对佳木斯地块西缘、张广才岭东侧英城子金矿区出露的大面积黑云母碱长花岗岩,进行了锆石LA-ICP MS U-Pb年代学精细研究。实验共获得四组单颗粒锆石U-Pb谐和年龄,它们分别为612±4Ma、495.2±2.7Ma、476.8±5.5Ma和431±3Ma;其中612±4Ma具有指示晚元古代增生地壳过程形成的花岗岩锆石特征,495.2±2.7Ma的U-Pb年龄与区域内麻山群的变质作用时间相吻合,431±3Ma的年龄与早古生代晚期的区域变质作用时间吻合,而476.8±5.5Ma的锆石年龄则代表黑云母碱长花岗岩的真实结晶年龄。这项成果记录了该地区在中一新元古代时期曾发生过重要的地壳增生事件,增生后的地壳被打开形成大洋;至早古生代早期,两侧的地体发生拼贴,引起区域麻山群发生麻粒岩相的变质作用、形成花岗质片麻岩;在早古生代晚期,佳木斯地块西缘的陆间洋最终闭合,形成具有壳源特征同碰撞花岗岩,之后的韧性变形作用可能为金矿床的形成提供了有利条件。  相似文献   

10.
杨长江  王亚春 《吉林地质》2010,29(4):1-5,31
本文首次报道了小兴安岭南部伊春地区的五三零、南岔三林场及寒月林场岩体高精度锆石LA-ICP-MS U-Pb年龄。三个岩体均形成于早侏罗世,侵位年龄分别为175±3 Ma,180±2 Ma和195±2 Ma。岩石学和地球化学特征显示,这些岩体为高硅富碱性的钙碱性系列的二长花岗岩.花岗闪长岩组合,形成于造山后的伸展构造环境中,其大地构造背景与早侏罗世佳木斯板块和松嫩.张广才岭板块碰撞拼合后伸展作用有关。  相似文献   

11.
A suite of the fossil-rich marine-land interbedded strata(Nanshuangyashan Formation) is distributed at the eastern margin of the Jiamusi massif in the eastern Heilongjiang Province, NE China. The authors had recently discovered a suite of arkose beneath the marine-land interbedded strata, which overlays unconformably on the Permain granite in the eastern margin of the Jiamusi massif. The LA-ICP-MS zircon U-Pb dating indicate that all detrital zircons from the analysed four arkose samples show the four population ages of 800 Ma, 538–481 Ma, 269–250 Ma and 223–215 Ma. The former three population ages are widely recorded in the Jiamusi-Khanka massif and the Songnen massif. The later group is the minimal age population in the analyzed samples, limiting the sedimentation time of the arkoses occurred after the Late Triassic. At present, the minimal age population is not recorded in the Jiamusi massif, but the granites with the ages of 228–210 Ma are widely distributed in the Songnen-Zhangguangcai Range massif and the Khanka massif. The predominantly Permian zircons are characterized by oscillatory zoning and euhedral shapes, with variable zircon ε_(Hf)(t) values(-5.5 to +11.2), indicating that they were derived from mixture sources, possibly mixed with components of the Songnen-Zhangguangcai Range massif and the Jiamusi-Khanka massif. These results, combined with regional analyses, indicate that the closing of Mudanjiang ocean and Panthalassa ocean possibly existed from Early Permian to Late Triassic.  相似文献   

12.
小兴安岭平顶山大地构造位于兴蒙造山带东段,隶属松嫩地块。本文对小兴安岭平顶山一带碱长花岗岩和正长花岗岩进行了锆石U-Pb年代学和岩石地球化学研究,以确定其形成时代、岩石成因及大地构造背景。结果显示:碱长花岗岩形成于(189±3) Ma,正长花岗岩形成于(191±3) Ma,同为早侏罗世岩浆事件演化的产物;岩石具有高硅(w(SiO2)为75.00%~77.60%)、富碱(w(K2O+Na2O)为7.13%~9.00%)、贫镁(w(MgO)为0.05%~0.45%)、贫钙(w(CaO)为0.17%~1.10%)、低磷钛(w(P2O5)为0.01%~0.07%,w(TiO2)为0.09%~0.23%)的特点,A/CNK值为0.94~1.17,属于准铝质-弱过铝质、高钾钙碱性系列岩石;亏损高场强元素Nb、P、Ti、Ta和大离子亲石元素Ba、Sr,Rb、K、Th、Hf等元素具有明显的正异常;稀土元素总量(w(ΣREE))为(38.76~297.13)×10-6,稀土配分曲线显示为轻稀土略微富集、重稀土较为平坦缓向倾斜的右倾型,具明显的负Eu异常。锆石饱和温度值及地球化学特征等多种证据显示,岩石为高分异的I型花岗岩。结合小兴安岭区域构造演化特征分析,研究区早侏罗世花岗岩类为松嫩地块与佳木斯地块沿嘉荫—牡丹江缝合带碰撞拼合后伸展环境下的产物,岩浆起源于下地壳火成岩物质的部分熔融。  相似文献   

13.
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   

14.
大兴安岭北段扎兰屯地区巴升河岩体由碱长花岗岩组成.采用LA-ICP-MS方法对碱长花岗岩开展锆石U-Pb测年,结果为297.8±3.6 Ma,岩体形成于早二叠世.该岩体4个样品的全岩地球化学等特征显示:巴升河岩体中碱长花岗岩具有富Si、高K、富碱的特征,属于弱过铝质钾玄岩系列,同时,样品∑REE偏高,Eu负异常明显,富集大离子亲石元素,具有A型花岗岩特征,综合前人研究成果及同位素年代学特征,认为兴安地块与松嫩地块拼合的时间早于298 Ma.  相似文献   

15.
对小兴安岭北部孙吴-嘉荫地区早中生代花岗岩进行了年代学和地球化学研究,据此探讨其成因及形成的构造背景。锆石U-Pb同位素定年结果表明,研究区早中生代花岗岩分为晚三叠世和早侏罗世两期,形成时代分别为210 Ma和187~181 Ma。晚三叠世碱长花岗岩属铝质A型花岗岩,岩浆源区为新元古代从亏损地幔中增生的基性火成岩地壳。早侏罗世英云闪长岩-花岗闪长岩和二长花岗岩属埃达克岩,是由加厚下地壳物质部分熔融形成的;正长花岗岩-碱长花岗岩与同期埃达克岩具明显不同的地球化学特征,岩浆源区为中元古代从亏损地幔中增生的基性地壳物质。结合区域地质构造演化特征,认为晚三叠世花岗岩是华北板块和西伯利亚板块碰撞造山后伸展构造环境下的产物,早侏罗世花岗岩的形成与古太平洋板块俯冲产生的挤压构造环境有关。  相似文献   

16.
The Yingchengzi gold deposit, located 10 km west of Shalan at the eastern margin of the Zhangguangcai Range, is the only high commercially valuable gold deposit in southern Heilongjiang Province, NE China. This study investigates the chronology and geodynamic mechanisms of igneous activity and metallogenesis within the Yingchengzi gold deposit. New zircon U–Pb data, fluid inclusion 40Ar/39Ar dating, whole‐rock geochemistry and Sr–Nd isotopic analysis is presented for the Yingchengzi deposit to constrain its petrogenesis and mineralization. Zircon U–Pb dating of the granite and diabase–porphyrite rocks of the igneous complex yields mean ages of 471.7 ± 5.5 and 434 ± 15 Ma respectively. All samples are high‐K calc‐alkaline or shoshonite rocks, are enriched in light rare earth elements and large ion lithophile elements, and are depleted in high field strength elements, consistent with the geochemical characteristics of arc‐type magmas. The Sr–Nd isotope characteristics indicate that the granite formed by partial melting of the lower crust, including interaction with slab‐derived fluids from an underplated basaltic magma. The primary magma of the diabase–porphyrite was likely derived from the metasomatized mantle wedge by subducted slab‐derived fluids. Both types of intrusive rocks were closely related to subduction of the ocean plate located between the Songnen–Zhangguangcai Range and Jiamusi massifs. However, fluid inclusion 40Ar/39Ar dating indicates that the Yingchengzi gold deposit formed at ~249 Ma, implying that the mineralization is unrelated to both the granite (~472 Ma) and diabase–porphyrite (~434 Ma) intrusions. Considering the tectonic evolution of the study area and adjacent regions, we propose that the Yingchengzi gold deposit was formed in a late Palaeozoic–Early Triassic continental collision regime following the closure of the Paleo‐Asian Ocean. In addition, the Yingchengzi deposit could be classified as a typical orogenic‐type gold deposit occuring in convergent plate margins in collisional orogens, and unlikely an intrusion‐related gold deposit as reported by previous studies. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

17.
Controversy has long surrounded the tectonic framework and evolution of the Mudanjiang Ocean between the Bureya–Jiamusi–Khanka Massif and Songnen–Zhangguangcai Range Massif, which are located in the easternmost segment of the Central Asian Orogenic Belt. To address these issues, we present zircon U-Pb ages, geochemical data, and zircon Hf isotopic compositions of the Taipinggou amphibolite and metagabbro exposed along the boundary area of Bureya–Jiamusi Massif and Songnen–Zhangguangcai Range Massif. Magmatic zircons from the amphibolite and metagabbro yield 206Pb/238U ages of 267 ± 2 Ma and 264 ± 2 Ma, respectively, which are interpreted as protolith ages. The geochemical data of the amphibolite samples show transitional characteristics of calcalkaline to tholeiitic series, with high MgO concentrations (9.44–10.48 wt.%) and Mg-numbers (73–75). These samples are enriched in large ion lithophile elements (e.g. Rb, Ba, and K) and light rare earth elements and are depleted in high-field-strength elements (e.g. Nb, Ta, and Ti) and heavy rare earth elements, with εHf(t) values of ?6.63 to ?3.26. It is inferred that the parental magma originated from an enriched lithospheric mantle that had been metasomatized by fluids derived from subducted oceanic slab. During magma evolution, the magma that formed the amphibolite mainly experienced accumulation with a shallow-level evolutionary process involving fractional crystallization. The Taipinggou metagabbro samples are subalkaline series and also characterized by enrichment in large ion lithophile elements (e.g. Rb, Ba, and K) and light rare earth elements and by depletion in Nb–Ta–P–Ti, with εHf(t) values of ?3.09 to +1.16. The Taipinggou metagabbro and amphibolite have similar geochemical and Hf isotopic compositions, indicating a common parental magma source but with different degrees of magmatic differentiation. Based on the new geochronological and geochemical data presented in this study, we propose that both the Taipinggou metagabbro and amphibolite formed in a Middle Permian continental arc setting, closely related to eastward subduction beneath the Bureya–Jiamusi Massif. Combined with previous studies and regional geological observations, we suggest that a double-side subduction model is favoured for the Late Palaeozoic–Early Mesozoic geodynamic processes along the boundary area of Bureya–Jiamusi–Khanka Massif and Songnen–Zhangguangcai Range Massif.  相似文献   

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