首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 140 毫秒
1.
康欢  李大鹏  陈岳龙  鲁震 《现代地质》2016,30(5):1026-1037
对保山地块东缘高Si花岗岩开展矿物化学、岩石地球化学及锆石U Pb Hf系统研究,结果表明该高Si花岗岩为具钙碱性、强过铝质特征的S型花岗岩。锆石U Pb同位素分析表明,高Si花岗岩侵位于454 Ma,并含有800~1 100 Ma的继承锆石。锆石Hf同位素分析表明其岩浆锆石具有与青藏高原及东南缘同时代长英质侵入体相似的Hf同位素组成,暗示其相似的岩浆起源。矿物化学、同位素组成及Melts模拟计算结果表明,保山东缘高Si花岗岩为一系列复杂作用的结果:高硅花岗岩母岩浆起源于该区沉积岩部分熔融;熔体形成后经高度分异演化,在侵位过程中同化混染围岩;岩浆冷凝至固相线下部分矿物再平衡。保山东缘高Si花岗岩体与平河花岗岩体具相似年龄和地球化学特征,暗示它们之间可能存在类似的成因机制。  相似文献   

2.
大兴安岭北段额尔古纳地块莫尔道嘎-太平川一带分布有大量的新元古代巨斑状花岗岩,该岩体形成的确切时代及成因尚不清楚。笔者等运用LA ICP MS技术进行了锆石U Pb定年和锆石Hf同位素组成测定。锆石U Pb年龄结果揭示太平川巨斑状花岗岩形成时代为791.4 Ma。锆石Hf同位素研究显示εHf(t)为1.4~6.4,均>0,反映亏损地幔来源新生地壳物质在花岗岩的形成中起主导作用,锆石Hf单阶段的模式年龄tDM为1.09~1.28 Ga,与岩石的形成时间791.4 Ma有较长的时间间隔,表明该区花岗岩的母岩来自具有较长地壳滞留时间的地壳物质的部分熔融。结合额尔古纳已有的花岗岩锆石Hf同位素资料,认为额尔古纳地块在中、新元古代曾发生过地壳增生事件,存在1.09~1.28 Ga的中元古代晚期增生地壳。  相似文献   

3.
张鲲  徐德明  胡俊良  卢友月  黄皓 《地质通报》2017,36(9):1591-1600
对湘东北三墩铜铅锌矿区花岗岩进行了系统的锆石U-Pb年代学、岩石地球化学和Hf同位素分析。LA-ICP-MS锆石U-Pb定年表明,三墩铜铅锌矿区花岗岩成岩年龄为131.9±1.1Ma。三墩铜铅锌矿区花岗岩为一套强过铝质钙碱性系列花岗岩,富集U、Ta、Pb,亏损Ba、Nb、Sr、Zr、Ti等元素,稀土元素配分模式为右倾配分模式,具有弱负Eu异常。Hf同位素分析表明,三墩铜铅锌矿区花岗岩燕山晚期锆石ε_(Hf)(t)值为-5.9~-2.4,Hf同位素二阶段模式年龄为1558~1338Ma,表明其物质来源于中元古代古老地壳岩石部分熔融。749.5Ma继承锆石核的ε_(Hf)(t)值为+4.8,Hf同位素二阶段模式年龄为1355Ma,暗示其物质来源有幔源物质加入。三墩铜铅锌矿区花岗岩可能是由于中下地壳的熔融岩浆形成后,混入少量幔源物质上侵形成的。  相似文献   

4.
康定杂岩位于扬子地块西缘,通过对四川康定—冕宁—攀枝花—云南元谋地区出露的康定杂岩中基性、中性、酸性岩岩石学、锆石Lu-Hf同位素等多方面系统研究,确定这套岩石形成于岛弧环境。分析表明:康定杂岩中镁铁质侵入体锆石εHf(t)变化范围-4.2~+11.0,Hf模式年龄742~2386 Ma;长英质侵入体锆石εHf(t)变化范围-4.9~+9.4,Hf模式年龄为967~2707 Ma;暗示康定杂岩体复杂的构造成因。锆石Hf同位素分析表明其岩浆锆石具有与扬子地块西缘同时代镁铁质/长英质侵入体相似的Hf同位素组成,暗示其相似的岩浆起源。研究表明,康定杂岩为大洋俯冲背景下的产物,镁铁质侵入体来源于较为亏损地幔源区,长英质侵入体为新生陆壳与古老地壳物质相互作用形成的产物。锆石Hf同位素数据表明,康定侵入体杂岩中锆石Hf-全岩Nd解耦,为"锆石效应"与少量地壳物质加入共同作用结果。结合岩石学、地层学、构造及地球化学证据综合表明,新元古代时期,扬子地块可能位于Gondwana超大陆的边缘,而不是澳大利亚与北美Laurentia古陆之间的连接部分。  相似文献   

5.
紫金山矿田位于华南褶皱系东部,闽西南凹陷西南部,是我国大型-超大型浅成低温热液铜金矿床,区内发现多个与岩浆活动密切相关的金、银、铜等金属矿床.对紫金山矿田东南矿段与成矿密切相关的细粒黑云母花岗岩开展了详细野外地质调查、岩相学和锆石稀土元素、U-Pb年代学和Hf同位素研究.LA-ICP-MS法获得细粒黑云母花岗岩中岩浆结晶锆石206Pb/238U-207Pb/235U谐和年龄为109.5±1.9 Ma(MSWD=0.74,N=16),206Pb/238U加权平均年龄为107.44±0.94 Ma(MSWD=1.06,N=16),二者在误差范围内结果一致,结合锆石稀土元素和岩浆振荡环带特征及Th/U比值,上述年龄结果可代表岩石的结晶年龄,表明细粒黑云母花岗岩侵位于燕山期早白垩世.细粒黑云母花岗岩锆石Hf同位素初始比值εHf(t)均为负,介于-4.99~-1.06(平均值为-2.99);两阶段Hf模式年龄(tDM2)介于1 233.7~1 485.4 Ma(平均值为1 362.4 Ma).样品的εHf(t)、Hf同位素地壳模式年龄分布范围变化较小,暗示岩体的岩浆来源具有较为均一的锆石Hf同位素组成.紫金山矿田东南矿段早白垩世花岗岩体的锆石U-Pb年龄和Hf同位素特征,反映了闽西南早白垩世的岩浆成矿活动时间和源区特征,其成因与中国东南部岩石圈伸展减薄和壳源物质参与岩浆形成演化密切相关.   相似文献   

6.
赵硕  许文良  唐杰  李宇  郭鹏 《地球科学》2016,41(11):1803-1829
对额尔古纳地块新元古代花岗岩进行了锆石LA-ICP-MS U-Pb年代学、岩石地球化学和锆石Hf同位素研究,以便对其新元古代岩浆作用历史与微陆块构造属性给予制约.所测花岗质岩石中锆石的CL图像特征和Th/U比值(0.17~1.46) 显示其为岩浆成因.测年结果并结合前人定年结果,可以判定额尔古纳地块上至少存在~929 Ma、~887 Ma、~850 Ma、~819 Ma、~792 Ma、~764 Ma和~738 Ma岩浆事件.岩石地球化学特征显示,~887 Ma花岗岩为一套后碰撞花岗岩类;而850~737 Ma花岗质岩石整体上属于A-型花岗岩,也有部分岩体(漠河、阿木尔、碧水和室韦岩体)显示I-型花岗岩特征.锆石Hf同位素特征反映这些花岗岩的源区既有中-新元古代(TDM2=884~1 563 Ma)新增生地壳物质的部分熔融,同时伴有少量古老地壳物质的混染,也有残留的古老中基性下地壳物质的部分熔融.综合研究区新元古代侵入岩的地球化学特征,同时对比新元古代全球构造热事件,认为额尔古纳地块上新元古代岩浆活动记录了Rodinia超大陆形成和演化过程中的地壳响应:927~880 Ma的岩浆作用应是Rodinia超大陆汇聚造山的产物;而850~737 Ma的岩浆作用应是对Rodinia超大陆快速裂解的记录.通过岩浆事件对比发现,额尔古纳地块与邻近的西伯利亚南缘微陆块(如中蒙古地块和图瓦地块)具有亲缘性,而与塔里木板块和华南板块至少在新元古代岩浆活动上具有一定的相似性,而明显区别于华北板块和西伯利亚板块.   相似文献   

7.
禹丽  李龚健  王庆飞  刘学飞 《岩石学报》2014,30(9):2709-2724
滇西保山地块晚白垩世-古近纪岩浆活动代表了新特提斯演化阶段的一次重要岩浆事件,其岩浆岩成因、源区属性及地球动力学背景尚不明确。本文对出露于保山地块北部漕涧地区的花岗岩类进行了全岩地球化学、锆石U-Pb年代学和Hf同位素组成研究。2件样品锆石U-Pb年龄结果分别为73.32±0.19Ma(MSWD=0.68)和73.44±0.20Ma(MSWD=1.3)。岩体具有高硅(SiO2=73.76%~74.74%)、富碱(K2O+Na2O=8.14%~8.62%)、过铝质(A/CNK=1.15~1.23)特征,在SiO2-K2O岩石判别图解上属钾玄岩系列;明显富集Rb、U及Th等大离子亲石元素和Pb,相对亏损Nb、Ta及Ti等高场强元素;具有强烈的轻重稀土分馏(LREE/HREE=8.5~15.1),球粒陨石标准化配分曲线表现出明显的负Eu异常(δEu=0.29~0.43)特征。锆石εHf(t)值十分集中(-5.0~-3.5),对应的Hf同位素地壳模式年龄tC DM为1352~1496Ma。这些地化特征和Hf同位素组成综合表明槽涧岩体属于晚白垩世S型花岗岩,其可能来源于保山地块中元古代地壳基底的深熔作用,物质来源为富黏土的泥质岩。构造环境判别图解中样品均落入同碰撞花岗岩区域。综合研究表明,保山地块发育有85~83Ma、~73Ma和66~60Ma三期过铝质花岗岩类,预示该地区在晚白垩世-古新世存在持续的地壳伸展减压作用。基于区域大地构造背景,本文提出了如下岩浆岩形成构造演化过程:(1)早白垩世中特提斯洋的闭合导致保山地块西侧地壳增厚;(2)晚白垩世新特提斯洋板片北东向俯冲过程中可能发生过海沟回撤作用,导致先存加厚地壳发生减压熔融,岩浆上侵形成漕涧岩体。综合对比西藏冈底斯岩浆带和腾冲地块同一时代花岗岩锆石Hf同位素数据,表明保山地块基底属性明显不同于腾冲地块和拉萨地块南部。  相似文献   

8.
广西西大明山多金属矿集区位于右江褶皱带东南缘。LA ICP MS锆石 U Pb定年结果显示,区内那宁石英斑岩脉、罗维隐伏二长花岗岩和黑云母花岗岩岩体的侵位年龄分别为(9311±064)Ma、(9292±069)Ma和(925±11)Ma,说明三者都形成于晚白垩世。Hf同位素组成结果显示,石英斑岩中锆石εHf(t)值变化于-184~-12之间,两阶段模式年龄变化于1 236~2 326 Ma之间。二长花岗岩和黑云母花岗岩锆石εHf(t)值分别为-194~+03和-122~-36,两阶段模式年龄分别变化于1 139~2 385 Ma和1 386~1 933 Ma,表明它们主要来源于中元古代末期增生的地壳组分与少量古元古代地壳地质的共同熔融。通过与右江褶皱带周缘岩浆岩带锆石Hf同位素特征对比,认为右江褶皱带周缘岩浆岩可能具有一致的物源。二长花岗岩和黑云母花岗岩中锆石的Ce(IV)/Ce(Ⅲ)比值平均值分别为2365和3376,说明罗维隐伏岩体具有较低的氧逸度。通过对比右江褶皱带周缘前人的成矿年代学及同位素研究,显示该区成岩成矿时间较短(92~95 Ma),形成于晚白垩世区域伸展构造体制下,右江褶皱带岩石圈发生松弛和伸展垮塌,导致中元古代和少量古元古代地壳发生部分熔融,形成大规模岩浆作用。结合右江褶皱带周缘岩浆带大地构造位置及成岩时代,认为右江褶皱带燕山期岩浆岩的形成可能受到太平洋构造域和特提斯构造域双重作用,可能以后者为主。  相似文献   

9.
对内蒙赤峰楼子店拆离断层带下盘前人划为前寒武纪岩石的糜棱状花岗质岩石中锆石进行了U-Pb年龄测定和Hf同位素测试,结果显示其时代为晚古生代至中生代。楼子店扎兰营子片麻状花岗岩的锆石206Pb/238U年龄为253.6±1.2Ma,锆石εHf(t)值为-8.6~-14.6,锆石Hf同位素地壳模式年龄为1.8~2.2Ga;朝阳沟糜棱岩化片麻状花岗岩的锆石206Pb/238U年龄为150.43±0.79Ma,锆石εHf(t)值为-5.6~-14.9,锆石Hf同位素地壳模式年龄为1.6~2.1Ga;莫里海沟片麻状闪长岩的锆石206Pb/238U年龄为127.6±3.1Ma,锆石εHf(t)值为-5.1~-13.9,锆石Hf同位素地壳模式年龄为1.5~2.1Ga。不同岩性、不同形成年龄的3个样品的εHf(t)值主要为负值,说明这些岩石主要来自地壳岩石的部分熔融。2.2~1.5Ga的锆石Hf同位素两阶段模式年龄表明它们可能主要来源于华北克拉通下地壳物质的部分熔融。结合该区已经获得的锆石U-Pb年龄,将该区古生代至中生代花岗质岩浆作用划分为4个时期:早石炭世(327Ma)、二叠纪(285~252Ma)、中三叠世—早侏罗世(241~184Ma)、中侏罗世—早白垩世(163~125Ma)。早石炭世喇嘛洞混合花岗岩的产出对应于古亚洲洋古生代向南俯冲于华北板块的时期,二叠纪花岗岩是古亚洲洋最后闭合、蒙古弧与华北陆块北缘拼合与伸展有关的岩浆活动的产物,大面积的中三叠世—早侏罗世的花岗岩是西伯利亚与华北陆块碰撞后地壳伸展的记录,中侏罗世—早白垩世(163~125Ma)岩浆活动则发育在伸展构造背景中,与岩石圈减薄存在密切的成因联系。这些新年龄资料将为华北陆块北缘古生代—中生代的地质构造演化提供重要的年代学制约。  相似文献   

10.
永庆林场一十八站花岗岩体位于大兴安岭东北部的额尔古纳地块,主要由花岗闪长岩组成,二长花岗岩和石英闪长岩在岩体中零星出露。岩体中锆石呈自形晶,发育振荡生长环带,显示高Th/U比值(0.23~1.35),表明锆石岩浆成因。锆石的LA—ICP—MSU-Pb定年结果为443.5~447.5Ma,属于晚奥陶世岩浆活动的产物,而非前人所划分为的新元古代。锆石的Hf同位素研究显示,2件花岗岩样品的εHf(t)值分别为一1.1~+2.4和一0.4~+3.6,二阶段模式年龄为1.2~1.5Ga。结合额尔古纳地块已有的早古生代和中生代花岗岩锆石Hf同位素资料,笔者认为额尔古纳地块不同时代的花岗岩具有相似的模式年龄,其地壳增生的时间主要发生在中一新元古代。目前已有研究表明,兴安地块地壳增生发生在新元古代一显生宙,暗示它们具有不同的地壳演化过程。  相似文献   

11.
ABSTRACT

This article presents new zircon U–Pb geochronology, Hf isotopic, and whole-rock major- and trace-element geochemical data that provide insights into the petrogenesis and tectonic history of the Riwanchaka granodiorite porphyries of Central Qiangtang, Tibet. Zircon U–Pb ages of 236–230 Ma indicate an early Late Triassic age of emplacement of the porphyries, and zircon Hf isotopic data yield εHf(t) values of – 7.0 to – 1.5 and ancient zircon Hf crustal model ages (TDMC) of 1524–1220 Ma. The granodiorite porphyries are characterized by low K2O contents, high Mg# values, and relatively high Cr and Ni contents. They are classified as I-type calc-alkaline granite and are considered to have formed through the anatexis of ancient mafic crustal rocks with contributions from mantle-derived components. The geochemistry and isotopic compositions of all samples are similar to those of magmatic rocks that originated in the South Qiangtang crust. However, field observations indicate that the pluton intrudes the North Qiangtang crust, and we propose that the granodiorite porphyries were derived by partial melting of subducted continental crust of the South Qiangtang terrane. These new data have been integrated with data from previous studies to construct a new model of slab rollback during northward subduction of the Southern Qiangtang continental crust at ca. 245–226 Ma, thereby improving our understanding of magmatic processes involved in continental subduction in collision settings.  相似文献   

12.
对冈底斯中部地区二云母花岗岩和花岗闪长岩进行了LA-ICP-MS锆石U-Pb定年、主量元素、微量元素和锆石Hf同位素组成的测定.结果表明, 二云母花岗岩的岩浆结晶年龄为(205± 1)Ma, 岩石属于强过铝质花岗岩, A/CNK= 1.16~ 1.20, K2O/Na2O= 1.67~ 1.95.岩石富Rb、Th和U等元素, Eu/Eu* = 0.29~ 0.41, (La/Yb)N= 22.62~ 35.08.锆石εHf(t)= -12.4~ -1.8.二云母花岗岩的岩浆产生于地壳中泥质岩类在无外来流体加入的情况下云母类矿物脱水反应所诱发的部分熔融作用, 其岩石形成机制类似于喜马拉雅新生代淡色花岗岩.花岗闪长岩的岩浆结晶年龄为(202± 1)Ma, 岩石属于准铝质(A/CNK= 0.96~ 0.98), K2O/Na2O= 1.42~ 1.77, Eu/Eu* = 0.54~ 0.65, (La/Yb)N= 6.76~ 13.35.锆石εHf(t)= -8.2~ -5.5.根据花岗闪长岩的地球化学特征和锆石Hf同位素组成, 花岗闪长岩的岩浆来自于地壳中基性岩类的部分熔融.冈底斯印支晚期强过铝质花岗岩的确定, 表明了冈底斯在印支晚期以前曾发生地壳的缩短与加厚作用, 从而进一步明确了冈底斯印支早期的造山事件及冈底斯经历了多期造山作用的演化.   相似文献   

13.
《International Geology Review》2012,54(16):2036-2056
ABSTRACT

The Chinese Southwest Tianshan Orogenic Belt is located along the boundary between the Central Asian Orogenic Belt (CAOB) and the Tarim Block (TB), NW China. It records the convergence of the Tarim Block and the Middle Tianshan, and is, therefore, a crucial region for understanding the Eurasia continental growth and evolution. The Wulagen (geographical name) metasedimentary rocks of the Wuqia area (mainly metamorphic sandstones and mica schists) form one of the metamorphic terranes in the Southwestern Tianshan Orogenic Belt. The geochronology of these rocks is poorly known, which hampers our understanding of the tectonic evolution of the belt. We analyzed 517 zircon grains for detrital zircon U–Pb dating and 93 zircon grains for in situ Lu–Hf isotopic compositions from the Wulagen metasedimentary rocks. The analyzed zircon grains yield Neoarchean to late Paleozoic U–Pb ages with major age peaks at ~2543 Ma, 1814 Ma, 830 Ma, 460 Ma, and the youngest cluster of zircon (magmatogene) ages is 395 Ma. The zircon U–Pb data show that the late Paleozoic (Early Devonian) is the maximum depositional age of the Wulagen metasedimentary rocks, rather than the previously considered Precambrian period. The zircons with Paleozoic ages yield εHf(t) values of ?22.0 to +11.3 and two-stage model ages (TDM2) of 3.95 to 1.30 Ga, suggesting that the parental magmas were formed from partial melting of pre-existing crustal rocks. Our zircon U–Pb geochronology and Hf isotopic data indicate the major source regions for the Wulagen metasedimentary rocks was the Kyrgyzstan North Tianshan. The zircon age population of 600–400 Ma (peak at ~460 Ma) has negative εHf(t) values (?15.0 to ?0.6) and Mesoproterozoic two-stage model ages, suggesting that the early Paleozoic magmatism resulted mainly from the melting of ancient crust, which played an important role in crustal evolution in the southern CAOB.  相似文献   

14.
靳胜凯  刘博  马明  殷嘉乐 《地质学报》2024,98(1):116-137
本文对华北克拉通北缘中段内蒙古化德地区二叠纪—三叠纪5个花岗质侵入体进行了岩相学、地球化学、锆石U Pb年代学以及Sr Nd Hf同位素研究。结果表明本次所研究的岩体主要起源于华北克拉通古老下地壳的部分熔融,八音察汗岩体形成于早二叠世(276±1 Ma),在岩浆上升过程中发生了岩浆混合作用;白音特拉岩体形成于中二叠世(270±1 Ma),为地壳加厚作用下变质杂砂岩部分熔融形成的S型花岗岩;毛忽庆岩体形成于晚二叠世(254±1 Ma),为I型花岗岩;张万良岩体与康家地岩体分别形成于早三叠世(248±1 Ma)和晚三叠世(229±1 Ma),两者均为A型花岗岩。综合前人研究,本文认为研究区在早二叠世—晚三叠世经历了古亚洲洋向华北板块俯冲、俯冲 同碰撞、持续碰撞以及造山后的伸展4个阶段,古亚洲洋东段在研究区的闭合时间应为中二叠世晚期。  相似文献   

15.
The Zhongchuan district is an important component of the metallogenic belt in the Western Qinling. The Zhongchuan granite pluton occurring in the centre of the Zhongchuan metallogenic area has been poorly constrained, though the Triassic granite in Western Qinling has been well documented. In‐situ zircon U–Pb ages, Hf isotopic compositions and whole‐rock geochemical data are presented for host granite and mafic microgranular enclaves (MMES) from the Zhongchuan pluton, in order to constrain its sources, petrogenesis and tectonic setting of the pluton. The distribution of major, trace and rare earth elements apparently reflect exchange between the MMES and the host granitic rocks mainly due to interactions between coeval felsic host magma and mafic magma. The zircon U–Pb age of host granite (231.6 ± 1.5 to 235.8 ± 2.3 Ma) has overlapping uncertainty with that of the MMES (236.6 ± 1.3 Ma), establishing that the mafic and felsic magmas were coeval. The Hf isotopic composition of the MMES (εHf(t) = −13.4 to 4.0) is distinct from the host granite (εHf(t) = −15.7 to 0.0), indicating that both enriched subcontinental lithosphere mantle (SCLM) and crustal sources contributed to their origin. The zircons have two‐stage Hf model ages of 1064 to 1798 Ma for the host granite and 858 to 1747 Ma for the MMES. This suggests that the granitic pluton was likely derived from partial melting of a Late Mesoproterozoic crust, with subsequent interaction with the SCLM‐derived mafic magmas in tectonic affinity to the South China Block. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

16.
以西藏冈底斯中段西侧桑桑花岗质岩体为对象,进行了系统的年代学、元素地球化学和锆石Hf同位素组成研究,据此阐明了岩体成因,并探讨了其构造意义。锆石LA-ICP-MS U-Pb定年表明,桑桑花岗质岩体的成岩年龄为49~54 Ma。化学组成上,岩体具有亚碱、准铝、贫磷的特征(A/NKC1.10,P_2O_50.20%),属钙碱性I型花岗岩类。岩体富Cs、Rb、Ba、Th、U、K、Pb和轻稀土,贫Nb、Ta、P与Ti,表现出弧岩浆岩的地球化学特征。岩体的锆石εHf(t)值变化较大,散布于正值与负值之间(=-4.24~+5.49),指示其形成存在不同来源物质的贡献。综合分析表明,桑桑花岗质岩体起源于初生地壳的部分熔融,但在成岩过程中有古老地壳组分的参与。结合区域地质背景,笔者认为这一古老地壳组分最可能来自印亚碰撞过程中俯冲下插的印度地壳,由此说明印度-欧亚大陆碰撞的起始时间应早于54 Ma。  相似文献   

17.
《International Geology Review》2012,54(15):1835-1864
The Yinshan deposit is a large epithermal-porphyry polymetallic deposit, and the timing and petrogenesis of ore-hosting porphyries have been hotly debated. We present new results from geochemical, whole-rock Sr–Nd and zircon U–Pb–Hf–O isotopic investigations. Zircon U–Pb data demonstrate that the quartz porphyry, dacitic porphyry, and quartz dioritic porphyry formed at ?172.2 ± 0.4 Ma, ?171.7 ± 0.5 Ma, and ?170.9 ± 0.3 Ma, respectively. Inherited zircon cores show significant age spreads from ?730 to ?1390 Ma. Geochemically, they are high-K calc-alkaline or shoshonitic rocks with arc-like trace element patterns. They have similar whole-rock Nd and zircon Hf isotopic compositions, yet an increasing trend in ?Nd(t) and ?Hf(t) values typifies the suite. Older (inherited) zircons of the three porphyries display Hf compositions comparable to those of the Jiangnan Orogen basement rocks. In situ zircon oxygen isotopic analyses reveal that they have similar oxygen isotopic compositions, which are close to those of mantle zircons. Moreover, a decreasing trend of δ18O values is present. We propose that the ore-related porphyries of the Yinshan deposit were emplaced contemporaneously and derived from partial melting of Neoproterozoic arc-derived mafic (or ultra-mafic) rocks. Modelling suggests that the quartz porphyries, dacitic porphyries, and quartz dioritic porphyries experienced ?25%, ?10%, and ?10% crustal contaminations by Shuangqiaoshan rocks. Our study provides important constraints on mantle–crust interaction in the genesis of polymetallic mineralization associated with Mesozoic magmatism in southeastern China.  相似文献   

18.
ABSTRACT

The Tibetan Plateau is a composite orogenic belt that has experienced prolonged subduction, obduction, and collisional processes, during the opening and closure of successive Tethyan oceans. We present new zircon U-Pb ages and Hf isotopes, and whole-rock geochemical and Sr-Nd-Pb isotopic data from the Early Paleogene Longge’er gabbro and Qingduxiang granite of Central Lhasa, southern Tibet. Together these allow us to refine existing models for widespread magmatic activity associated with the subduction of the Neo-Tethyan Ocean. The Longge’er gabbro (53.5 ± 1.6 Ma) belongs to the low-K tholeiitic to medium-K and metaluminous series, while the Qingduxiang granite (54.5 ± 0.9 Ma) is characterized as high-K, calc-alkaline, metaluminous, and of I-type affinity. Both intrusions are enriched in the LREE and depleted in the HREE with negative Eu, Ba, Nb, Ta, Sr, and Ti anomalies. Trace elements characteristics and enriched whole-rock Sr-Nd-Pb and zircon Hf isotopic compositions demonstrate that the gabbro was derived from partial melting of enriched lithosphere mantle metasomatized by Central-Lhasa ancient crustal materials, while the I-type granite was generated by partial melting of Central-Lhasa ancient lower crust combined with magmas derived from Southern-Lhasa juvenile crust. Geochemical compositions of the gabbro and granite reveal the Early Paleogene magmatism was emplaced in a shallow extensional setting related to slab break off following the closure of the Neo-Tethyan Ocean. Combined with previous studies, we can infer slab rollback occurred from Late Cretaceous (~69 Ma) to Early Eocene (55 Ma), while slab break off was shortly lived at ca. 55–49 Ma. Consequently, the India-Asia collision must not have started later than ca. 55 Ma.  相似文献   

19.
羌塘地块基底研究工作是青藏高原地学领域的难点。羌塘地区是否具有前寒武纪基底一直以来存在着很大的争议,现有的年代学资料虽有报道,但至今仍缺乏统一的认识。本文对北羌塘中部双湖地区花岗岩进行了SIMS锆石U-Pb年代学、全岩主微量元素、Sr-Nd同位素和锆石Hf-O同位素地球化学研究。双湖花岗岩形成于晚三叠世(~217 Ma),并捕获~828 Ma的锆石。双湖花岗岩具有高的SiO2、K2O和低的MgO含量(SiO2=64.00%~69.54%,K2O=4.09%~5.17%,MgO=1.44%~3.34%),具有轻稀土元素富集的配分模式,以及富集的全岩εNd(t)值(-9.6)和锆石原位εHf(t)值(-10.8~-8.1),岩浆锆石的δ18O值为6.98‰~8.30‰。岩相学和地球化学特征表明双湖花岗岩主要来源于中下地壳的部分熔融。综合区域内时空演化格架以及大量相关地质事实,认为双湖晚三叠世花岗岩形成于后碰撞伸展构造背景。捕获锆石的阴极发光显示较明显的振荡环带,表明来自于酸性岩浆岩;其具有高的不均一的O同位素(δ18O=8.20‰~10.23‰),Hf模式年龄为1.7~1.9 Ga,表明其源岩是来自古元古代地壳物质重熔形成的S型花岗岩,代表了北羌塘地块的基底。综合区域地质、岩石地球化学特征及其捕获锆石信息,本文认为双湖花岗岩为北羌塘地块可能具有扬子型晋宁期基底提供了重要信息。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号