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1.
    洋岛玄武岩的元素和同位素地球化学特征可以示踪深部地幔的化学结构和化学演化过程。HIMU(Highμ,μ=238U/204Pbt=0) 型玄武岩是一类元素和同位素组成特殊的洋岛玄武岩,被认为与地幔柱中再循环的洋壳物质直接相关,因此,HIMU型玄 武岩的成因是地幔柱(热点) 研究中长期关注的话题。本文概述了HIMU型玄武岩的地球化学定义,对HIMU洋岛的分布、 火山演化阶段以及岩性变化做了综合阐述,并在对比经典HIMU型玄武岩与其他板内玄武岩元素地球化学特征、放射成因 同位素组成以及惰性气体同位素组成特征的基础上,简要探讨其源区组成和成因上的不同。  相似文献   

2.
徐峥  郑永飞 《地球科学》2019,44(12):4135-4143
大陆玄武岩通常具有与洋岛玄武岩相似的地球化学成分,其中含有显著的壳源组分.对于洋岛玄武岩来说,虽然其中的壳源组分归咎于深俯冲大洋板片的再循环,但是对板片俯冲过程中的壳幔相互作用缺乏研究.对于大陆玄武岩来说,由于其形成与特定大洋板片在大陆边缘之下的俯冲有关,可以用来确定古大洋板片俯冲的地壳物质再循环.本文总结了我们对中国东部新生代玄武岩所进行的一系列地球化学研究,结果记录了古太平洋板片俯冲析出流体对地幔楔的化学交代作用.这些大陆玄武岩普遍具有与洋岛玄武岩类似的地球化学成分,在微量元素组成上表现为富集LILE和LREE、亏损HREE,但是不亏损HFSE的分布特点,在放射成因同位素组成上表现为亏损至弱富集的Sr-Nd同位素组成.在排除地壳混染效应之后,这些玄武岩的地球化学特征可以由其地幔源区中壳源组分的性质来解释.俯冲大洋地壳部分熔融产生的熔体提供了地幔源区中的壳源组分,其中包括洋壳镁铁质火成岩、海底沉积物和大陆下地壳三种组分.华北和华南新生代大陆玄武岩在Pb同位素组成上存在显著差异,反映它们地幔源区中的壳源组分有所区别.中国东部新生代玄武岩的地幔源区是古太平洋板片于中生代俯冲至亚欧大陆东部之下时,在>200 km的俯冲带深度发生壳幔相互作用的产物.在新生代期间,随着俯冲太平洋板片的回卷引起的中国东部大陆岩石圈拉张和软流圈地幔上涌,那些交代成因的地幔源区发生部分熔融,形成了现今所见的新生代玄武岩.   相似文献   

3.
对扬子地块西缘康滇裂谷北段的丹巴变质玄武岩进行了系统的岩石学、元素-Nd同位素地球化学研究,结果表明该岩石为碱性玄武岩,样品相对富MgO、富TiO2,Mg#值介于0.51~0.59之间.稀土总量较高,轻重稀土分馏较明显,Th、Nb、Ta、Zr、Hf和LREE等不相容元素富集,Y和HREE明显亏损,地球化学特征与洋岛玄武岩(OIB)类似.岩浆形成于板内裂谷环境,起源于类似OIB的地幔源区,并在上升过程中受到了大陆岩石圈地幔(SCLM)物质不同程度的混染,同时还可能有少量下地壳物质的混染.样品在岩石化学上表现出地幔柱岩浆作用的痕迹,很可能与导致Rodinia超级大陆裂解的新元古代地幔柱事件有关.  相似文献   

4.
广西涠洲岛晚新生代玄武岩地幔源区及岩浆成因   总被引:1,自引:0,他引:1  
杨文健  于红梅  赵波  陈正全  白翔 《岩石学报》2020,36(7):2092-2110
涠洲岛作为我国最年轻的第四纪火山岩岛,其火山活动表现出多期、多旋回和多喷发中心的特征,但其地幔源区特征和岩浆成因依然存在争议。本文对涠洲岛玄武岩开展了详细的矿物学和全岩主、微量元素及Sr-Nd-Pb同位素研究,以揭示其地幔源区特征和岩浆成因。涠洲岛玄武岩主要为碱性玄武岩,在岩浆上升过程,几乎未受到地壳物质的混染,经历了橄榄石和单斜辉石的分离结晶作用。轻稀土(LREE)富集、重稀土(HREE)亏损,轻、重稀土强烈分馏((La/Yb)N=14.42~28.64),Nb、Ta明显正异常,显示出与洋岛玄武岩(OIB)相似的微量元素和Sr-Nd-Pb同位素特征。Sr-Nd-Pb同位素比值变化较均一,且呈现出亏损地幔端元(DM)与富集地幔端元(EM2)的二元混合趋势。其中,EM2端元可能源于海南地幔柱。Sr/Sr*(1.21~2.36)和Eu/Eu*(1.01~1.11)正异常,指示源区存在再循环辉长岩洋壳组分。结合已有的地震层析成像结果和岩石地球化学数据,得出南海及周缘地区的晚新生代玄武岩的形成受控于海南地幔柱。伴随着海南地幔柱的上升,再循环的辉长岩洋壳经部分熔融与地幔橄榄岩反应生成石榴石辉石岩(贫硅辉石岩),石榴石辉石岩和未反应的地幔橄榄岩混合部分熔融形成涠洲岛玄武岩。  相似文献   

5.
大别造山带南坡晚白垩世玄武岩源区地幔特征   总被引:9,自引:1,他引:9  
大别造山带南坡中生代断陷盆地中出露大量晚白垩世碱性玄武岩类。因岩浆受结晶分异和陆壳混染影响微弱,其成分基本可代表本区原生玄武岩浆。在微量元素原始地幔标准化蛛网图上,本区玄武岩具有地壳富集组分Pb、K、Rb、Ba等的正异常和Nb、P、Hf等高场强元素的负异常。同位素和微量元素特征显示,玄武岩浆来自亏损地幔(DM)和富集地幔(EM+EM)混合源区。玄武岩源区地幔中Pb的富集和Nb、P、Hf等的亏损基本可由中国东部亏损地幔与榴辉岩的混合获得,由此揭示富集地幔端元组成特征可能与晚白垩世前造山带根部榴辉岩拆沉并参与地幔再循环有关。  相似文献   

6.
对攀枝花大田地区斜长角闪岩进行了系统的主微量地球化学特征、锆石LA-ICP-MS U-Pb年代学以及Lu-Hf同位素特征研究.结果表明:斜长角闪岩的SiO2含量为47.88%~50.05%,原岩为亚碱性-碱性玄武岩.斜长角闪岩稀土总量(ΣREE)较高,稀土元素配分模式为轻稀土富集的右倾型,与洋岛玄武岩相似.微量元素原始地幔标准化蛛网图为"隆起"型,与板内玄武岩特征类似.Zr/Nb、Hf/Th等比值均表明其与板内玄武岩类似,而与岛弧玄武岩具有明显的差异.锆石U-Pb定年结果表明岩浆结晶年龄为816.0~833.6 Ma,同期岩浆结晶锆石的εHf(t)值在-6.8~+3.8之间,其岩浆源区为与OIB类似的富集地幔源区且受到了地壳物质的混染.综合上述资料,认为其形成于Rodinia超级地幔柱活动导致的大陆裂谷环境.   相似文献   

7.
拉脊山火山岩带位于祁连造山带中部, 通过对该区早古生代基性火山岩系统的地球化学研究, 揭示该区早古生代地幔的性质及其地幔域的构造归属.研究表明, 拉脊山基性火山岩可以分为两类: Ⅰ类为大陆板内碱性玄武岩, 其稀土元素组成模式为轻稀土富集型, 并具有明显的Nb、Ta负异常, 而Zr、Hf无明显的负异常; Ⅱ类为与地幔柱活动有关的拉斑玄武岩, 具有洋岛玄武岩(OIB) 特征.稀土元素组成模式同样表现为轻稀土富集型, 但其富集程度比Ⅰ类基性火山岩的富集程度弱, 无Nb、Ta、Zr和Hf负异常.基性火山岩的Sr、Nd、Pb同位素组成特征显示, 基性火山岩的地幔源区具有亏损地幔(DM) 和第二类富集地幔(EMⅡ) 混合的特点, 而第二类富集地幔端元(EMⅡ) 占主导地位, 亏损地幔(DM) 物质混入的程度较低; 并具有Dupal异常的同位素特征.通过与华北南缘、北秦岭和扬子北缘西段地幔的Pb同位素组成相比, 表明拉脊山造山带古地幔与北秦岭、南秦岭西段和扬子北缘西段地幔的Pb同位素组成相似.进而表明拉脊山造山带古地幔属于扬子型富放射性成因铅地幔, 而非华北型贫放射性成因铅地幔   相似文献   

8.
<正>洋岛玄武岩(OIB)的地球化学不均一性通常都被解释为地幔柱中存在再循环的地壳物质,但是再循环物质的性质和形成时代很难限定。比如说,对于富集1型地幔端元(EM1)的来源,就有深海沉积物、大陆下地壳、大陆岩石圈地幔等多种推测。法国和德国的科学家们对具有典型EM1型地球化学信号的Pitcairn玄  相似文献   

9.
本文综合分析了新生代大洋玄武岩的Pb,Sr,Nd同位素特征,并利用同位素混合方程,差别出大洋玄武岩均显示出很好的三元混合特征,提出了大洋地幔的三元结构模式。三个地幔端员成分分别代表了亏损地幔,高U/Pb比和高Th/Ph比地幔,富集地幔。修正了过去利用Sr-Nd负相关关系得出的二元地幔结构模式,作出了大洋玄武岩的Pb-Sr-Nd同位素相关图,并论证了Zindler等(1982)提出的“地幔面”是不存在的。本文还对部分岛孤及大陆玄武岩进行了讨论。  相似文献   

10.
山东临朐玄武岩微量元素地球化学特征   总被引:2,自引:1,他引:2       下载免费PDF全文
本文测定了山东临朐一带新生代玄武岩的稀土和某些微量元素含量。玄武岩的稀土元素含量较高,特别是轻稀土富集,同时可能存在微弱的铕正异常。在不相容元素丰度图形上,其特点和洋岛碱性玄武岩接近,和大陆裂谷玄武岩有一定差别。根据稀土元素和不相容元素含量特点,认为玄武岩是地幔部分熔融产物。根据作者提出的采用简单二元组分混合、锶同位素混合和部分熔融方程的共同制约及有关参数,计算了岩石形成时两种典型的地幔源区即MORB源和Plume源的可能混合比例。  相似文献   

11.
中国东南部浙江境内分布有大量新生代板内玄武岩,这些玄武岩的分布受到三条北东—南西向的断裂控制,将浙江玄武岩分为西部、中部、东部三个区域。其中,出露于浙江西部江山-绍兴断裂带的建德玄武岩是浙江境内最古老的新生代玄武岩(约40 Ma)。为进一步认识浙江境内新生代岩浆作用的本质,测定了建德玄武岩的元素组成和Sr、Nd、Hf、Pb同位素组成,并在与浙江境内其它新生代玄武岩对比的基础上,探讨它们之间的成因联系。建德玄武岩为碧玄岩,与浙江西部其它新生代玄武岩一样,碱性程度明显高于浙江中部和东部的新生代玄武岩(以弱碱性的碱性橄榄玄武岩和拉斑玄武岩为主)。这些玄武岩具有较低的SiO2 (41.3~42.3 wt%)和Al2O3(9.70~12.6 wt%)含量,较高的MgO(8.90~15.6 wt%)、CaO(8.92~12.1 wt%)、TiO2(2.78~3.18 wt%)和Fe2O3T(14.1~16.2 wt%)含量以及较高的Ca/Al(1.02~1.16)比值。不相容微量元素组成上与火成碳酸岩具有亲缘性,即蛛网图上表现为明显的K、Zr、Hf、Ti的负异常(Hf/Hf*=0.74~0.77, Ti/Ti*=0.70~0.74),同时具有高的Zr/Hf比值(48.5~50.1),表明其地幔源区含有碳酸盐组分。建德玄武岩具有亏损的Sr-Nd-Hf同位素组成(87Sr/86Sr=0.7032~0.7034, εNd=5.85~5.95, εHf=7.78~8.56)和较高的206Pb/204Pb(18.491~18.554)、207Pb/204Pb(15.488~15.518)和208Pb/204Pb(38.387~38.523)比值。相比浙江中部和东部玄武岩,浙江西部玄武岩及建德玄武岩具有更高的碱含量、不相容微量元素含量、La/Yb比值和更明显的K、Zr、Hf、Ti负异常,表明浙江西部玄武岩是碳酸盐化地幔低程度熔融的产物。浙江新生代玄武岩的Ti/Ti*与Ba/Th、K/La比值之间较好的正相关性表明其源区存在两端元混合的特征。其中,以浙江西部玄武岩(包括建德玄武岩)为代表的地幔端元是由含碳酸盐的再循环洋壳熔融产生的碳酸盐熔体与亏损地幔反应形成的碳酸盐化地幔,以较低的Ba/Th、K/La和Ti/Ti*比值为特征。以浙江东部玄武岩为代表的地幔端元具有和碳酸盐化地幔端元互补的、较高的Ba/Th、K/La和Ti/Ti*比值,代表熔融残余的再循环洋壳。因此,浙江新生代玄武岩的地幔源区是不均一的,这种不均一性主要是由具有成因联系的两种端元组分所控制。  相似文献   

12.
The volcanic stage of the 2.7-Ga Abitibi greenstone belt, Canada, is dominated by bimodal arc magma series and komatiite-basalt sequences. The latter represents an aerially extensive oceanic plateau erupted from an anomalously hot super-plume. Komatiites define a linear array of Nb/Th vs. Nb/U, extending from Nb/Th=8-20, and Nb/U=26-58, whereas basalts plot on a separate, but overlapping, field extending to higher Th/U but lower Nb/Th values. Inter-element ratios of Th, U, Nb, and LREE of komatiites and basalts plot with Phanerozoic and modern ocean plateau basalts. Th, U, Nb, and LREE are fractionated in subduction zones into low Nb/Th, Nb/U, and Nb/LREE arc crust, and complementary high Nb/Th, Nb/U, and Nb/LREE residual slab. Accordingly, the Archean komatiite-basalt association may be explained by a plume that likely originated from the core-mantle boundary with komatiites erupted from a hot axis containing recycled oceanic crust, and basalts erupted from the plume annulus that entrained upper mantle containing recycled oceanic and continental crust. High Nb/Th and Nb/U of plume-related volcanic sequences documented in Abitibi, Yilgarn, and Baltic Archean greenstone belts suggest that the extraction and recycling of continental crust may have occurred early in the Archean.  相似文献   

13.
The opening of the North Atlantic Ocean began in the Late Paleocene and was accompanied by the eruption of submarine and subaerial basalts, which built up submarine plateau and ridges, islands, and volcanoes. The volcanic rocks are dominated by low-K tholeiitic basalts, which associate with almost coeval alkaline rocks (subalkali and alkali basalts and their derivatives, basanites, nephelinites, and others). The oldest alkaline volcanics (58–56 Ma) were formed during the opening of the oceanic rift at its shoulders, in northeastern Greenland and the western Norwegian shelf. It was recently found that 55–53 Ma-old alkali-ultramafic rocks are much more widespread at the eastern coast of Greenland than it was previously thought. The younger occurrences of alkali volcanism with pulses at 30, 10, 5 Ma, and up to the present day were formed on the young oceanic plate and newly formed islands and seamounts. To compare the oceanic and continental volcanism of this region, oceanic volcanics dredged during Cruise 10 of the R/V Akademik Kurchatov were reanalyzed using modern analytical methods (XRF and ICP-MS). This study showed that the oceanic and continental alkaline rocks are significantly different in petrochemical and geochemical characteristics, which is caused by differences in magma generation depths and compositions of the mantle source material. The primary continental alkaline magmas were initially more enriched in incompatible trace elements than oceanic ones. During the shallow-level differentiation of oceanic magmas, trace elements and alkalis could be accumulated in residual melts, but these processes occurred on a minor scale and depended on tectonic conditions.  相似文献   

14.
The ∼133 Ma volcanic rocks of Sangxiu Formation are distributed in the eastern part of the central Tethyan Himalaya and belong paleogeographically to the northeastern margin of Greater India. These volcanic rocks include alkaline basalts and felsic volcanic rocks. Major and trace element abundances and whole-rock isotopic data for selected samples of these volcanic rocks are used to infer their petrogenesis. Geochemically, the Sangxiu basalts are closely similar to the Emeishan high-Ti basalts. Major and trace element data and Sr–Nd isotopic compositions suggest that the Sangxiu basalts may have been derived from an OIB-type mantle source, with discernable contributions from subcontinental lithospheric mantle (SCLM). The basaltic magmas may have formed as a result of the infiltration of plume-derived melts into the base of the lithosphere in a continental rift setting. The Sangxiu felsic volcanic rocks share most of the geochemical features of A-type granite, and have Sr–Nd isotopic compositions which differ considerably from the Sangxiu basalts, suggesting that they originated from the anatexis of ensialic continental crust. The Sangxiu volcanic rocks may be considered as the consequence of an interaction between the Kerguelen hotspot and the lithosphere of the northeastern margin of Greater India at ∼133 Ma, and may represent the initial stage of the separation of Greater India from southwestern Australia.  相似文献   

15.
The Rhön area as part of the Central European Volcanic Province (CEVP) hosts an unusual suite of Tertiary 24-Ma old hornblende-bearing alkaline basalts that provide insights into melting and fractionation processes within the lithospheric mantle. These chemically primitive to slightly evolved and isotopically (Sr, Nd, Pb) depleted basalts have slightly lower Hf isotopic compositions than respective other CEVP basalts and Os isotope compositions more radiogenic than commonly observed for continental intraplate alkaline basalts. These highly radiogenic initial 187Os/188Os ratios (0.268–0.892) together with their respective Sr–Nd–Pb isotopic compositions are unlikely to result from crustal contamination alone, although a lack of Os data for lower crustal rocks from the area and limited data for CEVP basalts or mantle xenoliths preclude a detailed evaluation. Similarly, melting of the same metasomatized subcontinental lithospheric mantle as inferred for other CEVP basalts alone is also unlikely, based on only moderately radiogenic Os isotope compositions obtained for upper mantle xenoliths from elsewhere in the province. Another explanation for the combined Nd, Sr and Os isotope data is that the lavas gained their highly radiogenic Os isotope composition through a mantle “hybridization”, metasomatism process. This model involves a mafic lithospheric component, such as an intrusion of a sublithospheric primary alkaline melt or a melt derived from subducted oceanic material, sometime in the past into the lithospheric mantle where it metasomatized the ambient mantle. Later at 24 Ma, thermal perturbations during rifting forced the isotopically evolved parts of the mantle together with the peridotitic ambient mantle to melt. This yielded a package of melts with highly correlated Re/Os ratios and radiogenic Os isotope compositions. Subsequent movement through the crust may have further altered the Os isotope composition although this effect is probably minor for the majority of the samples based on radiogenic Nd and unradiogenic Sr isotope composition of the lavas. If the radiogenic Os isotope composition can be explained by a mantle-hybridization and metasomatism model, the isotopic compositions of the hornblende basalts can be satisfied by ca. 5–25% addition of the mafic lithospheric component to an asthenospheric alkaline magma. Although a lack of isotope data for all required endmembers make this model somewhat speculative, the results show that the Re–Os isotope system in continental basalts is able to distinguish between crustal contamination and derivation of continental alkaline lavas from isotopically evolved peridotitic lithosphere that was contaminated by mafic material in the past and later remelted during rifting. The Hf isotopic compositions are slightly less radiogenic than in other alkaline basalts from the province and indicate the derivation of the lavas from low Lu–Hf parts of the lithospheric mantle. The new Os and Hf isotope data constrain a new light of the nature of such metasomatizing agents, at least for these particular rocks, which represent within the particular volcanic complex the first product of the volcanism.  相似文献   

16.
The extended Saryarka and Shyngyz-North Tien Shan volcanic belts that underwent secondary deformation are traced in the Caledonides of Kazakhstan and the North Tien Shan. These belts are composed of igneous rocks pertaining to Early Paleozoic island-arc systems of various types and the conjugated basins with oceanic crust. The Saryarka volcanic belt has a complex fold-nappe structure formed in the middle Arenigian-middle Llanvirnian as a result of the tectonic juxtaposition of Early-Middle Cambrian and Late Cambrian-Early Ordovician complexes of ensimatic island arcs and basins with oceanic crust. The Shyngyz-North Tien Shan volcanic belt is characterized by a rather simple fold structure and consists of Middle-Late Ordovician volcanic and plutonic associations of ensialic island arcs developing on heterogeneous basement, which is composed of complexes belonging to the Saryarka belt and Precambrian sialic massifs. The structure and isotopic composition of the Paleozoic igneous complexes provide evidence for the heterogeneous structure of the continental crust in various segments of the Kazakh Caledonides. The upper crust of the Shyngyz segment consists of Early Paleozoic island-arc complexes and basins with oceanic crust related to the Saryarka and Shyngyz-North Tien Shan volcanic belts in combination with Middle and Late Paleozoic continental igneous rocks. The deep crustal units of this segment are dominated by mafic rocks of Early Paleozoic suprasubduction complexes. The upper continental crust of the Stepnyak segment is composed of Middle-Late Ordovician island-arc complexes of the Shyngyz-North Tien Shan volcanic belt and Early Ordovician rift-related volcanics. The middle crustal units are composed of Riphean, Paleoproterozoic, and probably Archean sialic rocks, whereas the lower crustal units are composed of Neoproterozoic mafic rocks.  相似文献   

17.
本文对中国东南沿海不含幔源包体的中生代玄武岩和含幔源包体的新生代玄武岩进行了微量元素和Nd-Sr-Pb同位素对比研究。中生代玄武岩呈Ta、Nb和Hf负异常,低Ce/Pb、Nb/U比值和高La/Nb比值,与岛弧火山岩和陆壳岩石的微量元素特征相类似,说明在岩浆生成和上升过程中,幔源组分受到了陆壳组分的混染。新生代玄武岩呈Ta、Nb正异常和Pb负异常,高Ce/Pb、Nb/U比值和低La/Nb比值,与海岛玄武岩(OIB)相类似,Nd-Sr同位素成分与夏威夷玄武岩类似,因而它们未受明显的陆壳混染。143Nd/144Nd与206Pb/204Pb之间的负相关关系和87Sr/86Sr与206Pb/204Pb之间的正相关关系说明本区新生代玄武岩起源于中等亏损程度的软流圈地幔,并与EMII富集地幔组分发生了混合。  相似文献   

18.
山东地区新生代玄武岩主要分布在郯庐断裂带及其以东地区,在鲁西地区分布较少。本文报道了鲁西地区周村玄武岩的全岩主、微量元素组成、橄榄石斑晶及其熔体包裹体Pb同位素组成。结果表明,周村玄武岩为弱碱性玄武岩,其主量元素具有较高SiO_2和Al_2O_3,较低碱(Na_2O+K_2O)、CaO/Al_2O_3、Fe_2O_3~T(Fe_2O_3~T=Fe O/0.8998+Fe_2O_3)的特征;微量元素在原始地幔标准化蛛网图上与EMI洋岛玄武岩(OIB)相似,表现为明显的Ba、K和Sr正异常,Th和Pb负异常,无Nb、Ta和Ti异常;熔体包裹体~(207)Pb/~(206)Pb和~(208)Pb/~(206)Pb分别为0.894~0.921和2.166~2.213,略高于EMI-OIB。这些特征和鲁西地区无棣大山玄武岩有明显区别,但与山东其它地区的弱碱性-拉斑玄武岩相似。周村玄武岩的橄榄石斑晶Ni、Fe/Mn和Ca分别为1403~2611μg/g,70~93和824~2003μg/g。与橄榄岩熔体结晶的橄榄石成分相比,给定橄榄石Fo值,周村玄武岩橄榄石斑晶具有高Ni和Fe/Mn比值,低Ca的特征。结合全岩低CaO和高FeO/MnO比值,橄榄石成分指示周村玄武岩的源区岩性为辉石岩,其形成需要高比例的来自再循环地壳的英安质熔体交代地幔橄榄岩。高比例的英安质熔体和周村玄武岩的微量元素特征,进一步说明该再循环地壳为含辉长岩洋壳。本文的研究结果暗示山东地区弱碱性-拉斑玄武岩的源区辉石岩,主要与再循环洋壳有关。  相似文献   

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