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1.
西天山阿吾拉勒埃达克质岩石成因:Nd和Sr同位素组成的限制   总被引:28,自引:11,他引:28  
西天山阿吾拉勒二叠纪钠质英安岩和钠长斑岩具有与埃达克岩一致的高Sr,低Y、Yb和Eu正异常等独特岩石地球化学特征。系统的Nd和Sr同位素组成研究表明,其(^143Nd/^144Nd)i为0.512384-0.512470,εNd(t)为正值(+1.57-+3.26);(^87Sr/^86Sr)i为0.0751-0.7054,与本区同时代幔源玄武岩的Nd和Sr同位素组成特征相似,但与俯冲洋壳部分熔融成因埃达克岩的Nd和Sr同位素组成有显著区别。结合这些埃达克质岩石形成二叠纪后碰撞阶段构造背景,认为本区埃达克质岩浆最有可能由新底侵的玄武质下地壳在角闪岩相向榴辉岩相过渡或榴辉岩相的条件下部分熔融形成,是西天山晚古生代后碰撞阶段地幔玄武岩浆底侵作用和地壳垂向增生的重要岩石标志。  相似文献   

2.
江西会昌盆地晚白垩世喷发的站塘安山岩,其形成与晚中生代岩石圈伸展和玄武质岩浆的底侵作用有关。这些岩石是高Na(6.59%~8.46%Na2O)、高Al的奥长花岗质岩石,具有与埃达克岩相似的高Sr和Ba、低Y和HREE、高Sr/Y和La/Yb比等特点。与埃达克岩相比,它们的Na2O较高而CaO较低,其εNd(t)值-2.3~-3.8和87Sr/86Sr初始比值0.707~0.708也与具大洋同位素组成特征的埃达克岩有明显区别。这些化学的和同位素特征,表明它们并非消减板片部分熔融的产物。站塘埃达克质岩浆可能源自底侵玄武质下地壳,其异常的高Na和低Ca特点反映其源岩成分的特殊性。因其成分与由实验产生的富碱玄武岩部分熔融体组成相当,因此,我们认为站塘高钠安山质岩浆可能是富碱玄武质岩石部分熔融的产物。  相似文献   

3.
续海金  马昌前 《地学前缘》2003,10(4):417-427
大量变玄武岩脱水熔融实验表明,制约埃达克岩形成的主要因素是源岩、水和地壳热结构(p-T轨迹)。变玄武岩低到中等程度(10%~40%)的部分熔融过程中,含水矿物(主要是角闪石)脱水反应产生埃达克岩熔体,残余相组合为石榴石+单斜辉石±斜方辉石±角闪石(没有斜长石)。在俯冲带,当压力为1.6~2.2 GPa(约70~90 km)和温度为800~1150℃时,具有高的剪切热速率和非常年轻的(<25 Ma)、热的俯冲大洋岩石圈就会发生脱水熔融形成埃达克熔体。在增厚地壳内,具有高的热状态的底侵玄武质下地壳在压力≥0.8 GPa(>35 km)和温度介于800~1100℃之间发生部分熔融形成埃达克质熔体。然而,中国东部晚中生代富钾高Sr/Y比值花岗岩类,可能形成于加厚地壳开始减薄及地壳从挤压向拉张伸展转换的环境下,所对应的岩浆,与下地壳底侵的碱性玄武岩和/或拉斑玄武岩在压力1.0~1.5 GPa和温度850~1080℃之间发生部分熔融有关,熔融的残余相为辉石岩类,岩浆在上升侵位过程中还受到了地壳AFC的影响。中国东部中生代岩石圈从加厚转变为减薄的过程,就可能与玄武质岩浆的底侵作用及随后含石榴石辉石岩类残余体的拆沉作用有关。  相似文献   

4.
深部过程对埃达克质岩石成分的制约   总被引:45,自引:18,他引:27  
埃达克岩、太古宙TTG和中国东部广泛出露的燕山期埃达克质中酸性火山-侵入岩在岩石地球化学特征方面有许多相似之处,也有一些显著的差异。与典型的埃达克岩相比,太古宙TTG具有相对高Si和低Mg^#的特点:中国东部埃达克质岩石多表现为低Mg^#贫A120,和高K特征。埃达克岩相对高Mg^#是由于俯冲洋壳部分熔融产生的原生埃达克岩熔体受到了地幔橄榄岩的混染,太古宙TTG多无明显的地幔混染印记,反映其可能主要形成于下地壳底侵玄武岩的部分熔融,而与洋壳俯冲没有直接联系。中国东部埃达克质岩石相对低Mg^#畜K,暗示其可能是下地壳底侵玄武岩部分熔融或拆沉-熔融的产物,而幔源富钾熔体的混合、壳内分异和混染过程都有可能影响其成分特征中国东部部分地区的高镁埃达克质岩石可能揭示了下地壳拆沉一熔融和地幔混染过程。钾质埃达克岩的源区可能是被小比例软流圈熔体交代富集的底侵玄武岩层(增厚的下地壳)。结合燕山期岩浆作用和构造转换的特点来看,埃达克岩的形成是中国东部晚中生代岩石圈强烈减薄和大规模岩浆作用产物的一部分,这一重大构造体制的转换可能与地幔柱上涌对岩石圈的侵蚀和导致的伸展作用有关。  相似文献   

5.
中国斑岩铜矿与埃达克(质)岩关系探讨   总被引:16,自引:2,他引:14  
对比研究了中国26个主要斑岩铜矿的地球化学特征和年代学,结果表明其中25个矿床与埃达克(质)岩有成因联系,且多数与玄武质下地壳熔融形成的埃达克岩(C型)有关,现有数据表明土屋-延东和普朗斑岩铜矿可能与俯冲板片熔融形成的埃达克岩(O型)有关。容矿斑岩的初始锶值为0.7034~0.7090,均大于洋中脊玄武岩和亏损地幔的初始锶值,多数与EMI的初始锶值接近,推测其源区或源岩主要为玄武质下地壳,少数为洋中脊玄武岩,并受到中、上地壳不同程度的混染,这与两类埃达克岩的源区基本一致。虽然埃达克质岩浆具有形成斑岩铜矿的巨大潜力,但并非所有埃达克岩都能成矿,不同岩体需具体分析。  相似文献   

6.
新疆天山北部地区存在有石炭纪的埃达克岩-高镁安山岩-富Nb玄武质岩组合,并且其中许多岩石与铜(金)矿床伴生(如达巴特、阿希、土屋-延东、赤湖,等等)。埃达克岩富钠、高Sr但亏损Y与Yb,无明显Eu-正Eu异常以及正Sr异常与Nb、Ti亏损。高镁安山(闪长)岩是本次研究首次报道的,这些岩石无明显Eu-正Eu异常以及Nb、Ti亏损,普遍具有高的MgO和Cr、Ni含量,其中阿希金矿区一些样品类似于日本西南新生代Setouchi弧火山岩带中的赞岐岩类。富Nb玄武质岩富钠贫钾,具有微弱负.正Ba、Nb和Ti异常以及高的Nb/La比值,不同于大多数正常岛弧玄武岩。天山北部地区石炭纪埃达克岩具有高的8Nd(t)(+3.4-+9.0)和低的(^87Sr/^86Sr)i(0.7032—0.7043)。富Nb玄武质岩具有变化的εNd(t)(+3.6-+11.6)和(^87Sr/^86Sr);(0.7007—0.7067)。我们的研究表明,天山北部地区石炭纪埃达克岩-高镁安山岩-富Nb玄武质岩组合可能是“埃达克岩交代的岛弧岩浆岩系列”。埃达克岩最有可能由石炭纪北天山洋的年轻洋壳在俯冲过程中熔融形成。另外,俯冲板片产生的熔体以及所释放的少量流体在上升过程中可能交代地幔楔橄榄岩或与其发生反应:一方面,触发地幔楔橄榄岩发生熔融形成富Nb岛弧玄武质岩;另一方面,地幔组分迅速进入到板片熔体中,导致其地幔组分增加,乃至形成高镁安山岩。因此,天山北部地区石炭纪埃达克岩-高镁安山岩-富Nb玄武质岩组合表明:(1)天山北部地区石炭纪可能为岛弧环境而非裂谷环境;(2)天山地区石炭纪的地壳生长可能以侧向增生为主;(3)除了亏损地幔之外,俯冲洋壳的熔融可能也在地壳的生长中发挥了重要的作用;(4)俯冲板片产生的埃达克质岩浆具有高的氧逸度,而其与地幔楔橄榄岩的强烈相互作用将导致地幔中的金属硫化物分解,成矿金属元素进入到岩浆中。这可能是新疆北部铜金矿化与一些埃达克岩、高镁安山(闪长)岩或富Nb岛弧玄武质岩密切共生的基本原因。  相似文献   

7.
新疆北部的两类埃达克岩   总被引:27,自引:32,他引:27  
新疆北部有两类埃达克岩,一是俯冲型,形成于早、中泥盆世-早石炭世晚期(≥320Ma),包括了埃达克岩、富Nb玄武岩、高(富)Mg安山岩。第二类埃达克岩是底侵型,形成于中晚二叠世(≤280Ma)。第一类埃达克岩分布于西天山的阿拉套山、博罗科努山,中天山的骆驼沟和巴仑台,东天山的土屋-延东,阿尔泰山陆缘南富蕴-青河南,准噶尔盆地中部陆梁,克拉玛依等地。在阿尔泰陆缘南,苦橄岩与埃达克岩、富Nb玄武岩和高(富)Mg安山岩密切组合。第二类埃达克岩分布于西天山的阿吾拉勒山和东天山的三岔口,未发现富Nb玄武岩和高(富)Mg安山岩组合。俯冲型埃达克岩、富Nb玄武岩和高(富)Mg安山岩的高Sr低Y、Yb、富Eu及高εNd(t)(+1.5~+10.0),低(^87Sr/^86Sr);(〈0.7070)的同位素组成,均一致表明其源区物质为洋壳板片,部分为地幔楔、弧前棱柱,产于岛弧环境;而底侵型埃达克岩源于底侵的幔源玄武质物质,形成于后造山环境。两类埃达克岩及其组合岩石的地质及地球化学特点,展示了中亚型造山在本区晚古生代陆壳增生作用的多样性:在增生构造过程上,有洋壳板片的斜俯冲、俯冲板片的撕裂、板片窗、俯冲剥蚀及玄武质物质的底侵作用等;在增生方向上,有洋壳板片的侧向斜俯冲,也有玄武质物质垂向上底侵于壳-幔边界;在增生物质上,有洋壳板片、地幔楔、受地幔楔混染的洋壳板片熔体,弧前棱柱、地幔楔受板片熔体交代后形成熔体及底侵的幔源玄武质物质。与两类埃达克岩有关,尤其是第一类埃达克岩及其组合岩石,在本区广泛发育了Cu、Au成矿作用,其中部分达到大型-超大型规模。因此.对埃达克岩及其组合岩石的识别及相关Cu、Au成矿作用的找矿勘探应予以足够重视。  相似文献   

8.
房山侵入岩体高Sr低Y地球化学特征及其成因   总被引:5,自引:2,他引:5  
房山侵入岩体及其微粒包体以高w(Sr)(400×10-6~1 126×10-6)、w(Sr)/w(Y)(一般≥40)、w(La)N/w(Yb)N(≥33),低w(Y)和w(Yb),Sr正异常,Eu弱负异常-正异常为特征.与典型埃达克岩的地球化学特征相似,Sr-Nd同位素特征与汉诺坝底侵玄武岩形成的下地壳麻粒岩包体以及华北克拉通中生代岩浆岩一致.研究表明:①房山侵入岩体及其微粒包体起源于增厚下地壳的部分熔融;②增厚的下地壳底部是具有Ⅰ型富集地幔特征的底侵玄武岩,是中生代华北岩石圈减薄与置换之后的新生下地壳的一部分.  相似文献   

9.
俯冲带复杂的壳幔相互作用   总被引:15,自引:0,他引:15  
俯冲带除俯冲板片脱水形成的富大离子亲石元素流体、交代地幔楔形成的岛弧钙碱性玄武岩安山岩-英安岩-流纹岩及相应侵入岩组合外,还存在由俯冲扳片熔融形成的埃达克质熔体交代地慢楔形成的埃达克岩-富铌玄武岩-富镁安山岩组合,从而构成了俯冲带的流体交代与熔体交代两大类壳慢相互作用体系及相应的岩石组合。熔体交代作用的显著特点是Mg、高场强元素Nb、Ti、P等含量增加,Nd/Sr值增高,而Si、K、Na及La/Yb降低。洋壳板片或洋脊俯冲、玄武质岩浆底侵使地壳增厚,或板片断离、撕裂等作用均可产生埃达克质熔体并随之产生熔体交代作用。流体和熔体与地幔橄揽岩的相互作用构成了俯冲带复杂的地球化学体系。  相似文献   

10.
作为贱金属主要来源的斑岩铜矿床,大多数产出于大陆边缘和岛弧环境。普遍认为,被俯冲洋壳板片释放流体交代的地幔楔部分熔融形成的玄武质岩浆,在相对封闭系统结晶分异和/或同化混染形成含铜长英质岩浆。然而,我们的研究表明,在西藏碰撞造山带,发育一条具有巨大成矿潜力的中新世斑岩铜矿带,含铜斑岩具有埃达克岩地球化学特性,来源于被加厚的藏南镁铁质下地壳,但俯冲的新特提斯洋壳板片部分熔融也不能完全被排除。斑岩铜矿形成于陆-陆后碰撞伸展时期(13~18Ma),即青藏高原迅速抬升之后。横切碰撞造山带的南北向正断层系统,类似于岛弧环境下的横切弧的断层系统,成为埃达克质斑岩岩浆快速上升和就位的通道与场所,并使岩浆热液系统中大量的含矿流体充分地分离而成矿。  相似文献   

11.
《International Geology Review》2012,54(16):2083-2095
Early Eocene adakitic volcanic and granitoid rocks are widespread in the Eastern Pontides of NE Turkey, providing significant constraints for the early Cenozoic tectonomagmatic evolution of the region. These adakitic rock units exhibit relatively high Sr/Y and La/Yb ratios, but low Y and Yb values, similar to modern adakites generated by partial fusion of a subducted oceanic slab. They also have high K2O and low MgO contents, and show moderately enriched ISr and low ?Nd(t) isotopic signatures. Our trace element modelling suggests that these adakitic magmas were generated from partial melting at low pressures of a garnet-bearing amphibolitic source in the continental lower crust. This lower crustal melting resulted from slab break off-induced asthenospheric upwelling and related magmatic underplating beneath the Eastern Pontides. We interpret this melting event and the adakitic magmatic activity as a syn- to post-collisional process involving early Cenozoic collision of the Pontide and Anatolide–Tauride continental blocks. The geochemical and tectonic constraints presented here indicate that early Eocene adakitic magmatism in the Eastern Pontides did not result from partial fusion of a subducted oceanic slab, but instead represent continental-type adakite formation.  相似文献   

12.
一种新的火成岩——埃达克岩的研究综述   总被引:73,自引:0,他引:73  
埃达克岩 (adakite)是一种中酸性富钠火成岩 (安山岩、英安岩、钠质流纹岩及相应的侵入岩 ) ,其突出的地球化学特征就是 Si O2 ≥ 56% ,Al2 O3≥ 1 5% ,亏损重稀土元素 (HREE)与 Y(如 Yb≤ 1 .9× 1 0 -6,Y≤ 1 8× 1 0 -6) ,高 Sr(大多数 >40 0× 1 0 -6、La/Yb(≥ 1 0 .0 )与 Sr/Y(>2 0 .0~ 40 .0 ) ,一般具有正铕异常 (少数具有极弱负铕异常 )。埃达克岩存在两种成因类型 :一种由俯冲的年轻 (≤2 5~ 30 Ma)大洋板片熔融形成 ( 类埃达克岩 ) ;另一种由增厚地壳环境中的玄武质下地壳熔融形成 ( 类埃达克岩 )。对两类埃达克岩的特征、形成机制、成矿作用、动力学意义以及我国埃达克岩的研究现状进行了评述 ,并指出了埃达克岩研究中所存在的问题。  相似文献   

13.
李孟江  王仁民  张莉 《地质通报》2012,31(5):686-695
尚义玄武岩为尚义-赤城新太古代洋壳残片的组成端元,地球化学性质指示其源于富集地幔。根据稀土元素分配特征,尚义玄武岩可被分为TH1型(稀土元素平坦型)和TH2型(稀土元素分异型)。尚义TTG属于中钾偏铝质钙碱性岩类,其Al2O3含量与低铝型TTG相近,同时微量元素Rb、Sr、Y和REE表现出俯冲板片熔融成因的埃达克岩的性质。根据主量元素SiO2、K2O、Na2O、Al2O3和微量元素Rb、Sr、Y、REE等指标判别和微量元素平衡熔融模式计算得出,尚义TTG形成压力遍及低压—高压范围,是洋壳玄武岩(TH1型)在深度压力变化的条件下部分熔融形成的,其中的低铝型TTG形成于低压熔融。  相似文献   

14.
埃达克岩是一套钙碱系列岩浆岩,其主要地球化学特征为SiO2 ≥ 56%,Al2O3 ≥ 15%,MgO通常小于3%,低重稀土元素和Y(Y ≤ 18×10-6,Yb ≤ 1.9×10-6),高Sr(多数大于400×10-6),无Eu异常或有轻微的负Eu异常,其成因主要有两类,一种为由俯冲板片的熔融形成,另一种由底侵玄武质下地壳熔融形成,埃达克岩具有重要的成矿意义。  相似文献   

15.
南祁连地区化石沟花岗闪长岩位于化石沟铜矿附近,东距阿克塞县城约120 km。花岗闪长岩LA-ICP-MS锆石U-Pb年龄为261.1±3.8 Ma,形成于中二叠世晚期。岩石属钙碱性系列,具有埃达克岩的地球化学特征,SiO_2含量在68.35%~69.14%之间,高铝(Al_2O_3=15.83%~16.06%)、Sr(367×10~(–6)~381×10~(–6))、低Y(15.12×10~(–6)~19×10~(–6))和Yb(1.34×10~(–6)~1.85×10~(–6)),富Na贫K(Na_2O=4.3%~4.47%,K_2O=2.22%~2.46%,Na_2O/K2O=1.75~2.01),MgO介于0.79%~0.89%之间,Mg~#为0.35左右。岩石富集强不相容元素Ba、Rb、Sr、Th、U和LREE,强烈亏损高场强元素Nb、Ta、Ti以及HREE,(La/Yb)_N=8.3~11.77,具轻微的Eu负异常(δEu=0.76~0.86),高Rb/Sr(≈0.2)值。化石沟花岗闪长岩的(~(87)Sr/~(86)Sr)i、ε_(Nd)(t)、(~(176)Hf/~(177)Hf)_i、δ~(18)O_(V-SMOW)分别为0.7065~0.7068、–1.45~–0.78、0.282765、12.1‰~12.5‰。综合以上特征,认为化石沟花岗闪长岩源于新生地壳物质在玄武岩浆底侵作用下发生的部分熔融,在岩浆作用过程中可能发生过轻微的分离结晶作用,形成于板内背景,处于造山挤压向后造山伸展的构造体制转变阶段。花岗闪长岩的Nd和Hf模式年龄(分别为1.1 Ga和0.9 Ga)指示玄武质岩浆上侵的时间应为中元古代晚期。化石沟埃达克质岩显示了良好的斑岩型Cu、Au成矿潜力,寻找与埃达克岩有关的斑岩型Cu、Au矿应是下一步找矿的重点方向。  相似文献   

16.
俯冲陆壳部分熔融形成埃达克质岩浆   总被引:4,自引:0,他引:4  
在岛弧背景,埃达克质岩浆形成于俯冲洋壳板片的部分熔融已得到共识,但在大陆碰撞背景,埃达克质岩浆是否形成于俯冲陆壳的部分熔融尚未有研究报导。对祁连山东南部关山花岗岩(229 Ma)的地球化学和岩石成因研究提供了俯冲陆壳部分熔融形成埃达克质岩浆的一个实例。关山花岗岩以高K(K2O=4.12%~5.16%,K2O/Na2O=0.97~1.64)、高Sr/Y比值(13.6~84.1)、低Y (6.8×10-6 ~15.7×10-6 )和低HREE(eg. Yb=0.62×10-6~1.31×10-6)为特征,并具有强分异的稀土元素组成模式[(La/Yb)N=17.5~41.6]和演化的Sr-Nd同位素组成[初始87Sr/86Sr=0.70587~0.70714, εNd(t)=-10.9~-5.16, tDM=1.10~1.49 Ga]。这些地球化学特征表明关山花岗岩属于大陆型(C型)埃达克质岩石,而明显不同于俯冲洋壳板片或底侵玄武质下地壳部分熔融形成的埃达克岩。关山花岗岩Pb-Sr-Nd同位素组成与商丹断裂北侧的祁连山前寒武纪基底岩石、早古生代火山岩和花岗岩类存在显著差异,但类似于商丹断裂南侧秦岭早中生代花岗岩类的Pb-Sr-Nd同位素组成,由此认为具有埃达克质的关山花岗岩的岩浆来自于南部俯冲陆壳物质的部分熔融,并提出了大陆碰撞背景中埃达克质岩浆产生的一个新的地质模型。  相似文献   

17.
We studied the geochemical characteristics of three types of Mesozoic igneous rocks from the Luzong volcanic basin: basaltic trachyandesite at Shuangmiao, pyroxene monzonite at Bajiatan, and quartz-syenite (A-type granite) at Huangmeijian. Based on analyses of whole-rock major elements, all investigated rocks are enriched in K, Na, Ti, Al, but depleted in Ca, representing a shoshonitic series. Trace element analyses show that these rocks are characterized by enrichments of large-ion lithophile elements and high field strength elements. Positive Nb and Ta anomalies in the chondrite-normalized spider diagram indicate that the shoshonitic volcanic rocks share similar features with Nb-enriched basalts, which are different from normal island-arc volcanical rocks (they are typically strongly depleted in Nb and Ta). Bulk-rock chemical compositions and Sr–Nd isotopes indicate that the three types of igneous rocks are geochemically comagmatic, suggesting that the melts were derived from an enriched mantle reservoir. We postulate an extensional tectonic setting for the formation of Luzong volcanic basin, possibly related to subduction of a palaeo-Pacific plate beneath the east Chinese continent during the Yanshanian period (Cretaceous). Therefore, the petrogenetic features of those volcanic rocks as well as A-type granites in the Luzong basin indicate that the regional large-scale Fe–Cu–Au mineralization was associated with oceanic slab melting, but not delamination or recycling of the ancient lower continental crust, as previously proposed.  相似文献   

18.
The nature of the oceanic crust produced through rifting and oceanic spreading between North and South America during the Late Jurassic is a key element for the Caribbean plate tectonic model reconstruction. Located in the Cordillera Central of Hispaniola, the Loma La Monja volcano-plutonic assemblage (LMA) is composed of gabbros, dolerites, basalts, and oceanic sediments, as well as metamorphic equivalents, which represent a dismembered fragment of this proto-Caribbean oceanic crust. Petrologic and geochemical data show that the LMA have a relatively broad diversity in composition, which represent the crystallization products of a typical low-pressure tholeiitic fractionation of mid-ocean ridge basalts (MORB)-type parental magmas, ranging from N- to E-MORB. Three geochemical groups have been distinguished in the volcanic sequence: LREE-flat to slightly LREE-enriched basalts of groups II and III occur interlayered in the lower stratigraphic levels; and LREE-depleted basalts of group I in the upper levels. Mantle melt modeling suggests that group III magmas are consistent by mixing within a mantle melt column of low-degree (<1%) melts of a deep garnet lherzolite source and high-degree (>15%) melts of a shallow spinel source, and groups II and I magmas are explained with moderate to high (14–18%) and very high (>20%) fractional melting degrees of a shallower spinel mantle source, respectively. Thus, upward in the volcanic sequence of the LMA, the magmas represent progressively more extensive melting of shallower sources, in a plume-influenced spreading ridge of the proto-Caribbean oceanic crust. Nb/Y versus Zr/Y systematics combined with recent plate tectonic model reconstructions reveal that Caribbean Colombian oceanic plateau fragments in Hispaniola formed through melting of heterogeneous mantle source regions related with distinct plumes during at least from Aptian–Albian (>96 Ma) to Late Campanian.  相似文献   

19.
Adakites are commonly associated with porphyry Cu-Au ore deposits worldwide. Two groups of early Cretaceous adakites occur widely in central-eastern China but their association with mineralization contrasts sharply: adakites from the Lower Yangtze River Belt (LYRB) host one of the largest porphyry Cu-Au deposit belts in China, whereas those from the South Tan-Lu Fault (STLF), which is adjacent to the LYRB, are all ore-barren. These adakites, thus, provide a rare opportunity to explore the main factor that controls the genetic links between adakites and Cu-Au mineralization. Here we report new chronological, elemental and Sr-Nd-Pb isotopic data and present a comprehensive geochemical comparison for these two groups of adakites. At a given SiO2, the STLF adakites show lower Al2O3 and higher K2O, K2O/Na2O, MgO, Cr, Ni and Mg# than the LYRB adakites. These systematic differences may indicate a dry basaltic source for the STLF adakites and a water-enriched basaltic source for the LYRB adakites. The STLF adakites have high Sr/Y and (La/Yb)N, which are positively correlated, and low Sr/La and Ce/Pb, while the LYRB adakites show lower (La/Yb)N but higher Sr/Y, Sr/La and Ce/Pb than the STLF adakites. Furthermore, the LYRB adakites are characterized by highly radiogenic Pb isotopic compositions with 206Pb/204Pb(t) up to 18.8, which are clearly distinct from the STLF adakites with low radiogenic Pb (206Pb/204Pb(t) = 15.8-16.4). Although the high Mg# of the two groups of adakites suggest reaction with mantle peridotites during magma ascent, the geochemical comparisons indicate that the STLF adakites were derived from partial melting of the delaminated eclogitic lower continental crust, while the LYRB adakites were derived from partial melting of the seawater-altered oceanic crust that was being subducted towards the LYRB during the early Cretaceous. The petrogenetic contrasts between these two groups of high-Mg adakites, therefore, indicate that the large-scale Cu-Au mineralization is associated with oceanic slab melting, not delamination or recycling of the ancient lower continental crust, as previously proposed.  相似文献   

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