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1.
阜新萤石成矿区稀土元素地球化学特征及指示意义   总被引:1,自引:0,他引:1  
为了研究阜新萤石成矿机制,对其稀土元素地球化学特征进行了分析。阜新地区萤石矿赋存于早二叠世、晚三叠世和晚侏罗世花岗岩中。地球化学分析结果显示,所有萤石均具有弱的Ce负异常,其稀土配分模式存在3种类型:Eu明显亏损型、Eu弱亏损型和Eu富集型。萤石中稀土元素的含量并不随围岩中的稀土元素含量的增加而增加,晚期侵入的花岗岩富集轻稀土元素。从成矿早期到成矿晚期,萤石的稀土元素配分型式从Eu明显亏损型向富集型演化,稀土元素总量逐渐降低。赋存于早二叠世和晚三叠世花岗岩中萤石矿流体包裹体中SO42-含量及液相成分还原参数指标指示,成矿流体由还原条件向氧化条件转变,成矿物质主要来源于赋矿花岗岩。  相似文献   

2.
黔西南晴隆锑矿区萤石的稀土元素地球化学特征   总被引:9,自引:1,他引:9  
对与辉锑矿共生萤石的稀土元素地球化学特征研究表明,所有萤石均具有Ce负异常,其稀土配分模式存在3种类型:Eu弱亏损型、Eu正常型、Eu富集型。从成矿早期至晚期,萤石的稀土配分从Eu弱亏损型向富集型演化,稀土总量逐渐降低,并由中稀土富集向轻稀土富集演化。成矿流体可能主要属于盆地流体,具有十分低的稀土总量,在成矿作用过程中,成矿流体由早期的还原条件转化为晚期的氮化条件,由中稀土富集向轻稀土富集演化。  相似文献   

3.
安徽繁昌地区桃冲铁矿床地球化学特征及矿床成因研究   总被引:2,自引:0,他引:2  
安徽繁昌地区作为长江中下游Fe、Cu、Au成矿带中的重要矿集区,发育一系列以桃冲铁矿为代表的磁铁矿型铁矿床。对桃冲矿区分布的岩浆岩、围岩与赋矿矽卡岩的稀土元素地球化学特征对比,表明三者稀土含量及其配分模式存在差异,桃冲铁矿夕卡岩稀土总量较低,轻稀土富集重稀土亏损,呈右倾过渡型配分模式,具明显Eu正异常。通过对桃冲铁矿床内包裹体的岩相学、显微测温、激光拉曼光谱探针分析,桃冲铁矿体中发育有熔融包裹体、气液相包裹体、含子晶多相包裹体、纯液相包裹体4种类型。成矿流体具中高温、高盐度、富水特征,富含Na+、Ca2+、Mg2+、K+、Cl-、SO2-4离子。结合透岩浆流体成矿理论探讨成矿流体及演化,认为形成铁矿床的物质来源为深部富铁夕卡岩矿浆,侵位过程中受构造环境影响,因温压条件的迅速改变含矿流体与夕卡岩浆发生解耦作用,于构造薄弱部位贯入形成矿体。  相似文献   

4.
赣南地区萤石资源丰富, 坎田萤石矿位于赣南地区的兴国—宁都萤石成矿带上, 矿体赋存于晚侏罗世黑云母花岗岩内。本文结合研究区的区域地质背景, 对江西宁都坎田萤石矿床的萤石及围岩进行了稀土元素地球化学特征研究, 以探讨坎田萤石矿床的成矿流体来源和矿床成因。其研究结果表明, 萤石的稀土元素总量为34.11×10–6~78.12×10–6, 属于轻稀土富集型, 稀土元素配分曲线形态基本一致; 围岩的稀土元素总量为94.14×10–6~175.72×10–6, 其配分模式与萤石具有相似同步性, 且萤石与围岩具有相近的Sm/Nd比值, 均表明萤石的成矿流体来源与围岩密切相关。结合前人在赣南地区对萤石气液包裹体进行氢氧同位素特征的研究, 认为成矿流体主要来源于大气降水, 成矿物质Ca和F元素主要来自于大气降水对燕山早期的黑云母花岗岩的淋滤和萃取。通过研究区的地质背景、萤石的强烈负Eu异常特征以及Tb/Ca-Tb/La关系图, 认为研究区萤石矿属于还原环境下的中低温热液充填型萤石矿床。  相似文献   

5.
中国钼矿中辉钼矿的稀土元素地球化学及其应用   总被引:4,自引:0,他引:4       下载免费PDF全文
钼矿是中国比较特殊的一个矿种,是近年来找矿突破最大的矿种之一。辉钼矿作为最具工业意义的含钼矿物,广泛分布于各种内生钼矿床中。本文尝试性地对内生独立钼矿或共伴生钼矿矿床中的辉钼矿进行了ICP-MS稀土元素分析。结果表明,各矿床辉钼矿中稀土总量在10.99~3374μg/g,集中在10.99~600μg/g。时间上,中侏罗世—早白垩世辉钼矿稀土元素含量最高;空间上,北方矿床中辉钼矿的稀土总量较南方高;矿种组合上,独立钼矿、以钼为主的多金属矿中稀土总量要大于其他伴生钼矿矿床。辉钼矿稀土元素配分曲线具有多样性,不同矿集区内矿床成矿时代、矿床类型与矿种组合对稀土元素配分模式影响不明显。辉钼矿中明显富集轻稀土,具有强烈的Eu负异常(δEu=0.01~0.80)、Ce负异常(δCe=0.24~1.06,多数δCe值<1)和Sm正异常(δSm=1.29~79.42)。依据辉钼矿轻稀土富集程度、Sm和Eu等稀土元素异常特征,将辉钼矿稀土元素配分模式分为6类,反映了不同辉钼矿成因或成矿流体性质的差异性;依据LREE、HREE、δEu和δCe等特征,以及熔体/流体实验结果,推测成钼流体总体上是以富CO2、Cl-(个别还富含F-)和还原性气体成分的成矿流体。内生金属矿床中辉钼矿主要形成于还原性环境,但石英脉型矿床较斑岩型矿床形成条件明显氧化性增强。  相似文献   

6.
晴隆锑矿沙子岭火山岩型古油藏的发现,对晴隆锑矿床的成因研究乃至于金属矿和油气勘探均具有重要意义。本文分析了晴隆锑矿古油藏沥青的稀土元素地球化学特征,并将沥青与锑矿及围岩、区域烃源岩的稀土元素作对比分析,探讨古油藏与锑矿成矿关系。结果表明:古油藏中沥青稀土元素ΣREE低,轻重稀土分馏明显,Eu和Ce整体无明显异常,稀土配分属轻稀土富集右倾模式;沥青与锑矿及围岩稀土元素地球化学特征差异较大,二者在稀土质量分数、Ce异常以及配分模式均有明显差异,判定古油藏与锑矿成矿物质和成矿流体来源不同。结合流体包裹体和同位素测试等资料,通过对比沥青与区域烃源岩稀土元素特征,我们认为晴隆锑矿古油藏沥青与泥盆系泥质烃源岩有成因关系;古油藏在演化过程中提供了烃类气体(CH_4),使SO_4~(2-)还原出S~(2-)而参与成矿作用,形成辉锑矿。  相似文献   

7.
贵州锦丰(烂泥沟)金矿是滇黔桂“金三角“目前已探明的最大的卡林型金矿床.含砷黄铁矿是该矿床最主要的载金矿物,脉石英是最显著的热液蚀变作用产物.含砷黄铁矿、脉石英及其包裹体具有相同的稀土元素特征,表现为轻重稀土分馏明显(LREE/HREE:7.95~31.77,(La/Yb)N:8.97~40.49);轻稀土有一定的分异((La/Sm)n:3.20~5.29),曲线右倾程度大;重稀土分异不明显((Gd/Yb)n:1.41~3.35),曲线平坦;负铕异常明显(δEu 0.59~0.71);微弱的铈负异常(δCe 0.97~0.98).代表成矿流体特征的脉石英包裹体稀土配分型式及特征值与区域上不同时代的幔源基性-超基性岩差别较大,而与矿床围岩、矿石、含砷黄铁矿及其包裹体稀土配分型式及特征值十分相似,具上部地壳普通沉积岩的特点,反映成矿流体主要不是来源于地幔,而是以壳源为主.Eu负异常反映了偏酸性(富CO2)、还原性的成矿环境;微弱的Ce负异常表明成矿流体来源于以沉积水和热脱水为主的盆地流体.  相似文献   

8.
本文利用电感耦合等离子体质谱(ICP-MS)分析了湖南花垣地区铅锌矿床中闪锌矿、方铅矿、黄铁矿以及围岩灰岩中的稀土元素含量,并对成矿物质及成矿流体来源进行了探讨。测试结果表明:花垣地区铅锌矿床矿石硫化物的稀土总量较低,平均值为0.16×10-6,明显低于围岩灰岩的稀土元素总量平均值5.75×10-6。具有高的ΣLREE/ΣHREE比值,轻重稀土分馏明显,轻稀土富集,重稀土亏损,稀土配分曲线均为右倾型。三种矿石硫化物样品多表现出正Eu异常,弱正Ce异常的特点,围岩灰岩则存在中等程度的负Eu异常和负Ce异常。矿石硫化物的Y/Ho值主要介于11~23,低于围岩灰岩的Y/Ho值26~39。两者稀土元素组成具有较大的差异性,反映了矿石硫化物与赋矿围岩灰岩之间的非同源性,推断该区含矿层并不是成矿物质的主要来源,成矿物质应来源于古老基底地层和下伏地层牛蹄塘组,成矿流体来源为具有海水混合的还原性热液流体。  相似文献   

9.
本文采用ICP—MS测定了焦家、马塘、东季、红布等焦家式金矿床中黄铁矿、石英及其包裹体的稀土元素组成。结果表明:采用ICP—MS直接测定黄铁矿包裹体的稀土元素是可行的;包裹体爆裂丰度虽然对稀土总量有影响,但矿源稀土元素背景值的差异也是流体中稀土总量差别的主要原因之一。∑REE、δEu、δCe及LREE/HREE、(La/Yb)N、(Ce/Yb)N、(La/Lu)N都是有意义的稀土元素特征参数;焦家式金矿同一成矿阶段黄铁矿、石英及其包裹体的稀土元素特征相似,显示了它们的同源特征;不同成矿阶段黄铁矿、石英及其包裹体的稀土元素特征有差异,反映了其成矿流体特征的差异。  相似文献   

10.
方解石是湘黔汞矿带的主要脉石矿物。湘黔汞矿带各矿床方解石的稀土配分模式均为轻稀土富集的右倾型,中段的大硐啦、茶田方解石和围岩的稀土配分模式比较相似,只是稀土总量有差别;南段的万山方解石和围岩的稀土配分模式则不一致,围岩的稀土总量反而要高于方解石。南段的万山方解石稀土具有弱的负Eu、负Ce异常;而中段的大硐喇、茶田方解石具有负Eu、正Ce异常。其中,作为示踪流体过程重要参数的Y/Ho比值在湘黔汞矿带南段与中段的方解石中也有着较大的差别。方解石的C、O同位素特征揭示南段万山汞矿的形成与古油藏的有机质有关,而中段大硐喇、茶田汞矿的形成则与有机质无关。这都说明了南段与中段无论是成矿物理化学环境还是成矿热液流体的性质等都存在着较大差别。  相似文献   

11.
川西呷村黑矿型多金属矿床热液体系稀土元素组成特征   总被引:2,自引:1,他引:1  
本文首次测定了呷村黑矿矿石中流体包裹体的REE组成,计算了与含矿流纹岩系熔体平衡的岩浆热液REE含量。主成矿期流体具有轻稀土富集、Eu明显正异常的特点,但岩浆热液却具有明显的Eu负异常特征,结合热液体系氧同位素及稀土元素交换反应模拟,表明岩浆热液不是直接的成矿热液。蚀变围岩具显著的Eu正异常,其它稀土元素出现亏损。蚀变反应水/岩比值较大,蚀变岩中的REE组成反映了成矿热液REE的特点,且REE亏损  相似文献   

12.
川西呷村超大黑矿型矿床成矿流体烯土元素组成   总被引:20,自引:5,他引:15  
别风雷  李胜荣 《岩石学报》2000,16(4):575-580
本文用ICP-MS首次测定了呷村银多金属黑矿型矿床矿石流体包裹体中的稀土元素含量,研究表明,主成矿期流体稀土元素配分模式均为轻稀土富集,Eu具明显正异常,通过初步对比,本区主成矿期流体与东太平洋脊、大西洋脊等现代高温酸性地热系统热液具有相似的稀土模式,反映了它们物化条件的相似性;但前者∑PEE高于后者,且两者Eu/Eu^*值不同,经过分析,本区成矿流体Eu正异常主要为T、pH、fo2控制,另外,围  相似文献   

13.
新疆蒙库铁矿床稀土元素地球化学及对铁成矿作用的指示   总被引:16,自引:4,他引:16  
新疆富蕴县蒙库大型铁矿呈层状、似层状、透镜状赋存于下泥盆统康布铁堡组变质火山-沉积岩系中.矿体中发育矽卡岩,但矽卡岩并不产在侵入岩接触带上.绿帘石、石榴石和矿石的稀土配分模式具有相似性,均为轻稀土富集,正铕异常,基本上无铈异常,暗示它们之间存在成因联系.石榴石稀土配分模式呈折线型,具有明显的正铕异常,石榴石流体包裹体中熔融包裹体、熔流包裹体和气液包裹体共存,表明石榴石矽卡岩具有岩浆成因和热液成因的特征,形成于晶体 熔体 流体三相共存的岩浆-热液过渡阶段.矿床地质特征、矽卡岩矿物和矿石稀土特征表明蒙库铁矿为矽卡岩型矿床.  相似文献   

14.
相山铀矿田的成矿流体性质和来源存在争议,为进一步探讨相山铀矿田成矿流体的性质和来源,本文对相山铀矿田西部的居隆庵铀矿床和北部的沙洲铀矿床中的新鲜围岩、蚀变围岩及矿石的微量、稀土元素含量及其变化进行了研究。结果显示:在含较多热液成因萤石的居隆庵铀矿床中,从新鲜围岩到蚀变围岩到矿石,Zr、Hf含量先降低再升高;而在含少量热液萤石的沙洲铀矿床中,新鲜围岩、蚀变围岩和矿石的Zr、Hf含量基本一致。鉴于富F流体易汲取岩石中的Zr、Hf,因此,这两个矿床中不同类型样品Zr、Hf含量的不同变化趋势,可能与居隆庵铀矿床的成矿流体富F、而沙洲铀矿床的成矿流体相对贫F有关。这两个铀矿床中矿石的稀土配分曲线与其各自的新鲜及蚀变围岩的稀土配分曲线形态相似但又存在差异,说明每个矿床的新鲜围岩、蚀变围岩和矿石之间的稀土元素既具有继承性、又受到不同性质的流体的影响。居隆庵铀矿床中矿石显示Eu负异常,可能主要是继承了围岩的Eu负异常;沙洲铀矿床中矿石Eu显示弱负异常至弱正异常的特征,可能与围岩中斜长石因热液蚀变作用而释放出的Eu的进入流体有关。基于新鲜围岩、蚀变围岩及矿石的U和REE研究,推断居隆庵铀矿床成矿流体中U和REE均以F的络合物形式迁移;但沙洲铀矿床中铀矿石品位较低,可能是与流体中相对贫F有关。  相似文献   

15.
海底热液系统高温流体的稀土元素组成及其控制因素   总被引:33,自引:0,他引:33  
研究稀土元素在流体中的地球化学行为及其控制因素,对利用稀土示踪与流体有关的地球化学过程具有重要意义。海底高温流体稀土组成研究表明,不同背景、岩性热液系统喷口流体的稀土含量差别较大,与海水之间可达几个数量级,但配分模式却非常类似,即普遍具有LREE富集、高的正Eu异常特征。流体的稀土组成与岩石或矿物的蚀变程度、结构构造有关,同时受流体的温压、pH值、Eh值、络合介质种类等因素的影响,其配分模式是流体循环、迁移过程中络合、吸附、矿物沉淀等不同因素共同作用而再次调整的结果。正Eu异常作为高温流体的特征标志,可以用来示踪与高温流体有关的地球化学作用过程,同时Y/Ho比值、负Ce异常可以用来示踪与流体/海水混合有关的化学过程。  相似文献   

16.
Inductively coupled plasma-mass spectrometry (ICP-MS) has been used to determine rare earth element concentrations in aqueous solutions extracted from fluid inclusions. Quartz has been sampled from ores of three major types of polygenic gold hydrothermal systems of North-Eastern Russia: (1) gold-quartz-sulphide (Au-Q, Nezhdaninsk); (2) gold-antimony (Au-Sb, Sarylakh) and (3) intrusion-related gold-bismuth-siderite-polysulphide (Au-Bi-Sid, Arkachan) large deposits located in terrigenous rocks of the Verkhoyansk fold belt. The total concentration of REE in the fluid inclusions is not high (up to 52 ppm). The contribution of LREE dominates in REE balance (??LREE/??HREE=7.4?C112.1). The chondrite-normalized REE patterns of inclusion fluids for the Au-Q and Au-Bi-Sid deposits are characterized by LREE enrichment with a positive or negative Eu anomaly. REE patterns for the regenerated quartz from Au-Sb deposits are characterized by pronounced differentiation between light and heavy lanthanides in fluid inclusions. Significant total REE concentration decreasing (on 1?C2 order) from early to late stages of Nezhdaninsk and Arkachan deposits is revealed. The positive correlations of total REE concentrations with Rb, Cs, Li and B contents in fluid inclusions are shown. The REE distribution in fluid inclusions can be used as indicators of the contribution of magmatic fluid in the hydrothermal system.  相似文献   

17.
位处华北板块北缘东段的辽吉裂谷带内发育有多处中、小型铅锌矿床,其中,同时发育层状和脉状铅锌矿的青城子矿床是典型的代表。为了探讨青城子层状铅锌矿和脉状铅锌矿矿质来源及成因的异同及其所代表的地质意义,利用ICP-MS对层状铅锌矿及其围岩、脉状铅锌矿及其围岩和后期穿矿脉岩进行了稀土元素测试。结果表明,所有样品均具有轻稀土元素(LREE)富集和明显分异的特点。层状铅锌矿及其围岩具有Eu正异常和较弱的Ce负异常,表明其成矿物质均来自上升的深部热水流体与海水的混合热液,在高温、还原流体和海水的参与下成矿。脉状铅锌矿及其围岩稀土元素配分模式与层状铅锌矿及其围岩相似,但其Eu为负异常和Ce异常不明显,部分样品出现较弱的Ce正异常,对比分析穿矿脉岩明显的Eu负异常和Ce正异常以及二者稀土元素总量稍大于层状铅锌矿的特点,文章认为青城子层状矿石为沉积成矿,成矿热液为深部热水流体与海水的混合热液,但后期受到岩浆侵入叠加改造的影响而在局部形成脉状铅锌矿体,引起了Eu负异常和局部Ce正异常的出现以及稀土元素总量的增加。  相似文献   

18.
Behaviour of rare earth elements in geothermal systems of New Zealand   总被引:2,自引:0,他引:2  
Rare earth element (REE) patterns of hydrothermally altered rhyolite from geothermal systems located in the Taupo Volcanic Zone in the North Island of New Zealand provide evidence of REE mobility. REE trends of unaltered rhyolites are characterised by moderate LREE enrichment ((La/Lu)cn = 3.84 to 5.62) and pronounced negative Eu anomalies. In contrast, REE patterns of hydrothermally altered rhyolites commonly exhibit different signatures and may be placed into four chemically and petrographically distinct categories. Rocks with clay + quartz + feldspar + calcite (±zeolites, epidote, sphene, chlorite, opaque minerals) assemblages typically display patterns subparallel to fresh rock, whereas, samples which contain quartz + chlorite, or quartz + clay + zeolite assemblages have flat patterns without Eu anomalies, and highly silicified samples are characterised by depleted, bowed REE trends. These patterns may be produced by interaction with alkaline or acid fluids. A fourth group of very intensely altered samples, affected by interaction with acid fluids, exhibits unusual REE trends with highly enriched HREE and depleted LREE, or depleted HREE.These results indicate that some of the REE released by the breakdown of primary phases during alteration are transported away in the fluid. In addition, the degree of depletion is positively correlated with alteration intensity and the fluid/rock ratio. The similarity of REE patterns resulting from alteration by alkaline and acid fluids suggests that the shape of the REE trends is controlled principally by fluid/rock ratios and secondarily by mineralogy. The REE are retained in rocks with a diverse alteration mineralogy, whereas in samples with only one dominant alteration phase (e.g. quartz) it is more probable that not all REE liberated during alteration can be accommodated in the altered rock. Eu commonly behaves differently from the other REE, possibly due to the dominance of Eu2+.  相似文献   

19.
Abstract. Cathodoluminescence (CL) color, rare earth element (REE) content, sulfur and oxygen isotopes and fluid inclusions of anhydrite, which frequently filled in hydrothermal veins in the Kakkonda geothermal system, were investigated to elucidate the spatial, temporal and genetical evolution of fluids in the deep reservoir. The anhydrite samples studied are classified into four types based on CL colors and REE contents: type-N (no color), type-G (green color), type-T (tan color) and type-S (tan color with a high REE content). In the shallow reservoir, only type-N anhydrite is observed. In the deep reservoir, type-G anhydrite occurs in vertical veins whereas type-T and -N in lateral veins. Type-S anhydrite occurs in the heat-source Kakkonda Granite. The CL textures revealed that type-G anhydrite deposited earlier than type-T in the deep reservoir, implying that fracture system was changed from predominantly vertical to lateral.
Studies of fluid inclusions and δ34S and δ18O values of the samples indicate that type-N anhydrite deposited from diluted fluids derived from meteoric water, whereas type-G, -T and -S anhydrites deposited from magmatic brines derived from the Kakkonda Granite with the exception of some of type-G with recrystallization texture and no primary fluid inclusion, which deposited from fossil seawater preserved in the sedimentary rocks. Type-G, -T and -S anhydrites exhibit remarkably different chondrite-normalized REE patterns with a positive Eu anomaly, with a convex shape (peak at Sm or Eu) and with a negative Eu anomaly, respectively. The difference in the patterns might result from the different extent of hydrothermal alteration of the reservoir rocks and contribution of the magmatic fluids.  相似文献   

20.
Tourmaline rocks of previously unclear genesis and spatially associated with W- (Cu)-bearing calc-silicate rocks occur in Palaeoproterozoic supracrustal and felsic intrusive rocks in the Bonya Hills in the eastern Arunta Inlier, central Australia. Tourmalinisation of metapelitic host rocks postdates the peak of regional low-pressure metamorphism (M1/D1, ~500 °C, ~0.2 GPa), and occurred synkinematically between the two main deformation events D1 and D2, coeval with emplacement of Late Strangways (~1.73 Ga) tourmaline-bearing leucogranites and pegmatites. Tourmaline is classified as schorl to dravite in tourmaline–quartz rocks and surrounding tourmaline-rich alteration zones, and as Fe-rich schorl to foitite in the leucogranites. Boron metasomatism resulted in systematic depletion of K, Li, Rb, Cs, Mn and enrichment of B, and in some samples of Na and Ca, in the tourmaline rocks compared to unaltered metasedimentary host rocks. Whole-rock REE concentrations and patterns of unaltered schist, tourmalinised schist and tourmaline–quartz veins—the latter were the zones of influx of the boron-rich hydrothermal fluid—are comparable to those of post-Archaean shales. Thus, the whole-rock REE patterns of these rocks are mostly controlled by the metapelitic precursor. In contrast, REE concentrations of leucogranitic rocks are low (10 times chondritic), and their flat REE patterns with pronounced negative Eu anomalies are typical for fractionated granitic melts coexisting with a fluid phase. REE patterns for tourmalines separated from metapelite-hosted tourmaline–quartz veins and tourmaline-bearing granites are very different from one another but each tourmaline pattern mirrors the REE distribution of its immediate host rock. Tourmalines occurring in tourmaline–quartz veins within tourmalinised metasediments have LREE-enriched (LaN/YbN=6.3–55), shale-like patterns with higher REE (54–108 ppm). In contrast, those formed in evolved leucogranites exhibit flat REE patterns (LaN/YbN=1.0–5.6) with pronounced negative Eu anomalies and are lower in REE (5.6–30 ppm). We therefore conclude that REE concentrations and patterns of tourmaline from the different tourmaline rocks studied are controlled by the host rock and not by the hydrothermal fluid causing boron metasomatism. From the similarity of the REE pattern of separated tourmaline with the host rock, we further conclude that incorporation of REEs in tourmaline is not intrinsically controlled (i.e. by crystal chemical factors). Tourmaline does not preferentially fractionate specific REEs or groups of REEs during crystallisation from evolved boron- and fluid-rich granitic melts or during alteration of clastic metasediments by boron-rich magmatic-hydrothermal fluids.Editorial responsibility: J. Hoefs  相似文献   

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