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1.
智博铁矿床是西天山东部阿吾拉勒铁成矿带新发现的大型磁铁矿矿床之一。赋矿围岩为下石炭统大哈拉军山组火山岩及火山碎屑岩。围岩蚀变广泛发育,识别出3个阶段:第一阶段以辉石+钠长石+磁铁矿为主;第二阶段以角闪石+钾长石+绿帘石+磁铁矿+黄铁矿为主;第三阶段以绿帘石+绿泥石+方解石+石英+黄铁矿+赤铁矿±黄铜矿为主。电子探针分析表明,智博铁矿与其他岩浆-热液成因铁矿床具有类似的蚀变矿物化学成分。辉石以透辉石为主(Di=62.97%~83.56%),含少量钙铁辉石(Hd=16.44%~36.45%);火山岩中斜长石(Ab47.57-57.82An41.5-51.87Or0.56-0.68)蚀变形成钠长石(Ab77.89-99.33An0.46-2.48Or0.21-20.3);与热液作用有关的钾长石叠加改造早期蚀变矿物;角闪石主要为阳起石;晚期发育富铁绿帘石〔Fe/(Fe+Al)=0.2~0.36〕以及绿泥石蚀变矿物。与火山岩中的磁铁矿〔w(TiO2)3.08%〕相比,矿体中磁铁矿具有低w(TiO2)(0.23%)的特点,部分早期浸染状磁铁矿与火山岩中的磁铁矿w(V2O5)相当,暗示该矿化阶段的铁质部分来源于围岩。矿物学及矿物化学表明,热液交代作用对成矿具有重要的贡献。同时,智博铁矿具有一些暗示铁矿浆成因的结构特征,如块状磁铁矿与围岩呈截然接触,磁铁矿胶结围岩角砾,磁铁矿条带呈流动状分布以及板条状磁铁矿等。结合铁矿带区域地质特征,认为智博铁矿可能主要由富铁岩浆流体形成,在形成大量块状富铁矿体的同时,伴随有广泛的围岩蚀变。矿区内大量的磁铁矿矿化与晚石炭世大陆岛弧岩浆活动有密切的成因联系。  相似文献   

2.
查岗诺尔铁矿床位于伊犁地块北缘博罗科努岛弧带.矿区广泛出露石炭纪火山岩.矿区的主要矿物共生组合为磁铁矿+石榴石+阳起石(绿帘石)组合.矿床大致可以分为早、中、晚三个成矿期.矿床是由富铁的安山质岩浆分异形成,并且后期受到热液作用的叠加改造.隐爆作用伴随整个成矿过程.该矿床成因上属于受到热液作用叠加改造的火山岩型铁矿床.  相似文献   

3.
智博铁矿床位于新疆西天山阿吾拉勒成矿带东段,主要赋矿围岩为石炭系大哈拉军山组安山岩、玄武质安山岩和火山碎屑岩.该矿床主要有东、中、西3个矿区,其中以东矿区为主矿区.矿体主要呈层状、似层状、厚板状和透镜状.金属矿物以磁铁矿为主,含有少量黄铁矿、赤铁矿和黄铜矿.矿石构造以块状和浸染状构造为主,此外还有角砾状构造、条带状构造、流纹状构造和脉状构造等.矿石结构有他形-半自形结构、板条状结构和海绵陨铁结构等.智博铁矿床蚀变矿物主要有透辉石、钠长石、阳起石、绿帘石、钾长石等,含有少量方解石、石英和绿泥石等.根据矿石和矿物共生关系,将智博铁矿床划分为岩浆期和热液期2个成矿期次.岩浆期可划分为钠长石-透辉石阶段和磁铁矿-阳起石阶段,热液期可划分为钾长石-绿帘石阶段和石英-硫化物阶段.根据智博磁铁矿的电子探针数据,各类磁铁矿矿石中除热液期含黄铁矿致密块状矿石w(FeOT)变化较大外,其他类型磁铁矿的w(FeOT)多集中在90%~95%,又以岩浆期块状矿石中w(FeOT)最高.对其氧化物进行相应的图解,电子探针数据中w(CaO)、w(Al2O3)、w(MnO)、w(K2O)、w(MgO)和w(SiO2)都和w(FeOT)有良好的负相关性,而NiO和TiO2则具有一定的正相关性,V2O3则在岩浆期块状和含磁铁矿脉矿石中含量明显高于其他类型矿石.根据磁铁矿TiO2-Al2O3-MgO成因图解和w(Ca+Al+Mn)-w(Ti+V)成因图解显示,智博铁矿床矿石兼具岩浆型成因特征和热液型成因特征,表明智博铁矿床的形成与岩浆作用和火山热液交代作用有关.  相似文献   

4.
正磁铁矿-磷灰石型铁矿是全球非常重要的铁矿床类型之一,其主要特征为:(1)含大量的块状磁铁矿、不定量的磷灰石,贫石英;(2)具有高U和稀土含量;(3)与钙碱性蚀变岩密切相关。长期以来,关于这类矿床是岩浆成因还是热液成因,一直存在较大的争议。传统观点认为,这类矿床的磁铁矿保存了原始的类玄武岩状结构,是磁铁矿从富铁熔体中结晶所导致的;然而,也有一些研究者根据铁矿体内广泛分  相似文献   

5.
智博铁矿位于新疆西天山阿吾拉勒铁成矿带东段,矿体以层状、似层状、透镜状产出于下石炭统大哈拉军山组玄武质安山岩中。智博铁矿成矿作用主要划分为岩(矿)浆期和热液期2个成矿期次,包括3个成矿阶段:磁铁矿+透辉石阶段、磁铁矿+绿帘石+钾长石阶段和石英+硫化物+碳酸盐阶段。智博铁矿地球化学特征表明,其成矿构造背景为早石炭世南天山洋向伊犁板块俯冲形成的岛弧环境;火山岩与磁铁矿石具有相同的物质来源,均来源于受俯冲带流体交代的亏损地幔楔部分熔融形成的玄武质岩浆。智博铁矿为岩浆(主要)-热液(次要)复合型矿床,受俯冲流体交代的亏损地幔楔部分熔融形成富铁的玄武质岩浆,岩浆沿深大断裂上侵形成早期火山岩,上侵过程中由于物理化学条件的改变在不混溶作用下形成铁矿浆,铁矿浆侵入早期火山岩地层形成岩浆期磁铁矿体;后期富铁的岩浆或矿浆热液使围岩发生矿化与蚀变,形成热液期磁铁矿体。  相似文献   

6.
内蒙古赤峰市阿根他拉铁矿是一个可以小规模开采的铁矿与钠长石矿。铁矿所赋存的岩体为原生钠长斑岩,其可能由深部的花岗闪长岩岩浆演化而来。铁矿化可分为两个阶段,第一阶段为黑云母/绿泥石—石英—磁铁矿阶段,为本区主要的铁矿化阶段,形成网脉状—浸染状的磁铁矿矿石。该阶段成矿岩体为斑岩、网脉状矿化、伴生矿化组合与斑岩型矿床可类比及磁铁矿的(Ca+Al+Mn)—(Ti+V)图解位于斑岩型矿床中,表明该阶段具有类似于斑岩型矿床的特征。第二阶段为绿帘石—磁铁矿/赤铁矿阶段,形成可达工业品位的团块状磁铁矿/赤铁矿矿石。该阶段类似于矽卡岩型铁矿的团块状矿石,及磁铁矿的(Ca+Al+Mn)—(Ti+V)图解位于矽卡岩型铁铜矿床中,表明该阶段具有类似于矽卡岩型铁矿床的特征。将如上与钠长斑岩有关,前期表现为类似斑岩型矿床特征,后期表现为类似矽卡岩型铁矿床特征的铁矿,称为钠长斑岩型铁矿。这类铁矿应注重与绿帘石伴生的团块状铁矿的寻找。对比研究表明,钠长斑岩型铁矿明显有别于长江中下游的玢岩铁矿。  相似文献   

7.
卡门铁矿床位于智利著名的中生代铁-铜-金成矿带内,本文根据矿石组构和矿物共生特征将卡门铁矿床成矿期次划分为硅化阶段、磁铁矿阶段、黄铜矿阶段和晚期热液脉阶段4个阶段。卡门铁矿床磁铁矿有两种类型:含硫化物块状磁铁矿、与阳起石共生磁铁矿,以含硫化物块状磁铁矿为主。电子探针研究表明,该矿床与阳起石共生磁铁矿的Fe O_T含量略高于含硫化物块状磁铁矿;整体上来看,磁铁矿的Fe O_T与Si O_2、Al_2O_3、Mg O呈负相关关系。激光剥蚀电感耦合等离子体质谱(LA-ICP-MS)微量元素成分分析表明,卡门磁铁矿轻稀土元素亏损,重稀土元素富集且分馏程度相对较大;Co、Ni元素含量高,与夕卡岩型磁铁矿较为接近,但Ni/Co比值变化较大,与夕卡岩型有明显差异,说明卡门磁铁矿与典型夕卡岩成因的磁铁矿存在一定差别,同时较高的Ni/Co比值反映了其成因与深源物质有关。卡门铁矿床磁铁矿Ti O_2-Al_2O_3-(Mg O+Mn O)三角图表明该矿床具有热液交代特征,与夕卡岩相关;(Ca+Al+Mn)-(Ti+V)成因判别图也显示该矿床有夕卡岩型铁矿特征,但同时也与IOCG型矿床有一定的相似性,这进一步证明卡门铁矿床可能并非典型的夕卡岩矿床,其成矿可能与铁氧化物铜金(IOCG)型成矿过程岩浆热液活动密切相关,这与卡门铁矿床处于智利IOCG成矿带的地质事实一致。  相似文献   

8.
铁氧化物-磷灰石矿床(IOA)是全球铁矿资源重要的供给矿床类型之一,受到国内外科研和矿产开采工作者的广泛关注。对铁氧化物-磷灰石矿床研究的争议主要集中在矿床成因上,即岩浆成因或者热液成因。作为一类具有多阶段成矿作用的矿床,IOA型矿床很难用热液或者矿浆成因予以简单概括,需要动态地看待成矿作用。和尚桥铁矿床是一个大型的铁氧化物-磷灰石(IOA)矿床,位于中国东部长江中下游多金属成矿带宁芜矿集区中。和尚桥铁矿床成矿作用含有三个清晰的磁铁矿矿化阶段,分别形成浸染状(Mt1)、角砾状(Mt2)和脉状(Mt3)矿石。对各阶段磁铁矿矿石中磁铁矿进行激光剥蚀等离子质谱(LA-ICP-MS)微区成分测试。在成矿过程中,从早到晚,磁铁矿表现出了从具有岩浆成因特征向具有热液成因特征的方向演化。磁铁矿中Mg和Al含量升高,Cr含量先降低后略微升高,Mn、Co、Ni和V含量先降低后升高,Mo和Sn含量先升高后降低的趋势,表明成矿过程中各阶段围岩及大气水对成矿流体的贡献不一。结合前人研究成果,我们认为和尚桥铁矿床中磁铁矿铁质的来源与安山质侵入岩密切相关,可能来源于岩浆不混溶作用形成的铁质富集流体(熔体),磁铁矿在高温热液环境中结晶沉淀。成矿过程具有多阶段性,推测在各成矿阶段间隙,富铁流体得到富集,同时地层物质不断的加入并导致了磁铁矿成分显示出越来越多的热液成因信息,地层物质(特别是膏盐层)对成矿过程起到了重要的控制作用。  相似文献   

9.
新疆西天山晚古生代磁铁矿带是中国重要的铁矿带,其成矿地质背景与成因类型一直以来存在很大的争论.本文在已有研究成果的基础上,结合大量野外调查资料和室内研究工作,对西天山主要磁铁矿床的成因类型、成矿背景、成矿规律进行了详细研究.研究表明,主要磁铁矿床矿石矿物Sr、Nd、Pb同位素基本落入洋陆俯冲碰撞下的岛弧环境;矿石形成年龄介于火山岩与中酸性侵入岩之间,接近于火山岩年龄,矿石与火山岩具有密切的成因联系.矿床总体归为海相火山岩型铁矿,可划分出3个亚类:火山喷溢型、火山-次火山热液型、火山喷溢-热液叠加型,不同亚类矿床具有不同的矿体、矿石特征.铁矿石的形成与俯冲带流体的交代作用有着密切的关系,早期为富铁岩浆交代后分异结晶作用的产物,后期则为火山热液沿断裂、裂隙交代、卸载的产物.  相似文献   

10.
西天山智博铁矿床磁铁矿成分特征及其矿床成因意义   总被引:12,自引:7,他引:5  
智博大型磁铁矿床位于新疆西天山阿吾拉勒成矿带东段,赋存于石炭系大哈拉军山组玄武质安山岩、安山岩及火山碎屑岩中。智博铁矿床包括东、中、西以及13号矿体4个矿段。矿体主要呈层状、似层状、透镜状。金属矿物以磁铁矿为主,含少量浸染状黄铁矿,局部可见细脉赤铁矿及零星状黄铜矿。矿石构造以块状和浸染状构造为主,角砾状次之,局部为条带状构造、脉状-网脉状构造;矿石结构包括半自形-他形粒状结构、交代残余结构、板条状结构。智博矿区的蚀变矿物组合以透辉石、钠长石、钾长石、绿帘石、阳起石为主,含有少量方解石、石英、绿泥石及榍石。根据矿物共生组合、矿石结构的观察以及矿物化学分析,识别出岩浆期和热液期2个成矿期,进一步细分为3个成矿阶段:磁铁矿-透辉石-绿帘石阶段(a1),磁铁矿-钾长石-绿帘石阶段(b1),石英-硫化物阶段(b2)。磁铁矿的电子探针成分分析显示,岩浆期矿石中FeOT含量较高,而Al2O3、CaO、MgO、SiO2等氧化物含量较低,热液期矿石则相反。角砾状和部分浸染状磁铁矿中V2O5含量相对较高,与火山岩中含量类似,暗示该矿化阶段的铁质部分来源于围岩;块状以及浸染状磁铁矿FeOT含量大部分在90%以上;角砾状、网脉状、树枝状矿石中磁铁矿的w(FeOT)分布相对比较集中,多数在90%~92%之间;纹层状矿石的w(FeOT)则变化于88%~92%之间,其CaO、SiO2等氧化物平均含量相对增加。TiO2-Al2O3-MgO图解和Ca+Al+Mn vs Ti+V图解均表明智博铁矿床的形成与火山活动和岩浆热液的交代作用有关。  相似文献   

11.
Long-standing controversy persists over the presence and role of iron–rich melts in the formation of volcanic rock-hosted iron deposits. Conjugate iron–rich and silica–rich melt inclusions observed in thin-sections are considered as direct evidence for the presence of iron-rich melt, yet unequivocal outcrop-scale evidence of iron-rich melts are still lacking in volcanic rock-hosted iron deposits. Submarine volcanic rock-hosted iron deposits, which are mainly distributed in the western and eastern Tianshan Mountains in Xinjiang, are important resources of iron ores in China, but it remains unclear whether iron-rich melts have played a role in the mineralization of such iron ores. In this study, we observed abundant iron-rich agglomerates in the brecciated andesite lava of the Heijianshan submarine volcanic rock–hosted iron deposit, Eastern Tianshan, China. The iron-rich agglomerates occur as irregular and angular masses filling fractures of the host brecciated andesite lava. They show concentric potassic alteration with silicification or epidotization rims, indicative of their formation after the wall rocks. The iron-rich agglomerates have porphyritic and hyalopilitic textures, and locally display chilled margins in the contact zone with the host rocks. These features cannot be explained by hydrothermal replacement of wall rocks(brecciated andesite lava) which is free of vesicle and amygdale, rather they indicate direct crystallization of the iron-rich agglomerates from iron-rich melts. We propose that the iron-rich agglomerates were formed by open-space filling of volatile-rich iron-rich melt in fractures of the brecciated andesite lava. The iron-rich agglomerates are compositionally similar to the wall-rock brecciated andesite lava, but have much larger variation. Based on mineral assemblages, the iron-rich agglomerates are subdivided into five types, i.e., albite-magnetite type, albite-K-feldsparmagnetite type, K-feldspar–magnetite type, epidote-magnetite type and quartz-magnetite type, representing that products formed at different stages during the evolution of a magmatic-hydrothermal system. The albite-magnetite type represents the earliest crystallization product from a residual ironrich melt; the albite-K-feldspar-magnetite and K-feldspar-magnetite types show features of magmatichydrothermal transition, whereas the epidote-magnetite and quartz-magnetite types represent products of hydrothermal alteration. The occurrence of iron-rich agglomerates provides macroscopic evidence for the presence of iron-rich melts in the mineralization of the Heijianshan iron deposit. It also indicates that iron mineralization of submarine volcanic rock-hosted iron deposits is genetically related to hydrothermal fluids derived from iron-rich melts.  相似文献   

12.
夕卡岩铁矿床的成因一直以来备受争议,主要有接触交代和矿浆成因等模型。河北武安玉石洼铁矿是邯邢地区主要的夕卡岩铁矿之一,对矿区尖山剖面中的三类磁铁矿成分进行详细研究有助于解决此问题。产于剖面下部玉石洼铁矿主矿体中的磁铁矿以高Ti为特征,而在上部结晶灰岩中矿脉状中磁铁矿以高Si(w(SiO2)>1%)为特点,赋存于中部二长岩矿脉中的磁铁矿具有过渡的成分特征。通过对此三类磁铁矿中主量元素、微量元素研究发现,从下部玉石洼主矿体向上部结晶灰岩中的磁铁矿脉,磁铁矿具有Ti含量逐渐减少而Si、Mg含量逐渐增加的特征。高硅磁铁矿呈自形晶,与方解石平衡共生,其形成与流体有关,很可能是流体晶矿物。磁铁矿FeV/Ti判别图解显示下部玉石洼主矿体中部分磁铁矿具有岩浆成因,二长岩和结晶灰岩中的脉状矿石中磁铁矿具有热液成因,磁铁矿由下部到上部具有岩浆成因过渡为热液成因的连续过程。根据玉石洼矿区磁铁矿的这些特征,我们认为铁矿浆中含有大量流体,应该为“含铁熔体流体”,由于流体超压使“含铁熔体流体流”在岩浆通道中快速上升,至地壳浅部空间就位,在空间上由下部形成高温高Ti磁铁矿过渡为上部形成具有流体晶特征的高Si磁铁矿的岩浆通道成矿系统模型。  相似文献   

13.
The Beiya gold–polymetallic deposit is one of the largest gold deposits in China and is considered to be a typical porphyry-skarn system located in the middle of the Jinshajiang–Ailaoshan alkaline porphyry metallogenic belt. Massive magnetite is widespread in the Beiya ore district but its genesis is still the subject of debate. Five representative magnetite types are present in the Beiya deposit, namely magmatic magnetite (M1) from the ore-related porphyry, disseminated magnetite (M2) from the early retrograde alteration, massive magnetite (M3) from the early quartz-magnetite stage, massive magnetite (M4) from the middle quartz-magnetite stage and magnetite (M5) from the late quartz-magnetite stage. Compared with the M1 magnetite, the magnetites from stages M2 to M5 are depleted in Ti, Al and high field strength elements, implying a hydrothermal origin, distinct from the magmatic accessory magnetite in the ore-related porphyry (M1). The concentrations of cobalt in the hydrothermal magnetites decrease gradually from M2 to M5, and can be used to discriminate the magnetite types. The Al + Mn and Ti + V contents of the successively precipitated magnetite grains (M2–M5) suggests that the ore forming temperature decreased from M2 to M4, but increased from M4 to M5, possibly as the result of a new pulse of magma entering the chamber, which may have triggered the gold mineralization. The V content in the hydrothermal magnetite suggests that the oxygen fugacity increased from M2 to M4 but decreased as soon as the sulfides entered the system (M5).  相似文献   

14.
新疆哈拉达拉辉长岩体中磁铁矿脉特征及其地质意义   总被引:1,自引:0,他引:1  
哈拉达拉岩体是特克斯岩带中规模最大的层状辉长岩体,在岩体NW向断裂中发现磁铁矿脉,系统研究其地质产出特征,稀土元素特征和磁铁矿成分,结构,物性等矿物标型特征,认为磁铁矿脉是岩浆是结晶的产物,为贯入式钒钛磁铁矿脉,与攀枝花,力马河辉长岩体特征对比,认为该岩体具有形成攀枝花式铁矿的成矿远景。  相似文献   

15.
四川省拉拉铁氧化物-铜-金(IOCG)矿床位于扬子地块西南缘,磁铁矿是矿床中重要的矿石矿物及Fe质的主要载体之一。结合矿相学及电子探针研究方法,探讨矿床中气成-热液成矿期磁铁矿的成因特征及Fe质来源。矿相学研究表明,气成-热液成矿期磁铁矿呈自形晶,与黄铜矿共伴生产出。电子探针分析表明,气成-热液成矿期粗粒自形晶磁铁矿主要成分为TFeO,其余成分不超过1%,为典型磁铁矿。①气成-热液成矿期粗粒自形晶磁铁矿为热液成因,Fe质来自岩浆热液;②高氧逸度的岩浆/热液有利于Cu-Au的迁移聚集,磁铁矿的结晶作用过程中伴随着氧化态硫酸盐(SO 2-4)向还原态硫(H 2 S)转化的还原作用,降低成矿系统的氧化还原势,从而推进后续Cu-Au硫化物的沉淀成矿;③研究结果还补充了林师整(1982)建立的磁铁矿成因判别图解空白部分。  相似文献   

16.
梅山铁矿床位于长江中下游成矿带宁芜盆地北段,矿体赋存于辉长闪长玢岩和下白垩统大王山组辉石安山岩的接触带。研究表明,梅山铁矿的石榴石以钙铁榴石为主,为钙铁-钙铝榴石系列,与传统意义矽卡岩矿床的石榴石组成相似;磁铁矿和赤铁矿具有斑岩铜矿和Kiruna型矿床的双重特征;赤铁矿和菱铁矿显示热液交代成因特征,但赤铁矿至少有2个成矿世代。成矿母岩辉长闪长玢岩、磁铁矿及磷灰石具有相似的稀土配分模式,暗示三者具有同源性。辉长闪长玢岩无Eu异常,代表了高氧逸度下岩浆的分离结晶作用;磁铁矿和磷灰石均具有中度负Eu异常,可能是在辉长闪长玢岩发生钠长石化的过程中,Eu以Eu2+形式在钠长石内富集,造成流体Eu亏损,后来生成的磷灰石和磁铁矿继承了流体的Eu含量特征,辉长闪长玢岩的钠长石化导致富Fe2+硅酸盐矿物淋滤铁元素进入流体,为矿床提供了铁物质。  相似文献   

17.
查岗诺尔大型磁铁矿床位于西天山阿吾拉勒东段,赋存于下石炭统大哈拉军山组安山岩及安山质火山碎屑岩之中,主体矿底板夹透镜状的大理岩,矿体主要为层状、似层状、透镜状。根据矿石组构和矿物共生特征,可以划分为岩浆期和热液期两个成矿期,后者包括矽卡岩和石英-硫化物两个亚成矿期,进一步可以细分为6个成矿阶段。岩浆期的磁铁矿∑REE很低,稀土配分模式大致呈轻稀土、重稀土较富集而中稀土亏损的U型,富Ti、V、Cr,表明铁质可能来自安山质岩浆的结晶分异作用; 矽卡岩亚成矿期的磁铁矿∑REE极低,略微富集LREE,其它稀土元素亏损强烈,贫Ti、V,略富集Ni、Co和Cu。矽卡岩亚期的含矿和无矿矽卡岩中的石榴石的稀土配分模式类似,∑REE含量相对较高,呈HREE富集、LREE亏损、弱正Eu异常的分布型式,显示了交代成因石榴石的特征,暗示与其共生的磁铁矿也是通过热液流体与围岩地层的交代反应生成的,铁质来自围岩。结合矿床地质与微量元素地球化学,认为查岗诺尔铁矿可能是岩浆型和矽卡岩型(主要)的复合叠加矿床。  相似文献   

18.
The Bayan Obo Fe-REE-Nb deposit in northern China is the world's largest light REE deposit, and also contains considerable amounts of iron and niobium metals. Although there are numerous studies on the REE mineralization, the origin of the Fe mineralization is not well known. Laser ablation (LA) ICP-MS is used to obtain trace elements of Fe oxides in order to better understand the process involved in the formation of magnetite and hematite associated with the formation of the giant REE deposit. There are banded, disseminated and massive Fe ores with variable amounts of magnetite and hematite at Bayan Obo. Magnetite and hematite from the same ores show similar REE patterns and have similar Mg, Ti, V, Mn, Co, Ni, Zn, Ga, Sn, and Ba contents, indicating a similar origin. Magnetite grains from the banded ores have Al + Mn and Ti + V contents similar to those of banded iron formations (BIF), whereas those from the disseminated and massive ores have Al + Mn and Ti + V contents similar to those of skarn deposits and other types of magmatic-hydrothermal deposits. Magnetite grains from the banded ores with a major gangue mineral of barite have the highest REE contents and show slight moderate REE enrichment, whereas those from other types of ores show light REE enrichment, indicating two stages of REE mineralization associated with Fe mineralization. The Bayan Obo deposit had multiple sources for Fe and REEs. It is likely that sedimentary carbonates provided original REEs and were metasomatized by REE-rich hydrothermal fluids to form the giant REE deposit.  相似文献   

19.
对云南因民铁铜矿区深部辉长岩类中金红石、黑云母、碳酸盐和绿泥石的矿物地球化学特征进行研究,以探讨赋存于辉长岩类中的铁氧化物铜金型矿(化)体的成岩成矿环境。金红石由岩浆结晶和多期蚀变作用形成,其结晶温度为820~1 082 ℃,多期蚀变温度为444~730 ℃,金红石与黑云母密切共生;黑云母可划分为原生高钛镁质黑云母、热液蚀变镁质黑云母和铁质黑云母,形成温度分别为653~750 ℃、525~619 ℃和551~577 ℃,氧逸度均位于Ni NiO缓冲剂附近,表明黑云母形成于高温强氧化环境,有利于金红石化;铁白云石-菱铁矿化揭示了强还原环境,交代蚀变金红石;绿泥石多由铁镁矿物蚀变形成,形成于中低温(174~243 ℃)、低氧逸度(-4468~-5142)和高硫逸度(-1442~-1976)的强还原环境,有利于金属硫化物形成。本区岩浆结晶演化和黑云母-金红石化蚀变具有高温强氧化地球化学岩相学特征,有利于钛、铁矿化,后期叠加中低温强还原地球化学岩相,为IOCG矿床成矿的有利地球化学岩相学类型。  相似文献   

20.
Magnetite is a common mineral in many ore deposits and their host rocks, and contains a wide range of trace elements (e.g., Ti, V, Mg, Cr, Mn, Ca, Al, Ni, Ga, Sn) that can be used for deposit type fingerprinting. In this study, we present new magnetite geochemical data for the Longqiao Fe deposit (Luzong ore district) and Tieshan Fe–(Cu) deposit (Edong ore district), which are important magmatic-hydrothermal deposits in eastern China.Textural features, mineral assemblages and paragenesis of the Longqiao and Tieshan ore samples have suggested the presence of two main mineralization periods (sedimentary and hydrothermal) at Longqiao, among which the hydrothermal period comprises four stages (skarn, magnetite, sulfide and carbonate); whilst the Tieshan Fe–(Cu) deposit comprises four mineralization stages (skarn, magnetite, quartz-sulfide and carbonate).Magnetite from the Longqiao and Tieshan deposits has different geochemistry, and can be clearly discriminated by the Sn vs. Ga, Ni vs. Cr, Ga vs. Al, Ni vs. Al, V vs. Ti, and Al vs. Mg diagrams. Such difference may be applied to distinguish other typical skarn (Tieshan) and multi-origin hydrothermal (Longqiao) deposits in the MLYRB. The fluid–rock interactions, influence of the co-crystallizing minerals and other physicochemical parameters, such as temperature and fO2, may have altogether controlled the magnetite trace element contents of both deposits. The Tieshan deposit may have had higher degree of fO2, but lower fluid–rock interactions and ore-forming temperature than the Longqiao deposit. The TiO2–Al2O3–(MgO + MnO) and (Ca + Al + Mn) vs. (Ti + V) magnetite discrimination diagrams show that the Longqiao Fe deposit has both sedimentary and hydrothermal features, whereas the Tieshan Fe–(Cu) deposit is skarn-type and was likely formed via hydrothermal metasomatism, consistent with the ore characteristics observed.  相似文献   

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