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1.
新疆西天山查岗诺尔铁矿床矿物学特征及其地质意义   总被引:12,自引:0,他引:12  
查岗诺尔大型磁铁矿床位于西天山阿吾拉勒东段,矿体赋存于下石炭统大哈拉军山组安山质火山碎屑岩或凝灰岩中,主要呈层状、似层状、透镜状,受NW、NWW、NE断裂及环形断裂构造控制。矿区发育石榴石、透辉石、方柱石、阳起石、钾长石、绿帘石、绿泥石、方解石等蚀变矿物,矿石矿物主要为磁铁矿和赤铁矿,伴生的金属矿物以黄铁矿和黄铜矿为主。电子探针分析结果表明,石榴石和辉石分别为钙铁榴石-钙铝榴石系列和透辉石-钙铁辉石系列,其化学组成可表示为Adr37.97~97.89Grs0.19~57.21(Alm+Sps)0.84~4.38和Di28.68~87.46Hd10.46~70.13Jo0.24~5.53,与典型的矽卡岩型铁矿中石榴石和辉石的端员组分相似。在磁铁矿和赤铁矿的Ca+Al+Mn-Ti+V图解中,多数样品落入矽卡岩型铁矿的区域;在磁铁矿的TiO2-Al2O3-MgO图解中,多数样品落入或趋近于沉积变质-接触交代磁铁矿区域。结合矿床地质特征和矿物学研究,认为该矿床的形成与矽卡岩化紧密相关,矽卡岩化对铁成矿有重要的贡献。  相似文献   

2.
长泉山铁矿床位于南天山东段,矿体赋存于碳酸盐岩与岩体接触带矽卡岩中。矿体主要呈层状、似层状、透镜状,近矿围岩蚀变强烈,形成透辉石矽卡岩、透辉石榴矽卡岩、石榴石绿帘石矽卡岩等镁质矽卡岩。通过矿床地质特征、矿物学及矿石地球化学特征分析认为,矿石经过一个热液交代作用过程,表明长泉山铁矿的形成与岩浆热液交代作用有关。  相似文献   

3.
东天山雅满苏铁矿床夕卡岩成因及矿床成因类型   总被引:8,自引:0,他引:8  
李厚民  丁建华  李立兴  姚通 《地质学报》2014,88(12):2477-2489
新疆东天山雅满苏铁矿床是该区乃至我国产于海相火山岩中的典型铁矿床,其矿床成因类型长期以来一直有海相火山岩型和矽卡岩型之争,争论的焦点是该矿床中矽卡岩的成因,影响了关键控矿要素的确定和找矿标志的建立.为了探讨矽卡岩的成因,本文测定了穿插铁矿体和矽卡岩的辉绿岩脉的锆石SHRIMP U-Pb年龄,采用XRF方法测定了雅满苏铁矿区火山岩、火山沉积岩和矽卡岩的主量元素含量,采用电子探针方法分析了该矿床不同产态不同期次矽卡岩中石榴石的矿物组成.测得辉绿岩脉锆石年龄为335Ma,将雅满苏矿区铁矿化和矽卡岩的形成时代限定于335Ma之前,表明矿化蚀变与火山岩同期,是雅满苏组火山岩喷发期热液交代作用的产物.岩矿鉴定也显示热液改造首先形成葡萄石,进而由于流体中铁质的加入形成石榴石.两期石榴石的矿物化学特征表明早期形成的石榴石富铁;晚期形成的石榴石铁质含量低,并有磁铁矿和黄铁矿等金属矿物与其共生.由于该矽卡岩的形成与火成岩体接触带的交代作用没有明显成因联系,因此笔者认为该矿床中的矽卡岩属广义矽卡岩,矿床成因类型归为海相火山岩型铁矿床更合理.  相似文献   

4.
江西武山铜矿床是长江中下游地区具有代表性的叠加复合矿床之一。文章选取武山铜矿床典型剖面为研究对象,在野外地质调研和室内岩相学研究的基础上,识别出层状硫化物型、层状矽卡岩型和接触交代矽卡岩型三类矿体,及相对应的3种类型矿石。3类矿石在矿物组合、结构构造和矿物学特征等方面有明显差异,分别显示出原生沉积、叠加改造和岩浆热液成因特征。选择代表性脉石矿物和矿石矿物进行矿物化学研究,认为石榴子石是岩浆期后热液渗滤交代作用的产物,层状矽卡岩中石榴子石相对富Fe,而接触交代矽卡岩中石榴子石相对富Al;矿区内存在2类黄铁矿,即胶状黄铁矿和粒状黄铁矿,分别对应原生沉积成因和岩浆热液交代成因;磁铁矿是与矽卡岩有关的岩浆期后热液交代作用的产物,层状矽卡岩中磁铁矿相对富Mg O和Mn O,贫Al2O3,受地层影响明显,而接触交代矽卡岩中磁铁矿相对富Al2O3,贫Mg O和Mn O,受岩浆岩影响明显。武山铜矿床的形成经历了原生沉积作用、岩浆热液交代作用及叠加改造作用等复杂成矿过程。  相似文献   

5.
东天山红云滩铁矿赋存于下石炭统雅满苏组火山碎屑岩地层中.矿体主要呈层状、似层状、透镜状.矿石矿物以大量磁铁矿为主,含少量的磁赤铁矿、镜铁矿、黄铁矿和极少量的黄铜矿等.脉石矿物主要有石榴石、透辉石、阳起石、绿帘石、绿泥石、黑云母、钠长石、石英等.矿石构造以块状构造和浸染状构造为主,局部为条带状构造、脉状构造;矿石结构包括半自形-他形粒状结构、交代结构.围岩蚀变对称分带明显,从矿(化)体到两侧围岩,蚀变呈现从深色到浅色的变化现象.根据矿物共生组合、矿石组构的观察,本次工作识别出矽卡岩期和热液期两个成矿期,进一步细分为4个成矿阶段:矽卡岩阶段、退化蚀变阶段(主成矿期)、热液早期阶段及石英-硫化物阶段.电子探针分析表明石榴石端员组分以钙铁榴石-钙铝榴石系列为主,辉石端员组分以透辉石-钙铁辉石为主,角闪石端员组分主要为阳起石和透闪石,这些特点表明矿区矽卡岩为热液交代钙矽卡岩.磁铁矿的主、微量元素特征表明其形成与矽卡岩密切相关.结合成矿地质特征,认为矽卡岩是由富铁岩浆热液流体沿断裂构造运移、交代下石炭统雅满苏组富钙火山碎屑岩地层而形成的,磁铁矿的形成与矽卡岩的退化变质作用有关.  相似文献   

6.
对安徽新桥矿床进行系统的野外地质调查和矿相学研究发现,层状矿体中的胶状黄铁矿交代矽卡岩磁铁矿矿体,为探讨层状硫化物矿床是早期沉积成因还是岩浆热液成因提供了新的地质约束。对铜陵矿集区内的新桥矿床层状菱铁矿矿体和凤凰山矽卡岩型矿体中的菱铁矿开展了Fe同位素组成的对比研究,结果显示:新桥矿床菱铁矿与典型低温热液脉型矿床和沉积铁矿中的菱铁矿在Fe同位素组成特征上有所不同,而与凤凰山矽卡岩型矿床中的菱铁矿更为接近;新桥矿床中胶状黄铁矿和菱铁矿相对于磁铁矿富集Fe的轻同位素,表明磁铁矿不是过去认为的由胶状黄铁矿和菱铁矿矿胚层经热液改造形成,而是与典型的岩浆热液有关。新桥矿区层状硫化物矿体和矽卡岩型矿体中,近岩体矽卡岩和最早形成的金属矿物磁铁矿比岩体更为富集Fe的轻同位素,而赋矿围岩比岩体更为富集Fe的重同位素。同时,不同矿化阶段形成的含铁矿物和不同空间位置的硫化物中的Fe同位素组成呈现出时空分带现象,Fe同位素组成的时空演化特征与流体出溶、流体演化非常一致,并且符合同位素分馏的基本理论,表明层状硫化物矿体和矽卡岩型矿体具有相同的成矿物质来源,为同一流体体系演化的产物。新桥矿区岩相学的研究结果和Fe同位素组成特征均表明,新桥层状硫化物矿床不是海西期喷流沉积成矿作用的产物,而是燕山期热液成矿作用的产物,为一个典型的热液成因矿床。  相似文献   

7.
乌吐布拉克中型铁矿床赋存于上志留统—下泥盆统康布铁堡组变质火山-沉积岩系中,矿体呈似层状、透镜状,矿体及其周围发育大量矽卡岩矿物。电子探针分析表明石榴石端员组分以钙铁榴石-钙铝榴石系列为主,辉石端员组分以透辉石为主,角闪石端员组分主要为铁镁钙闪石,这些特点表明矿区矽卡岩为交代矽卡岩中的钙矽卡岩。磁铁矿的主要组分、稀土及微量元素表明其形成与矽卡岩密切相关。结合矿床地质特征,认为矽卡岩是由岩浆热液流体交代康布铁堡组基性火山岩(熔岩和火山碎屑岩)及灰岩而形成的,磁铁矿的形成与矽卡岩的退化变质作用有关。  相似文献   

8.
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   

9.
对邯邢地区白涧铁矿矿体和岩体中磁铁矿的成分特征进行详细的成分分析,通过成因矿物学研究认为白涧铁矿矿床主要为接触交代成因,而非矿浆贯入成矿。富铁的岩浆热液在有利的断裂构造条件下充填到接触带和围岩裂隙当中,与碳酸盐围岩发生接触交代作用,形成矽卡岩型矿床。研究发现,矿区内磁铁矿以自形-半自形为主,部分有被赤铁矿、黄铁矿、黄铜矿等矿物交代的现象.围岩蚀变以矽卡岩化和钠长石化为主,具有分带性。矿体磁铁矿与岩体磁铁矿相比表现出富Mg、Mn、Si、Ca贫Fe2+、V、Cr的特征,且与典型的矿浆型磁铁矿成分差别明显。根据成因投图及单位分子中各阳离子数之间的协变图解发现,Mg、Mn与Fe2+、Si与Fe3+呈现明显的负相关,Ca与Si呈现正相关。此外,成矿过程中发生的非氧化还原反应亦可以解释矿区上方出现气孔状矿石的现象,这些成分之间的差异、相关性及发生的非氧化还原反应具有典型矽卡岩型矿床的特征。  相似文献   

10.
小常山铁矿位于新疆北山裂谷带西段,矿体赋存于辉长岩、辉长岩和大理岩接触带中,部分赋存于花岗闪长岩和大理岩接触带。前人研究辉长岩年龄为276±1.2Ma,与坡北铜镍硫化物岩浆矿床形成年龄一致,同属早二叠世。小常山铁矿中可见有明显的岩浆贯入现象。矿体主要呈透镜状、块状、脉状、薄层状。金属矿物主要为磁铁矿,含极少量的褐铁矿和黄铁矿;近矿围岩蚀变较弱,主要有石榴子石化、绿帘石化、大理岩化。电子探针研究表明,磁铁矿FeOT含量范围较大,主要分布在85%范围以上,Al_2O_3含量相对较高,TiO_2-Al_2O_3-(MgO+MnO)图解、TiO_2-Al_2O_3-MgO图解均显示热液接触交代成因特点,表明小常山铁矿的形成和岩浆热液的交代作用有关。石榴子石属于钙铝榴石-钙铁榴石系列,与典型矽卡岩矿床的石榴子石端员组分组成有一定差别。结合小常山铁矿体地质特征以及电子探针分析测试等研究,认为小常山铁矿是多成因的复合型矿床,具有岩浆成因和热液成因特征,但后者是主要成因。  相似文献   

11.
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   

12.
Most skarn deposits are closely related to granitoids that intruded into carbonate rocks. The Cihai (>100 Mt at 45% Fe) is a deposit with mineral assemblages and hydrothermal features similar to many other typical skarn deposits of the world. However, the iron orebodies of Cihai are mainly hosted within the diabase and not in contact with carbonate rocks. In addition, some magnetite grains exhibit unusual relatively high TiO2 content. These features are not consistent with the typical skarn iron deposit. Different hydrothermal and/or magmatic processes are being actively investigated for its origin. Because of a lack of systematic studies of geology, mineral compositions, fluid inclusions, and isotopes, the genetic type, ore genesis, and hydrothermal evolution of this deposit are still poorly understood and remain controversial.The skarn mineral assemblages are the alteration products of diabase. Three main paragenetic stages of skarn formation and ore deposition have been recognized based on petrographic observations, which show a prograde skarn stage (garnet-clinopyroxene-disseminated magnetite), a retrograde skarn stage (main iron ore stage, massive magnetite-amphibole-epidote ± ilvaite), and a quartz-sulfide stage (quartz-calcite-pyrite-pyrrhotite-cobaltite).Overall, the compositions of garnet, clinpyroxene, and amphibole are consistent with those of typical skarn Fe deposits worldwide. In the disseminated ores, some magnetite grains exhibit relatively high TiO2 content (>1 wt.%), which may be inherited from the diabase protoliths. Some distinct chemical zoning in magnetite grains were observed in this study, wherein cores are enriched in Ti, and magnetite rims show a pronounced depletion in Ti. The textural and compositional data of magnetite confirm that the Cihai Fe deposit is of hydrothermal origin, rather than associated with iron rich melts as previously suggested.Fluid inclusions study reveal that, the prograde skarn (garnet and pyroxene) formed from high temperature (520–600 °C), moderate- to high-salinity (8.1–23.1 wt.% NaCl equiv, and >46 wt.% NaCl equiv) fluids. Massive iron ore and retrograde skarn assemblages (amphibole-epidote ± ilvaite) formed under hydrostatic condition after the fracturing of early skarn. Fluids in this stage had lower temperature (220°–456 °C) and salinity (8.4–16.3 wt.% NaCl equiv). Fluid inclusions in quartz-sulfide stage quartz and calcite also record similar conditions, with temperature range from 128° to 367 °C and salinity range from 0.2 to 22.9 wt.% NaCl equiv. Oxygen and hydrogen isotopic data of garnet and quartz suggest that mixing and dilution of early magmatic fluids with external fluids (e.g., meteoric waters) caused a decrease in fluid temperature and salinity in the later stages of the skarn formation and massive iron precipitation. The δ18O values of magnetite from iron ores vary between 4.1 and 8.5‰, which are similar to values reported in other skarn Fe deposits. Such values are distinct from those of other iron ore deposits such as Kiruna-type and magmatic Fe-Ti-V deposits worldwide. Taken together, these geologic, geochemical, and isotopic data confirm that Cihai is a diabase-hosted skarn deposit related to the granitoids at depth.  相似文献   

13.
Magnetite, as a genetic indicator of ores, has been studied in various deposits in the world. In this paper, we present textural and compositional data of magnetite from the Qimantag metallogenic belt of the Kunlun Orogenic Belt in China, to provide a better understanding of the formation mechanism and genesis of the metallogenic belt and to shed light on analytical protocols for the in situ chemical analysis of magnetite. Magnetite samples from various occurrences, including the ore–related granitoid pluton, mineralised endoskarn and vein–type iron ores hosted in marine carbonate intruded by the pluton, were examined using scanning electron microscopy and analysed for major and trace elements using electron microprobe and laser ablation–inductively coupled plasma–mass spectrometry. The field and microscope observation reveals that early–stage magnetite from the Hutouya and Kendekeke deposits occurs as massive or banded assemblages, whereas late–stage magnetite is disseminated or scattered in the ores. Early–stage magnetite contains high contents of Ti, V, Ga, Al and low in Mg and Mn. In contrast, late–stage magnetite is high in Mg, Mn and low in Ti, V, Ga, Al. Most magnetite grains from the Qimantag metallogenic belt deposits except the Kendekeke deposit plot in the " Skarn " field in the Ca+Al+Mn vs Ti+V diagram, far from typical magmatic Fe deposits such as the Damiao and Panzhihua deposits. According to the(Mg O+Mn O)–Ti O2–Al2O3 diagram, magnetite grains from the Kaerqueka and Galingge deposits and the No.7 ore body of the Hutouya deposit show typical characteristics of skarn magnetite, whereas magnetite grains from the Kendekeke deposit and the No.2 ore body of the Hutouya deposit show continuous elemental variation from magmatic type to skarn type. This compositional contrast indicates that chemical composition of magnetite is largely controlled by the compositions of magmatic fluids and host rocks of the ores that have reacted with the fluids. Moreover, a combination of petrography and magnetite geochemistry indicates that the formation of those ore deposits in the Qimantag metallogenic belt involved a magmatic–hydrothermal process.  相似文献   

14.
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   

15.
在长江中下游地区,与白垩纪陆相火山-侵入岩有关的铁多金属矿床在空间上绝大多数发育于白垩纪火山盆地,仅程潮和金山店出现于隆起区;成矿时间上分为两个时代,即133~130Ma和127~125Ma。按照成矿物质来源和成矿过程,鉴别出4个成矿系统:即在隆起区与石英闪长岩有关的矽卡岩铁矿(系统1);在火山盆地内,与大王山(或砖桥)旋回火山-次火山活动有关的铁多金属矿床(包括,磷灰石-磁铁矿型铁矿、类矽卡岩型铁矿、矿浆型铁矿、热液型硫铜金矿、热液型铅锌矿)(系统2)和与二长-正长岩有关的矽卡岩型铁矿(系统3);与娘娘山(或浮山)旋回火山-次火山活动有关的铜(金)矿和金铀矿(系统4)。盆地内和隆起区的矽卡岩型铁矿形成时间基本一致,略晚于与辉石闪长玢岩有关的铁多金属矿床(系统2), 但早于铜金铀为主的成矿系统4。前人以系统2中的磷灰石-磁铁矿型铁矿、类矽卡岩型铁矿和矿浆型铁矿为主,结合其他一些少见或不具工业意义的铁矿类型,提出一个具有广泛影响的玢岩铁矿成矿模式。此文以玢岩铁矿成矿模式为基础,结合4个成矿系统的基本特点,提出了白垩纪陆相火山-侵入岩有关的铁多金属矿床模型。以上这些具有成因联系的矿床系统和类型及其分带互为找矿标志。  相似文献   

16.
The Middle-Lower Yangtze (Changjiang) River Valley metallogenic belt is located on the northern margin of the Yangtze Craton of eastern China. Most polymetallic deposits in the Changjiang metallogenic belt are clustered in seven districts where magmatism of Mesozoic age (Yanshanian tectono-thermal event) is particularly extensive. From west to east these districts are: E-dong, Jiu-Rui, Anqing-Guichi, Lu-Zong, Tong-Ling, Ning-Wu and Ning-Zhen. World-class iron ore deposits occur in the Lu-Zong and Ning-Wu ore clusters, which are mainly located in continental fault-bound volcanic-sedimentary basins. One of these deposits is the Longqiao iron deposit, discovered in the northern part of the Lu-Zong Basin in 1985. This deposit consists of a single stratabound and stratiform orebody, hosted in sedimentary carbonate rocks of the Triassic Dongma'anshan Formation. A syenite pluton (Longqiao intrusion) is situated below the deposit. The iron ore is massive and disseminated and the ore minerals are mainly magnetite and minor pyrite. Wall rock alteration mostly consists of skarn minerals, such as diopside, garnet, potassic feldspar, quartz, chlorite, phlogopite and anhydrite. Thin sedimentary siderite beds of Triassic age occur as relict laminated ore at the top and the margin of the magnetite orebody. These sideritic laminae are part of Triassic evaporite-bearing carbonate deposits (Dongma'anshan Formation).Sulfur isotopic compositions show that the sulfur in the deposit was derived from a mixture of magmatic hydrothermal fluids and carbonate–evaporite host rocks. Similarly, the C and O isotopic compositions of limestones from the Dongma'anshan Formation indicate that these rocks interacted with magmatic hydrothermal fluids. The O isotopic compositions of the syenitic rocks and minerals from the deposit show that the hydrothermal magnetite and skarn minerals were formed from magmatic fluids. The Pb isotopic compositions of sulfides are similar to those of the Longqiao syenite. Phlogopite coexisting with magnetite in the magnetite ores yielded a plateau age of 130.5 ± 1.1 Ma (2σ), whereas the LA-ICP MS age of the syenite intrusion is 131.1 ± 1.5 Ma, which is slightly older than the age of phlogopite.The Longqiao syenite intrusion may have crystallized from a parental alkaline magma, generated by partial melting of lithospheric mantle, during extensional tectonics. The ore fluids were probably first derived from magma at depth, later emplaced in the sedimentary rocks of the Dongma'anshan Formation, where it interacted with siderite and evaporite-bearing carbonate strata, resulting in the formation of magnetite and skarn minerals. The Longqiao iron deposit is a skarn-type stratabound and stratiform mineral system, genetically and temporally related to the Longqiao syenite intrusion. The Longqiao syenite is part of the widespread Mesozoic intracontinental magmatism (Yanshanian event) in eastern China, which has been linked to lithospheric delamination and asthenospheric upwelling.  相似文献   

17.
在对前人典型矿床研究的基础上,总结了湖南省铅锌金银多金属矿床的地质特征、成因类型及成矿规律,重点分析了13处铅锌金银多金属(铜、钨、锡等)矿床(体)的地质特征及成矿机制.湖南省铅锌金银多金属矿床包括接触交代型(夕卡岩型)、岩浆热液型(充填交代型及蚀变岩型)和浅成中-低温热液型(沉积热液再造型)3个三级(四级)成因类型....  相似文献   

18.
西二区铁铜矿床是东天山卡拉塔格地区近年来新发现的矿床,但其矿床成因类型尚不明确.通过开展系统的电子探针、流体包裹体及H、O同位素研究,结果表明矿体赋存于大南湖组火山岩-火山碎屑岩中,受断裂控制,矿体呈似层状、透镜状.矿石结构主要为粒状结构和交代结构,矿石构造以块状构造和条带状构造为主.金属矿物主要为磁铁矿,脉石矿物主要为石榴子石、绿帘石、绿泥石、方解石等.成矿过程可划分为干矽卡岩、磁铁矿、石英-硫化物、碳酸盐这4个阶段.电子探针表明矿床早期形成钙铁榴石,磁铁矿阶段形成富铁矿石和富铁绿帘石.流体包裹体研究表明,从早到晚,成矿温度和盐度逐渐降低.H-O同位素表明成矿流体以岩浆水为主,演化至大气降水.由此可知西二区铁铜矿床属于矽卡岩型铁铜矿床.   相似文献   

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