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1.
瓦房店金伯利岩热液蚀变强烈,原岩矿物组分几乎蚀变殆尽,显微镜下对蚀变矿物鉴定相当困难.利用X射线粉晶衍射技术对蚀变金伯利岩物相进行系统检测,结果显示:42号岩管金伯利岩主要矿物为蛇纹石、金云母和滑石,有少量方解石、锐钛矿、磷灰石、石英、钛铁矿、钙钛矿、榍石、磁铁矿和绿泥石;石灰窑1号无矿金伯利岩岩管主要矿物为蛇纹石、金云母和白云石,有少量方解石、锐钛矿、磷灰石、滑石、磁铁矿和绿泥石;9号无矿金伯利岩岩脉主要矿物为方解石和石英,有少量绿泥石和重晶石;51号贫矿金伯利岩岩管主要矿物为蛇纹石和金云母,方解石化作用不均匀,白云石化作用普遍,有少量锐钛矿、滑石、磁铁矿、绿泥石、磷灰石、钛铁矿、石英;30号贫矿岩管样品风化严重,主要矿物为蒙脱石,有少量方解石、滑石、蛇纹石、榍石、磷灰石.实践证明,采用X射线粉晶衍射仪鉴定金伯利岩蚀变矿物组合是一种非常可行的技术手段.  相似文献   

2.
郯庐断裂带是太平洋西岸的中国东部乃至东北亚最重要的一条深断裂带,影响着中国东部的岩浆活动和有关固体矿产(金多金属、金刚石等)和能源(油气)的产出。该断裂的山东段被称为沂沭断裂带,其东侧的胶东金矿带是中国最重要的金矿床集中区,西侧则分布有金刚石(蒙阴金伯利岩群)、石油(胜利油田)等资源- 能源,其研究的理论意义和经济意义重大。借助于场发射扫描电镜支持下的自动矿物识别表征系统(AMICS),笔者从郯庐断裂带西侧的深部岩浆岩(金伯利岩和碳酸岩- 碱性杂岩)矿物组合中,识别出具有标志性的矿物组合,主要包括:① 金伯利岩的典型矿物组合为镁铝榴石- 钙铁榴石- 钙钛矿- 金云母- 磁铁矿- 铬铁矿±斜硅镁石±自然硅±金刚石等,并首次观察到自然硅,蚀变矿物组合——金云母- 富钛磁铁矿- 钛铁矿- 富钛尖晶石- 绿泥石等,这种矿物组合充分反映了较为还原的深部流体条件;② 碱性杂岩的典型矿物组合——方解石- 氟碳铈矿- 氟碳钙铈矿,叠加改造矿物组合——重晶石- 天青石- 白云石等。在碱性杂岩中,还观察到黄铁矿中含有异常高的深源的稀贵金属元素(Au、Co、Pt、Ru、Os、Ir、 Re等)。郯庐断裂带山东段(沂沭断裂带)岩浆岩中深部来源的矿物组合特征,为矿床成因研究和深部资源探测提供了重要信息。  相似文献   

3.
中国金伯利岩中的单斜辉石   总被引:3,自引:0,他引:3  
董振信 《地质学报》1992,66(1):35-47
本文对我国金伯利岩中,作为巨晶、粗晶、基质相矿物、与镁铝榴石和钛铁矿的连生体、深源岩石包体矿物及金刚石中包体矿物产出的单斜辉石的粒度、形态、颜色及蚀变壳、矿物种属、化学成分特征、端员组分、红外光谱等进行了研究。并与玄武岩中的巨晶及其深源岩石包体矿物、钾镁煌斑岩和云煌岩中的单斜辉石作了对比。研究了单斜辉石和镁铝榴石共生对。探讨了金伯利岩中单斜辉石的成因,形成的温、压条件及所反映出的金伯利岩体形成的构造环境,指出了该矿物在找寻金刚石矿工作中的指示标志。  相似文献   

4.
迟广成  伍月 《岩矿测试》2014,33(3):353-358
晶体矿物学理论认为不同成岩环境金伯利岩中尖晶石族矿物由于形成物理化学条件不同,其晶体结构和化学成分会发生明显的变化,通过对无矿、贫矿、富矿金伯利岩岩管中的尖晶石族矿物晶胞参数和化学成分的测定,研究尖晶石族矿物化学成分和晶胞参数变化与无矿、贫矿、富矿金伯利岩的内在关系,可以提高金伯利岩型金刚石矿床找矿效率。为了确定辽宁瓦房店金伯利岩中的尖晶石族矿物种属,探讨辽宁瓦房店金伯利岩中尖晶石族矿物化学成分和晶胞参数与金伯利岩含矿性关系,本文运用电子探针波谱仪对50件尖晶石族矿物中的MgO、FeO、TiO2、Al2O3、MnO及Cr2O3进行微区化学成分分析,运用单晶X射线衍射仪对136个尖晶石族矿物晶胞参数进行测定。数据统计显示:瓦房店金伯利岩中尖晶石族矿物为铬铁矿和镁铬铁矿,以化学分子式中A、B组主要阳离子占位特征为基础,可把矿区的尖晶石族矿物划分为10个亚种;如果用尖晶石族矿物化学成分中Cr2O3与(Cr2O3+Al2O3)含量的比值Cr'来表示尖晶石族矿物与金伯利岩含矿性的关系,金伯利岩岩体含矿性由富矿→中等含矿→贫矿,相应岩体中尖晶石族矿物Cr'值分别为89.5%、83.4%~87.1%和70.2%,逐渐变低;从无矿金伯利岩岩体→贫矿和中等含矿金伯利岩岩体→富矿金伯利岩岩体,金伯利岩体中第一世代尖晶石族矿物晶胞参数分别为0.831~0.832 nm、0.834~0.836 nm、0.837 nm,有逐渐变大的趋势。本文认为,辽宁瓦房店金伯利岩中第一世代尖晶石族矿物晶胞参数大小和Cr'参数可以作为判断辽宁瓦房店金伯利岩含矿性的指示标型。  相似文献   

5.
寻找超高压地幔矿物的储存库——豆荚状铬铁矿   总被引:20,自引:2,他引:20  
沿印度河—雅鲁藏布江缝合线出露的罗布莎蛇绿岩块位于拉萨南东 2 0 0km处 ,含有地幔矿物群。罗布莎蛇绿岩主要由地幔方辉橄榄岩、堆晶岩和蛇纹混杂岩组成。由 60~ 70种矿物组成的一个地幔矿物群出现在方辉橄榄岩相内的豆荚状铬铁矿中。这些矿物包括 :自然元素矿物 :金刚石、石墨、金、铜、铁、镍、硅、铬、铝、钨、锌、铅、锡 ;铂族矿物 :铱锇矿、锇铱矿、铱锇钌矿、含锇铱矿、含铱钌矿、Ir Os硫化物 ;合金 :FeSi,FeNi,SiC ,CrC ,NiC ,NiCrC ,Au Ag ,Ag Au ,Ag Sn ,AlFe ,IrFe ,NiFeCr,NiIrFe ,FeC ,FePtPd ;硫 (砷 )化物 :黄铁矿、毒砂、镍黄铁矿、闪锌矿、方铅矿、三方闪锌矿 ;氧化物 :铬铁矿、含硅镁尖晶石、刚玉、方镁石、金红石、方铁矿、锰方铁矿、CaO、石英 ;磷酸盐 :磷灰石 ;硅酸盐 :橄榄石、斜顽辉石、铬透辉石、锆石、榍石、硅线石、蓝晶石、角闪石、白云母、黑云母、金云母、钙铬榴石、钙铁榴石、镁铝榴石、铬绿泥石、蛇纹石、八面体假象蛇纹石、八面体假象绿泥石 ;碳酸盐 :方解石、白云石等。文中只介绍几个矿物 ,如金刚石、碳硅石、富Cr铬铁矿、富Si顽辉石、富Mg橄榄石、锆石、含硅镁尖晶石、八面体硅酸盐以及含水硅酸盐的深部爆破结构。这些矿物信息对地幔研究具有重要意义。  相似文献   

6.
新疆巴楚地区金伯利质角砾橄榄岩物质组成及含矿性研究   总被引:2,自引:0,他引:2  
鲍佩声  苏犁  翟庆国  肖序常 《地质学报》2009,83(9):1276-1301
本文讨论出露于新疆巴楚瓦吉里塔格地区的一种角砾状超镁铁岩,其结构、成分复杂,由超镁铁岩包体、斑晶(或捕晶)及基质三部分构成。超镁铁岩包体常见单辉辉石岩、纯橄岩,其次有少量橄榄辉石岩。研究表明均属基性岩浆结晶岩,本次研究未见幔源橄榄岩包体;斑晶主要为橄榄石,次为金云母,基质由微晶(10~40μm)单斜辉石、钙铁榴石、钙钛矿、磁铁矿(或含钛磁铁矿)、蛇纹石、碳酸盐及金属硫化物等组成;捕晶包括单斜辉石、褐色角闪石、磷灰石、含钛磁铁矿等。多种地球化学判别图均指示其属金伯利岩类,但低MgO和低Mg#比值、高TFe2O3和CaO等区别于世界典型金伯利岩。与典型金伯利岩有相似之处,该类岩石均具有向右陡倾的REE配分型式,但(La/Yb)n比值略偏低;微量元素蛛网图也与典型金伯利岩基本一致,仅显示更加富集不相容元素,具有更显著K, Ti负异常,且部分样品出现Rb, Zr, P负异常,指示其源区地幔交代程度偏低。鉴于岩石的产状、结构构造、矿物组合和地球化学性质近似于金伯利岩,但缺少高铬铬铁矿、镁铝榴石、镁钛铁矿等金伯利岩指示矿物,故不属典型的金伯利岩,可称之为金伯利质角砾橄榄岩。就少量研究样品所示信息,该类岩石不具有寻找金刚石的潜在远景,但鉴于巴楚及邻区尚有许多角砾状超镁铁岩岩墙和岩脉出露,该区金刚石成矿条件有待更进一步的研究。  相似文献   

7.
青海尕林格铁矿床矽卡岩矿物学及蚀变分带   总被引:6,自引:2,他引:4  
尕林格矽卡岩型铁多金属矿床位于青海省西部祁曼塔格成矿亚带的中部.矿体处于花岗闪长岩与滩间山群白云质大理岩接触带内以及外接触带沿NWW向断裂构造破碎带分布的大理岩和蚀变安山岩内.从侵入接触带往东,蚀变岩石分带性明显,主要划分出3种含矿矽卡岩带:含Fe的镁质矽卡岩带,含Fe、Cu的钙质矽卡岩带,含Fe、Pb、Zn的锰-钙质矽卡岩带.镁质矽卡岩带的矽卡岩矿物主要包括镁橄榄石及其蚀变矿物蛇纹石、粒硅镁石、透辉石、斜绿泥石,有关的金属矿物主要为磁铁矿.钙质矽卡岩带的主要矽卡岩矿物有绿钙闪石、铁阳起石、钙铁辉石、铁叶绿泥石、磷灰石、中长石,有关的金属矿物为磁铁矿、磁黄铁矿和少量黄铜矿.与锰-钙质矽卡岩有关的矽卡岩矿物有锰钙铁辉石、钙铁榴石、钙铝榴石、铁镁绿泥石、绿帘石、硅灰石、磷灰石、钙长石等,金属矿物有方铅矿、闪锌矿、磁铁矿和磁黄铁矿.通过对矿物组合的研究,确定了不同矿物组合的生成关系,划分了成矿期次,分为矽卡岩期、退化蚀变期和金属硫化物期,矽卡岩期又分为早、晚2个阶段.矽卡岩早期生成的石榴子石的化学成分端员以钙铝榴石(Gro67~ 99)为主,辉石的成分端员以透辉石(Di96~ 98)为主;矽卡岩期晚期阶段石榴子石的化学成分端员以钙铁榴石(Ad78~98)为主,辉石的成分端员以钙铁辉石(Hd68~ 84)为主.与中国东部矽卡岩型矿床进行对比后发现,锰-钙质矽卡岩带是一种向锰质矽卡岩带过渡的类型,对于寻找与锰质矽卡岩有关的矿化类型具有指示意义.  相似文献   

8.
邯邢铁矿的蚀变矿化   总被引:2,自引:1,他引:2  
冯钟燕  赖勇 《矿床地质》1991,10(1):71-80
邯邢地区矽卡岩铁矿的蚀变矿化包括三个阶段:石榴石-辉石阶段,形成矽卡岩;石英-铁氧化物阶段,沉淀大量磁铁矿,矽卡岩发生绿泥石化和绿帘石化;石英-硫化物阶段,伴随着石英、绿泥石、透闪石、蛇纹石和方解石蚀变,有少量黄铁矿和黄铜矿等形成。详细的岩矿工作结合着流体包裹体和稳定同位素研究,对石榴石、透辉石、磁铁矿和方解石沉淀时的温度、压力、矿液组分、xco_2/xH_2o、δD、δ~(18)O。δ~(13)C和fo_2等作了估计。  相似文献   

9.
铬铁矿是金伯利岩型金刚石矿床含矿性重要指示矿物之一.通过对山东蒙阴金刚石矿区无矿、贫矿、中等含矿、富矿金伯利岩岩筒中的铬铁矿红外光谱系统采集,寻找不同金伯利岩岩筒中铬铁矿红外谱图参数特征与金伯利岩含矿性的关系,以达到判断金伯利岩体无矿、贫矿还是富矿的目的.不同含矿性金伯利岩岩筒中50个铬铁矿红外光谱参数特征统计显示:铬铁矿红外光谱A峰吸光度与高频峰吸光度平均比值从无矿、贫矿、中等含矿到富矿金伯利岩岩筒,数据依次为0.71、0.73、0.83~0.93、1.09,显示出明显的找矿指示意义.  相似文献   

10.
金伯利岩形成的构造环境 根据J.B.道森的定义,金伯利岩是具有斑状结构的蛇纹石化和碳酸盐化的云母——橄榄岩。含有以高压矿物如镁铝榴石和硬玉质透辉石为特征的超基性岩类结核。由  相似文献   

11.
在野外地质调查的基础上,通过显微薄片观察、电子探针分析、X射线衍射分析、红外光谱分析、X射线荧光光谱分析、微量元素分析、稀土元素分析等现代测试方法对河北小寺沟蛇纹石玉的矿物成分、化学成分进行了研究。结果表明,小寺沟蛇纹石玉为富镁碳酸盐岩蚀变形成的蛇纹岩,其主要矿物成分为利蛇纹石,次要矿物成分有方解石、白云石、透辉石、金云母、磁铁矿、黄铁矿等。蛇纹石玉的稀土元素来源于围岩大理岩,其稀土元素球粒陨石标准化配分图与其围岩大理岩的稀土配分图非常相似,为陡右倾型,具有稀土元素总量较低、富集轻稀土、具δEu负异常的特点。  相似文献   

12.
Kimberlite sills emplaced in granite located near the town of Wemindji (Quebec, Canada) range from 2 cm to 1.2 m in thickness. The sills exhibit a wide variation in macroscopic appearance from fine-grained aphanitic dolomitic hypabyssal kimberlite to ilmenite/garnet macrocrystal hypabyssal kimberlite. Diatreme or crater facies rocks are not present. Multiple intrusions are present within the sills, and graded bedding and erosional features such as cross-bedding are common. The sills exhibit a wide range in their modal mineralogy with respect to the abundances of spinel, apatite, phlogopite and dolomite. Olivine is the dominant macrocryst, with an average composition of Fo90. Garnet macrocrysts are low chrome (2–3 wt. %) pyrope (G1/G9 garnet). Ilmenite occurs as rounded macrocrysts (7–13 wt. % MgO). Phlogopite microphenocrysts are Ti-poor and represent a solid solution between phlogopite and kinoshitalite end members. Spinel compositions mainly represent the Cr-poor members of the qandilite–ulvöspinel–magnetite series. The principle carbonate comprising the groundmass is dolomite, with lesser later-forming calcite. Accessory minerals include apatite, Sr-rich calcite, Nb-rich rutile, baddeleyite, monazite-(Ce) and barite. While some of these accessory minerals are atypical of kimberlites in general, it is expected that differentiation products of an evolved carbonate-rich kimberlite magma will crystallize these phases. The Wemindji kimberlites offer insight into the process of crystal fractionation and differentiation in evolved kimberlite magmas. The macroscopic textural features observed in the Wemindji sills are interpreted to represent flow differentiation of a mantle-derived, very fluid, low viscosity carbonate-rich kimberlite. The diverse modes and textural features result entirely from flow differentiation and multiple intrusions of different batches of genetically related kimberlite magma. The mineralogy of the Wemindji kimberlites has some similarities to that of the Wesselton and Benfontein calcite kimberlite sills but differs in detail with respect to dominant carbonate (i.e. dolomite versus calcite), and the character of the rare earth-bearing accessory minerals (i.e. monazite-(Ce) versus rare earth fluorocarbonates).  相似文献   

13.

Renard 65, a diamondiferous pipe in the Neoproterozoic Renard kimberlite cluster (Québec, Canada), is a steeply-dipping and downward-tapering diatreme comprised of three pipe-filling units: kimb65a, kimb65b, and kimb65d. The pipe is surrounded by a marginal and variably-brecciated country rock aureole and is crosscut by numerous hypabyssal dykes: kimb65c. Extensive petrographic and mineralogical characterization of over 700 m of drill core from four separate drill holes, suggests that Renard 65 is a Group I kimberlite, mineralogically classified as phlogopite kimberlite and serpentine-phlogopite kimberlite. Kimb65a is a massive volcaniclastic kimberlite dominated by lithic clasts, magmaclasts, and discrete olivine macrocrysts, hosted within a fine-grained diopside and serpentine-rich matrix. Kimb65b is massive, macrocrystic, coherent kimberlite with a groundmass assemblage of phlogopite, spinel, perovskite, apatite, calcite, serpentine and rare monticellite. Kimb65c is a massive, macrocrystic, hypabyssal kimberlite with a groundmass assemblage of phlogopite, serpentine, calcite, perovskite, spinel, and apatite. Kimb65d is massive volcaniclastic kimberlite with localized textures that are intermediate between volcaniclastic and coherent, with tightly packed magmaclasts separated by a diopside- and serpentine-rich matrix. Lithic clasts of granite-gneiss in kimb65a are weakly reacted, with partial melting of feldspars and crystallization of richterite and actinolite. Lithic clasts in kimb65b and kimb65d are entirely recrystallized to calcite + serpentine/chlorite + pectolite and display inner coronas of diopside-aegirine and an outer corona of phlogopite. Compositions are reported for all minerals in the groundmass of coherent kimberlites, magmaclasts, interclast matrices, and reacted lithic clasts. The Renard 65 rocks are texturally classified as Kimberley-type pyroclastic kimberlites and display transitional textures. The kimberlite units are interpreted to have formed in three melt batches based on their distinct spinel chemistry: kimb65a, kimb65b and kimb65d. We note a strong correlation between the modal abundances of lithic clasts and the textures of the kimberlites, where increasing modal abundances of granite/gneiss are observed in kimberlites with increasingly fragmental textures.

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14.
通过偏光显微镜、电子探针、X射线粉末衍射、傅里叶变换红外光谱、X射线荧光光谱、微量元素测试等对丹东绿玉石样品进行了常规矿物学、谱学特征研究。结果表明,丹东绿玉石是以蛇纹石为主要矿物,镁橄榄石、白云石、水镁石、绿泥石、伊利石为次要矿物的蛇纹石化镁橄榄石矽卡岩。  相似文献   

15.
通过偏光显微镜、电子显微镜、电子探针仪、X射线衍射仪、红外光谱仪以及拉曼光谱仪等测试对广西大化玉的宝玉石学特征进行了研究,结果表明大化玉主要由微晶透闪石集合体组成,并含有方解石、透辉石、磷灰石、石英、绿泥石、蛇纹石、滑石、石榴石和褐铁矿等次要矿物。对其硬度、密度、折射率、抗压强度、抗拉强度和韧性等进行了系统测定。通过野外考察以及对室内成矿温度、氢氧同位素、硅同位素和稀土元素等特征进行综合分析,确定大化玉矿床成因类型为层控性接触交代型岩浆热液矿床,根据辉绿岩中锆石U-Pb法测年,确定其成矿年龄为2.6亿年左右,并建立了对应成矿模式图。  相似文献   

16.
X射线粉晶衍射仪在大理岩鉴定与分类中的应用   总被引:2,自引:2,他引:0  
大理岩主要有方解石大理岩、白云石大理岩和菱镁矿大理岩三种。以往大理岩是依据偏光显微镜下观察岩石结构构造及矿物成分进行分类定名,由于方解石、白云石、菱镁矿都属于三方晶系,具有闪突起、高级白干涉色、一轴晶负光性和菱形解理等相同晶体光学特征,偏光显微镜下区分十分困难。为了准确鉴定大理岩中碳酸盐矿物种类及其相对含量,本文利用岩石薄片偏光显微镜和X射线粉晶衍射技术对32件大理岩岩石样品进行分析测试。岩石薄片鉴定结果表明:大理岩造岩矿物主要有方解石、白云石、菱镁矿、石英、斜长石、白云母、黑云母、绿泥石、黏土和金属矿物。根据岩石结构构造及矿物组分特征,可把32件大理岩样品划分为方解石大理岩、长英质方解石大理岩、石英绿泥白云石大理岩、白云石大理岩、云英质白云石大理岩和菱镁矿大理岩等15个类型。X射线粉晶衍射分析表明:大理岩造岩矿物主要有方解石、白云石、菱镁矿、石英、斜长石、钾长石、云母、绿泥石、滑石和蒙脱石。综合分析认为:岩石薄片偏光显微镜鉴定技术很难区分方解石、白云石和菱镁矿等碳酸盐矿物,以及细小的石英、钾长石和斜长石、滑石和白云母等鳞片状硅酸盐矿物;X射线粉晶衍射分析技术不仅能准确检测出大理岩中方解石、白云石和菱镁矿等碳酸盐矿物种类及相对含量(方解石、白云石和菱镁矿的X射线衍射主峰有明显差异,d值分别为0.303 nm、0.288 nm和0.274 nm),而且能够有效鉴别岩石中粉砂级斜长石、钾长石与石英(三种矿物的X射线衍射主峰d值分别为0.319 nm、0.324 nm、0.334 nm);且能区分蒙脱石、绿泥石、云母和滑石等层状硅酸盐矿物(四种硅酸盐矿物的X射线衍射主峰d值分别为1.400 nm、0.705 nm、0.989 nm、0.938 nm)。综合岩石薄片偏光显微镜鉴定和X射线粉晶衍射分析结果,最终确定32件大理岩样品划分为22个岩石类型。研究认为:仅根据岩石薄片偏光显微镜鉴定或X射线粉晶衍射技术其中一种方法不能准确鉴定大理岩岩石,应将大理岩岩石野外观察、岩石薄片鉴定和X射线粉晶衍射技术结合起来,才能准确确定大理岩岩石类型。  相似文献   

17.
铜厂铜-铁矿床是勉略宁矿集区具有代表性的矿床之一,主要由上部的铜厂铜矿床和下部的杨家坝铁矿床(铜厂铁矿床)组成。根据磁铁矿和硫化物的相对含量,铜厂铜-铁矿床的矿石可分为磁铁矿矿石、含硫化物磁铁矿矿石和硫化物矿石三类。系统的岩相学和矿相学研究表明,其矿石矿物主要为磁铁矿、黄铜矿、黄铁矿和磁黄铁矿;矿石结构包括自形-半自形-他形粒状结构、交代残余结构和包含结构,矿石构造包括块状、浸染状、脉状和条带状构造。铜厂铜-铁矿床的围岩蚀变种类较多,且具有一定的分带性,上部铜矿体围岩蚀变以硅化、碳酸盐化和黑云母化为主,以石英、方解石和黑云母为主的蚀变矿物组合显示钾化特征;下部铁矿体围岩蚀变有钠长石化、蛇纹石化、滑石化、透闪石化、碳酸盐化、绿泥石化等,以钠长石、蛇纹石、滑石、透闪石、方解石、白云石、菱铁矿、绿泥石、黑云母和磷灰石等为主的蚀变矿物组合显示钠化特征。铜厂铜-铁矿床中磁铁矿的TiO2含量小于1.72%,Al2O3含量小于1.81%,均显示热液磁铁矿的特征,结合铜矿石脉穿插铜厂闪长岩及二者突变接触的地质特征,说明铜厂铜-铁矿床的形成与热液活动密切相关。同时,铜厂铜-铁矿床形成于早古生代加里东期,勉略宁矿集区在该时期处于大陆裂谷的扩张环境中,与铁氧化物-铜-金(Iron Oxide-Copper-Gold,简称IOCG)矿床的形成环境类似。通过与典型IOCG矿床地质特征、矿化蚀变特征、矿物组合特征、矿物地球化学特征及大地构造背景的系统对比,初步提出铜厂铜-铁矿床应属于IOCG矿床。  相似文献   

18.
Phenocrysts of phlogopite from a micaceous kimberlite contain finely interlayered serpentine. These phenocrysts occur in the kimberlite groundmass and are altered along the mica layers and are slightly deformed. Lizardite is the predominant serpentine mineral, but chrysotile and mixed structures also occur. The lizardite occurs as lamellae within phlogopite, oriented such that (001) layers of the two minerals are parallel and the [100] direction of lizardite is parallel to the [100] or 110 directions of phlogopite. The serpentinized regions of phlogopite are localized and extensive along the (001) layers. Chrysotile fibers and chrysotile-like curled serpentine occur within regions of disrupted material, and polygonal structures occur in folded lizardite lamellae. Textural relations suggest three events: 1) replacement of phlogopite by lizardite, 2) deformation of the phenocrysts, and 3) partial transformation of the lizardite to chrysotile-like structures. Deformation features include openings along (001), folds, and regions of disrupted or broken material. The folded and broken material consists of lamellar lizardite and phlogopite, indicating that lamellar replacement preceded deformation. Intergrowths of lizardite and curled serpentine are associated with cleavage openings and voids in disrupted material, suggesting that a partial transformation of lizardite to chrysotile occurred within openings created by deformation. Clay minerals also occur within phlogopite as either a minor product of serpentinization or of late-stage alteration.  相似文献   

19.

Distinctly different groundmass mineralogy characterise the hypabyssal facies, Mesoproterozoic diamondiferous P3 and P4 intrusions from the Wajrakarur Kimberlite Field, southern India. P3 is an archetypal kimberlite with macrocrysts of olivine and phlogopite set in a groundmass dominated by phlogopite and monticellite with subordinate amounts of serpentine, spinel, perovskite, apatite, calcite and rare baddeleyite. P4 contains mega- and macrocrysts of olivine set in a groundmass dominated by clinopyroxene and phlogopite with subordinate amounts of serpentine, spinel, perovskite, apatite, and occasional gittinsite, and is mineralogically interpreted as an olivine lamproite. Three distinct populations of olivine, phlogopite and clinopyroxene are recognized based on their microtextural and compositional characteristics. The first population includes glimmerite and phlogopite–clinopyroxene nodules, and Mg-rich olivine macrocrysts (Fo 90–93) which are interpreted to be derived from disaggregated mantle xenoliths. The second population comprises macrocrysts of phlogopite and Fe-rich olivine (Fo 81–89) from P3, megacrysts and macrocrysts of Fe-rich olivine (Fo 85–87) from P4 and a rare olivine–clinopyroxene nodule from P4 which are suggested to have a genetic link with the precursor melt of the respective intrusions. The third population represents clearly magmatic minerals such as euhedral phenocrysts of Fe-rich olivine (Fo 85–90) crystallised at mantle depths, and olivine overgrowth rims formed contemporaneously with groundmass minerals at crustal levels. Close spatial association and contemporaneous emplacement of P3 kimberlite and P4 lamproite is explained by a unifying petrogenetic model which involves the interaction of a silica-poor carbonatite melt with differently metasomatised wall rocks in the lithospheric mantle. It is proposed that the metasomatised wall rock for lamproite contained abundant MARID-type and phlogopite-rich metasomatic veins, while that for kimberlite was relatively refractory in nature.

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