993 resultados para Ba(Zr,Ti)O-3


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本文报导了Dy~(3+),Sm~(3+)和Ce~(3+)离子在M_3La_2(BO_3)_4(M=Ca,Sr,Ba)基质中的激发与发射光谱;研究了Dy~(3+)离子黄蓝发射的相强度随基质化合物的组成和结构的不同而呈现的变化规律;讨论了Sm~(3+)离子电荷迁移激发带的能量与基质中近邻阳离子的关系并分析了Sm~(3+)和Eu~(3+)离子4f电子构型对电荷迁移带能量的影响。本文还给出了Dy~(3+),Sm~(3+)和Ce~(3+)离子发光的浓度淬灭值。

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本文以东太平洋海隆13ºN附近E53沉积物岩芯为研究对象,进行了矿物学、全岩化学分析及连续提取分析,探讨了沉积物中的热液活动记录及元素存在形式,并结合已有的测年数据,对研究区域的热液活动过程进行了初步讨论。 E53岩芯分为三层,上层为红褐色沉积层,中层为棕黄色沉积层,下层为灰绿色沉积层。沉积物岩芯的X射线衍射结果显示,E53岩芯上层非晶质的铁锰氧化物含量较高,中下段方解石含量较高。根据元素在岩芯全岩及各相态间的存在状况,将常量及微量元素分组讨论。Fe、Mn元素以铁锰氧化物相为最重要的赋存相,且与全岩样品一致,呈现随深度下降趋势。Al、Ti、Ba主要存在于残留相中;K、Na、Mg主要赋存相为碳酸盐相;Ca、Sr同样主要存在于碳酸盐相中。微量元素Mo、Co、V、Cu、Zn、Ni、Y和Pb元素主要存在于铁锰氧化物相,且含量均随深度增加而下降。Th、Sc、Li和Zr的主要存在于残留相中;Cd、U主要存在于碳酸盐相中。稀土元素存在形式有以下三个特点:1、主要存在于铁锰氧化物相中,并且呈现出随深度增加含量下降的趋势;2、次要存在形式为碳酸盐相,随深度增加含量上升并一度超过残留相中的含量;3、在有机结合相和残留相中含量很低,且变化幅度不大。 根据本文讨论结果,结合前人年代数据,认为E53岩芯中记录的为程度逐步加强且在近期保持稳定的热液活动。

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The Eastern Himalayan Syntaxis (EHS) is one of the strongest deformation area along the Himalayan belt resulted from the collision between Indian plate and the Eurasian Plate since the 50~60Ma, and has sensitivity tracked and preserved the whole collisional processes. It should depend on the detail geological investigations to establish the deformational accommodate mode, and the uplift history, to elucidate the deep structure and the crust-mantle interaction of the Tibet Plateau of the EHS. The deep-seated (Main Mantle Thrusts) structures were exhumed in the EHS. The MMT juxtapose the Gangdese metamorphic basement and some relic of Gangdese mantle on the high Himalayan crystalline series. The Namjagbawa group which is 1200~1500Ma dated by U/Pb age of zircon and the Namla group which is 550Ma dated by U/Pb age of zircon is belong to High Himalayan crystalline series and Gangdese basement respectively. There is some ophiolitic relic along the MMT, such as metamorphic ocean mantle peridotite and metamorphic tholeiite of the upper part of ocean-crust. The metamorphic ocean mantle peridotites (spinel-orthopyroxene peridotite) show U type REE patterns. The ~(87)Sr/~(86)Sr ratios were, 0.709314~0.720788, and the ~(143)Nd/~(144)Nd ratios were 0.512073~0.512395, plotting in the forth quadrant on the ~(87)Sr/~(86)Sr-~(143)Nd/~(144)Nd isotope diagram. Some metamorphic basalt (garnet amphibolite) enclosures have been found in the HP garnet-kynite granulite. The garnet amphibolites can be divided two groups, the first group is deplete of LREE, and the second group is flat or rich LREE, and their ~(87)Sr/~(86)Sr, ~(143)Nd/~(144)Nd ratios were 0.70563~0.705381 and 0.512468~0.51263 respectively. Trace element and isotopic characteristics of the garnet amphibolites display that they formed in the E-MORB environment. Some phlogolite amphibole harzburgites, which exhibit extensive replacement by Phl, Amp, Tc and Dol etc, were exhumed along the MMT. The Phl-Amp harzburgites are rich in LREE and LILE, such as Rb, K etc, and depletes Eu (Eu~* = 0.36 ~ 0.68) and HFSE, such as Nb, Ta, Zr, Hf, P, Ti etc. The trace element indicate that the Phl-Amp harzburgites have island arc signature. Their ~(87)Sr/~(86)Sr are varied from 0.708912 to 0.879839, ~(143)Nd/~(144)Nd from 0.511993 to 0.512164, ε Nd from- 9.2 to - 12.6. Rb/Sr isochrone age of the phlogolite amphibole harzburgite shows the metasomatism took place at 41Ma, and the Amp ~(40)Ar/~(39)Ar cooling age indcate the Phl-Amp harzburgite raising at 16Ma. There is an intense crust shortening resulted from the thrust faults and folds in the Cayu block which is shortened more 120km than that of the Lasha block in 35~90Ma. With the NE corner of the India plate squash into the Gangdese arc, the sinistral Pai shear fault and the dextral Aniqiao shear fault on the both sides of the Great bent of Yalun Zangbu river come into active in 21~26Ma. On the other hand, the right-lateral Gongrigabu strike-slip faults come into activity at the same period, a lower age bound for the Gongrigabu strike-slip fault is estimated to be 23~24Ma from zircon of ion-probe U/Pb thermochronology. The Gongrigabu strike-slip faults connect with the Lhari strike-slip fault in the northwestern direction and with the Saganing strike-slip at the southeastern direction. Another important structure in the EHS is the Gangdese detachment fault system (GDS) which occurs between the sedimental cover and the metamorphic basement. The lower age of the GDS is to be 16Ma from the preliminary 40Ar/39Ar thermochronology of white mica. The GDS is thought to be related to the reverse of the subducted Indian crust and the fast uplift of the EHS. Structural and thermochronology investigation of the EHS suggest that the eastern Tibet and the western Yunnan rotated clockwise around the EHS in the period of 35~60Ma. Later, the large-scale strike-slip faults (RRD, Gaoligong and Saganing fault) prolongate into the EHS, and connect with the Guyu fault and Gongrigabu fault, which suggest that the Indianchia block escape along these faults. Two kind of magmatic rocks in the EHS have been investigated, one is the mantle-derived amphibole gabbro, dioposide diorite and amphibole diorite, another is crust origin biotit-garnet adamellite, biotit-garnet granodiorite and garnet-amphibole-biotite granite. The amphibole gabbro dioposite diorite and amphibole diorite are rich in LREE, and LILE, such as Ba, Rb, Th, K, Sr etc, depleted in HFSE, such as Nb, Ta, Zr, Hf, Ti etc. The ratio of ~(87)Sr/~(86)Sr are from 0.7044 to 0.7048, ~(143)Nd/~(144)Nd are from 0.5126 to 0.5127. The age of the mantle origin magamatic rocks, which result from the partial melt of the raising and decompression anthenosphere, is 8Ma by ~(40)Ar/~(39)Ar dating of amphibole from the diorite. The later crust origin biotite-garnet adamellite, biotite-garnet granodiorite and garnet-amphibole-biotite granite are characterized by aboudance in LREE, and strong depletion of Eu. The ratios of ~(87)Sr-~(86)Sr are from 0.795035 to 0.812028, ~(143)Nd/~(144)Nd from 0.51187 to 0.511901. The ~(40)Ar/~(39)Ar plateau age of the amphibole from the garnet-amphibole-biotite granite is 17.5±0.3Ma, and the isochrone age is 16.8±0.6Ma. Their geochemical characteristics show that the crust-derived magmatic rocks formed from partial melting of the lower curst in the post-collisional environment. A group of high-pressure kaynite-garnet granulites and enclave of high-pressure garnet-clinopyroxene grnulites and calc-silicate grnulites are outcroped along the MMT. The peak metamorphic condition of the high-pressure granulites yields T=800~960 ℃, P=1.4~1.8Gpa, corresponding the condition of 60km depth. The retrograde assemblages of the high-pressure grnulites occur at the condition of T=772.3~803.3 ℃, P=0.63~0.64Gpa. The age of the peak metamorphic assemblages are 45 ~ 69Ma indicated by the zircon U/Pb ion-plobe thermochronology, and the retrograde assemblage ages are 13~26Ma by U/Pb, ~(40)Ar/~(39)Ar thermochronology. The ITD paths of the high-pressure granulites show that they were generated during the tectonic thickening and more rapid tectonic exhumation caused by the subducting of the Indian plate and subsequent break-off of the subducted slab. A great deal of apatite, zircon and sphene fission-track ages, isotopic thermochronology of the rocks in the EHS show that its rapid raising processes of the EHS can be divided into three main periods. There are 35~60Ma, 13~25Ma, 0~3Ma. 3Ma is a turn in the course of raising in the EHS which is characterized by abruptly acceleration of uplifting. The uplift ratios are lower than 1mm .a~(-1) before 3Ma, and higher than 1mm .a~(-1) with a maximum ratio of 30mm .a~(-1) since 3Ma. The bottom (knick point) of the partial anneal belt is 3.8km above sea level in the EHS, and correspond to age of 3Ma determined by fission-track age of apatite. The average uplift ratio is about 1.4 mm .a~(-1) below the knick point. The EHS has raised 4.3km from the surface of 2.36km above sea level since 3Ma estimated by the fossil partial anneal belt of the EHS. We propose a two-stage subduction model (B+A model) basing on Structural, thermochronological, magmatical, metamorphic and geophysical investigations of the EHS. The first stage is the subduction of the Indian continental margin following after the subduction of the Tethys Ocean crust and subsequent collision with the Gangdese arc, and the second stage is the Indian crust injecting into the lower crust and upper mantle of the Tibet plateau. Slab break-off seems to be occurred between these two stages.

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Using knowledge of geology, geochemistry, coal petrology, mineralogy, by means of a variety of advanced measuring methods such as inductively coupled plasma mass spectrometry (ICP-MS), inductively coupled atomic emission spectrometry (ICP-AES), X-ray powder diffraction (XRD), scanning electron microscopy with energy-dispersive spectrometer(SEM-EDS), sequential chemical extract and density fractions, the characteristics of trace elements and minerals in Jurassic Beipiao coal mine under inland limnetic sedimentary environment and in late Permian Jianxin and Qiaotou coal mines under paralic swamp sedimentary environment were studied. Compared with the average concentration in the world bituminous coals, the Beipiao coal was characterized by relatively high contents of Sc, Ti, Cr, Co, Ni, Zn, Se, Sr, Zr, Y, Ba, REE and Th, and lower contents of V, Rb, Cd, Sn, Pb, Bi and U; while the Jianxin coal was relatively enriched in Li, Sc, Ga, Sr, Y, Nb, Sb, Th and U, with low concentration of Be, Co, Ni, Cu, Ge, Zr, Mo, Cd, Cs, Ba, Pb and Bi; and the Qiaotou coal was enriched in Li, Sc, Sr, Nb, Ta, Zr, REE, Hf, Th and U, with low concentration of Be, V, Co, Ni, Cu, Ge, Mo, Cd, Cs, Ba, Tl, Pb and Bi. The concentrations of Ca, Mg and K in Beipiao coal are higher than those in Jianxin coal and Qiaotou coal, while Fe, S and Ti in Beipiao coal are lower than those in Jianxin coal and Qiaotou coal. The proximate analysis of coal samples was carried out, which indicated that Beipiao coal was medium- to high- ash (5.92-60.68%) with low sulphur coal, and Jianxin coal and Qiaotou coal was medium to high ash (8.85-46.33%) with high sulphur. The reflectivity was measured, which explained that Beipiao coal belonged to high volatile bituminous coal, Jianxin coal was low volatile bituminous coal and Qiaotou coal was low volatile anthracite. Quantitative maceral analyses were studied. The characteristics of rare earth elements (REE) were investigated, which showed that the total contents of REE were higher than that of the world's average content. With the increase of coal's metamorphic grade, the total contents of REE decreased from 98.5 X 10"6 of Beipiao coal to 94.2 X 10"6 of Jianxin coal, and to 75.9 X 10"6 of Qiaotou coal, and 5Eu reduced which indicated that the element Eu depleted. The characteristics of REE was controlled by the metamorphic grade of coal. And REE were mainly absorbed in clay minerals in Beipiao coal samples, while in Jianxin and Qiaotou coal mines, REE were primarily related to clay mineral and pyrite. The variation of trace elements in vertical direction of coal seams was studied, and the results showed that different trace elements differed greatly. The correlation between trace elements and ash were determined. Four major trace elements (aluminium-silicates, sulphide, carbonate and phosphate) accounted for the occurrence and distribution of most elements studied were determined. Coal samples were separated by density fraction, which showed that Cr, Cu, Mo and Pb were closely related to inorganic matters mainly distributed in P >2.6 and dropped remarkably in the density fractions P <2.3 . The occurrences of Co, Cr, Ni, As, Se, Mo, U were studied directly and quantitatively using sequential chemical extract with six steps, which showed that Co. Ni, Mo and U were mainly in the form of mineral, and As, Se chiefly in the form of organic state, while Cr mostly in the form of organic state and mineral. Major mineral phases presented in the Beipiao coal were Kaolinite, illite, quartz, calcite, and small amount of siderite, barite. While major mineral phases in Jianxin and Qiaotou coal were pyrite, kaolinite, and small amount of marcasite, rutile, sphalerite. This is the first time that the chromite in the coal was discovered in China, which indicates that Cr occurrence appeared in the form of chromite. The ratio of Sr/Ba, Sr/Ca and V/Ni in Beipiao coal mine under inland limnetic is smaller than that of in Jianxin and Qiaotou coal mines under paralic swamp. The ratio of K/Na and Th/U of Beipiao coal mine is higher than that of Jianxin and Qiaotou coal mine, which proved that Beipiao coal was not affected by sea water and Jianxin and Qiaotou coal were affected by sea water. Trace elements such as Cr, Ni, Mo in minerals were analyzed by SEM-EDS. The factors controlling the enrichment of trace elements can be divided into syngenetic stage factors and epigenetic stage factors.

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赣中变质岩带主要由变泥砂质岩石和少量斜长角闪岩组成。30个变泥砂质岩石样品分析表明,稀土元素分布模式显示明显富集轻稀土元素及Eu负异常[∑REE=129~296μg/g,δEu=0.51~0.86,(La/Yb)N=3.95~12.91,其小相容元素比值高(Th/Sc=0.57~3.59、La/Sc=1.46~12.4、La/Yb=5.84~19.0、La/Sm=4.69~6.87、Th/U=3.40~6.42),大离子亲石元素富集,Zr、Hf、Sc、Ti、Y、HREE和Sr含量较低,其原岩应为一套砂泥质岩石,沉积于远离陆地的克拉通大陆架浅海环境;δBa=0.10~0.93,Nd同位素亏损地幔模式年龄tDM=1597~2525Ma,εNd(0)=-9.9~-15.8,其源区物质主体由占元占代富铝富钾的花岗质岩石和(或)碎屑沉积岩构成,经历了较强的化学风化作用。

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大平掌矿区细碧岩-石英角斑岩建造为典型的双峰式火山岩组合,缺失SiO_2为52%~61%之间的中性火山岩。火山岩的TiO_2含量低及其它岩石化学特征、稀土元素地球化学特征均表明这套火山岩很可能形成于岛弧环境。不相容元素N-MORB标准化型式以Ba、Nd、Sm相对富集和Nb、Sr、Ti的相对亏损为特征,其中Ba 富集和Nb亏损更是岛弧火山作用的主要特征之一。大平掌矿区细碧岩具非常低的 Nb/Y(<0.15)和Zr/TiO_2(<0.01)比值,石英角斑岩的低Zr/TiO_2和Nb/Y特征以及Zr/Y比值(3.34~4.23)、(La/Yb)_N比值(0.47~2.50)变化范围都可以反映出火山岩形成于岛弧环境。大平掌火山岩的Sr、Nd同位素特征与世界上典型岛弧火山岩的Sr、Nd特征相似,其岩浆来源于亏损地幔,且经受地壳混染和(或)海水热液蚀变的影响。岩石中富含的放射成因铅也与岛弧环境密切相关。因此,大平掌铜多金属矿床的形成很可能受岛弧环境下的双峰式火山作用控制。

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以猪草河剖面和羊儿坝剖面为例,进行硅质岩的PGE与微量元素等地球化学分析,结果表明:槽区硅质岩中的PGE异常受控于硅质岩中火山物质(蚀变成粘土矿物)的多少,PGE与Se、Rb、Cs、Ti、Cr、Zr等具有良好的相关性;猪草河剖面远离陆源区,沉积厚度大,更靠近火山活动区域,接受火山粗碎屑物质的量多;羊儿坝剖面远离火山活动中心,主要接受了火山灰等细碎屑物质,更接近陆源区,受一定量的陆源碎屑物质影响。根据Cr/Co、Nb/Ta、Pd/Ir-Ni/Cu及Ni/Pd-Cu/h对岩浆性质的约束,当时岩浆性质为基性玄武岩。根据La-Y-Nb图解和Th-Hf-Ta图解的进一步约束,表明当时的火山岩浆性质为钙碱性的火山弧玄武岩。

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峨眉山大火成岩省二滩地区玄武岩W(SiO2)/%=40.5~59.65;普遍高碱,w(K2O+Na2O):2.64%~7.67%。W(TiO2):2.10%~6.53%,Ti/Y〉500,该区玄武岩属于高钛(HT)型玄武岩;其Mg^#:58~84,明显高于高于宾川高钛玄武岩(31~53),说明岩浆演化程度明显低于宾川高钛玄武岩浆。岩石样品中Sr显示明显负异常,暗示了二滩玄武岩经历了广泛的斜长石结晶分离;而Eu不显异常,则反映了玄武岩岩浆中有高Eu^3+/Eu^2+比值的存在,其环境为氧化环境。在二滩玄武岩和宾川高钛玄武岩中,Ni,Zr,TiO2和Mg^#均显示了明显差异,说明二滩玄武岩具有独立的地球化学特征。二滩玄武岩不相容元素(Rb,Ba,Th,U,Nb,Ta,La,Ce等)配分曲线与OIB相似,及其Ta/Yb vs Th/Yb双变量图解也显示出了富集地幔特征,这些特征反映了峨眉山二滩玄武岩源区为富集地幔源,玄武岩岩浆可能为地幔柱物质。此外,Ba/Th,Zr/Nb,La/Nb,Ba/Nb等比值介于EMI OIB和EMII OIB之间,以及Ce/Pb比值也说明:二滩玄武岩缺少HIMU OIB端元组分,是EMI OIB和EMII OIB两端元的混合产物。

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乌兰图嘎锗矿是我国近年来发现的产在煤层中的超大型锗矿床,锗金属储量达1600吨,其成矿地质条件与成矿模式不同于临沧锗矿和俄罗斯远东地区的锗矿。本文以乌兰图嘎含锗煤的地球化学特征为重点,利用X射线衍射、扫描电镜、电子探针、ICP-MS和数理统计等多种分析方法,系统研究了乌兰图嘎含锗煤的矿物学、微量元素和稀土元素地球化学特征,结合与其他地区含锗煤地球化学特征的对比,初步探讨了乌兰图嘎锗矿的成因。论文获得以下几点主要认识: 1. 乌兰图嘎含锗煤中的主要矿物包括石英、蒙脱石;次要矿物包括长石、高岭石、伊利石;另含少量三水铝石、角闪石、叶蜡石、石膏、绿泥石、锐钛矿、黄铁矿、方解石、白云石和草酸钙石。扫描电镜和电子探针分析表明,乌兰图嘎含锗煤中还存在锆石、闪锌矿、白钨矿、重晶石、黄铜矿、卤化物、磷酸盐以及含Pb、Bi、Cr、As和Sb矿物。未发现含锗矿物。首次在乌兰图嘎含锗煤和红旗煤矿的无矿煤中发现含Ag矿物。 2. 与上地壳平均组成相比,乌兰图嘎锗矿褐煤明显富集Be、Ge、Sb、W和U,亏损Rb、Nb、Sn和Ta。乌兰图嘎锗矿褐煤中Be、Ge、Sb、W和U的平均含量明显高于乌兰图嘎砂岩和红旗煤矿褐煤,以及美国煤和世界煤的平均组成。乌兰图嘎锗矿含矿煤的稀土元素平均含量略高于美国煤或世界煤的平均组成、乌兰图嘎砂岩以及同时代的红旗煤矿无锗煤中的稀土元素含量。稀土元素与锗含量无明显的相关性。 3. 按元素组合不同,煤中微量元素可划分为4个组:Ge-Mo,Tl-Ga-Zn-Co,Rb-Cs和W-U-Cd-Y-Pb-Cu-Hf-Zr-Th-Sn-Nb-Ta-Ti-Sb-Ba-Sr-Mn-Be组合。第一组合包括与灰分呈负相关的元素,它们主要表现出有机亲合性。 剩下三组包括与灰分呈负-较高相关的元素,其主要与硫化物或铝硅酸盐矿物结合。大多数含锗煤的稀土元素含量与灰分呈高度正相关,表明含锗煤中的稀土元素主要来自陆源碎屑并主要与同沉积矿物相结合。稀土元素在少数高锗煤中的富集与存在独居石有关。 4. Ge和Mo富集在不同剖面的不同部位,其余微量元素和稀土元素或多或少地跟随灰分的分布。TiO2标准化的元素剖面揭示乌兰图嘎褐煤样品中的Be/TiO2、Ge/TiO2、W/TiO2、U/TiO2、Mo/TiO2、Sb/TiO2、Tl/TiO2和Sr/TiO2比值较乌兰图嘎砂岩和红旗煤矿褐煤中的参考值高出许多。这些元素(Be、Ge、W、U、Mo、Sb、Tl和Sr)的大部分(>90%) 可能由溶液带入煤层。稀土元素与TiO2的比值总体接近矿区砂岩以及红旗煤矿无矿煤中的对应比值。 5. 乌兰图嘎含锗煤具有与矿区砂岩和红旗煤矿无矿煤类似的、页岩式的球粒陨石或北美页岩标准化稀土元素分配模式;与上覆砂岩的稀土元素组成相比,少量含锗煤表现出轻微但明显的中-重稀土富集,表明少量的中-重稀土在后生作用中被叠加或保留在乌兰图嘎含锗煤中。乌兰图嘎锗矿的含锗煤以较高的LREE/HREE和Eu/Eu*比值以及平坦的北美页岩标准化稀土元素分配模式为特征,明显区别于临沧锗矿和俄罗斯远东地区锗矿中的含矿煤。 6. 乌兰图嘎锗矿含锗煤中大多数的微量元素和稀土元素可能来源于花岗岩源区,Be、Ge、Sb、W和U的富集可能与后生的、侧向迁移的含锗溶液有关。含锗溶液自花岗岩源区淋滤出这些元素并将其搬运至褐煤中,煤中有机质将溶液中的锗固定而聚集成矿。

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以往研究表明锡成矿与S型花岗岩具有密切的成因联系。近年来随着大量与A型花岗岩有关的锡矿床的发现,有关锡成矿与A型花岗岩关系的研究成为地学界关注的热点。 芙蓉超大型锡多金属矿床位于我国著名的南岭钨锡多金属成矿带上,锡矿体位于骑田岭A型花岗岩体的内部或者岩体与围岩的内外接触带。成岩成矿年代学研究表明,成岩与成矿为前后相继的地质事件,具有密切的时空关系。本论文以与芙蓉超大型锡多金属矿床有密切时空关系的骑田岭A型花岗岩为研究对象,在详细野外地质调查的基础上,运用岩石学、矿物学、矿物化学、同位素地球化学、流体地球化学等学科的理论和方法,对骑田岭花岗岩的岩石学特征、岩石成因、成岩物理化学条件、岩浆分异的流体特征、挥发性组分特征以及成岩与成矿的关系等方面进行详细的分析,探讨骑田岭花岗岩成岩过程中流体聚集的机制及其对锡成矿的制约,初步揭示A型花岗岩与锡成矿之间的本质联系。本论文主要取得以下成果和认识: (1)通过对与锡矿有关的骑田岭花岗岩体的主量、微量、稀土元素、同位素和花岗岩中黑云母的微量、稀土元素分析研究发现:骑田岭角闪石黑云母花岗岩和黑云母花岗岩为高度分异演化的花岗岩,具有高硅、富铝、富碱、高钾的特征。随着岩体分异演化程度的增加,花岗岩总体向富硅、富碱的方向演化。岩体轻重稀土分异明显,表现为右倾型模式,Eu负异常明显,表现为中等-强烈的负Eu异常。岩体明显富集Rb、Th等大离子亲石元素及Zr、Hf等高场强元素,而亏损Ba、Nb、Sr、P、Ti。骑田岭花岗岩两个阶段岩石有着相似的Sr、Nd同位素特征,揭示其具有相同的物质来源,是同源岩浆演化的产物,为具壳幔混合特征的A2型花岗岩。 (2)对骑田岭花岗岩体矿物学和矿物化学特征、全岩Sn含量分析研究发现:角闪石黑云母花岗岩的结晶温度为774~796℃,氧逸度(logfO2)为-15.30~-15.0。黑云母花岗岩的结晶温度为714~784℃,氧逸度(logfO2)为-17.5~-20.0。随着岩浆的演化,从角闪石黑云母花岗岩到黑云母花岗岩随着结晶温度的降低,氧逸度也随之减小。随着岩浆的演化,岩体中Cl含量不断的减少,而F含量有所增加,Cl趋向分配进入流体相。随着岩浆分异演化程度的增加,岩体成岩温度降低,氧逸度减小,岩体中Sn含量不断的减少,Sn趋向分配进入富Cl流体,表明岩浆演化过程中分异出富Cl、富Sn的流体。 (3)骑田岭花岗岩石英斑晶中的包裹体研究表明:骑田岭角闪石黑云母花岗岩和黑云母花岗岩在岩浆演化过程中经历了两个阶段,即岩浆阶段和岩浆-热液阶段,分别以出现熔融包裹体、流体-熔融包裹体为特征,其中流体-熔融包裹体的出现是岩浆分异流体的直接证据。结合矿物的结构、构造特征,研究发现骑田岭花岗岩浆演化过程分异出流体。骑田岭花岗岩原生流体包裹体地球化学研究表明,岩浆分异出的流体为H2O-CO2-NaCl-KCl-CaCl2不混溶体系,具有盐度高(32.98~52.04Wt%NaCleq.),密度低(0.27~0.95g/cm3),均一温度较高(190~ 494℃)的特征,压力为600~800bar,成岩过程中发生了沸腾现象。 (4)对芙蓉超大型锡矿床和骑田岭花岗岩研究表明,锡矿与花岗岩有着密切的时间、空间和成因联系。矿体产在花岗岩体内部或者岩体与围岩的接触带,成岩与成矿时限一致,随着岩浆分异演化程度的增加,岩体成岩温度降低,氧逸度降低,岩体中的挥发性组分Cl含量减小,而F含量增加,Cl趋向分配进入流体相,这种流体萃取熔体中的成矿元素Sn,并以氯络合物形式迁移。可以认为,随着岩浆的演化,骑田岭花岗岩岩浆结晶期后分异出的热液流体具有富Cl和Sn的特征。芙蓉超大型锡多金属矿床的成矿流体应主要来源于黑云母花岗岩岩浆结晶期后分异出的岩浆热液。

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中国东南部晚中生代以来的动力学背景一直受到大量学者的关注,特别是大陆岩石圈地幔和大规模岩浆活动事件。华南地区广泛发育的基性脉岩,为研究中国东南部动力学背景提供了载体。前人分别从年代学、矿物学、岩石学和地球化学等方面对广布于华南(福建、广东、江西、海南、湖南等地区)基性岩进行了详细研究,并取得了许多重要成果。 赣杭构造带地处一级大地构造单元扬子地块和华夏地块结合部位,横跨江南元古宙岛弧和华南加里东造山带两个二级构造单元,长期控制两侧地质构造、岩浆活动、沉积、变质及成矿作用。带内发育的基性岩为认识构造带活动情况提供可能。但目前对构造带内的基性岩浆活动的研究较少,应用系统的矿物学、元素和同位素地球化学及同位素年代学等研究方法,对赣杭构造带中生代以来的基性岩体及基性脉岩进行了系统研究。并应用其形成时代、源区性质等结论对中国东南部岩石圈伸展减薄、地幔性质等地球动力学背景中的问题进行探讨。主要取得以下几点认识: 1. 系统进行资料收集,并在此基础上进行野外考察和采样,明确了赣杭构造带发育基性岩的岩石类型主要为辉长岩,辉绿岩及橄榄辉绿岩。主要分布在构造带的南侧,受主/次断裂控制明显。 2. 明确赣杭构造带基性岩体主要为辉长岩,落在粗面玄武岩-玄武岩-玄武粗面安山岩,碱性-亚碱性范围内各有分布,但以亚碱性居多。SiO2范围从45.11-53.47 wt%,MgO的范围从4.06-9.28 wt%,TiO2的范围从0.79-3.63 wt%。微量元素总体富集大离子亲石元素(LILE)(Ba、Rb)、轻稀土(LREE),而亏损高场强元素(HFSE)(Ta、Nb、Zr、Hf、Ti)和重稀土元素(HREE)。余江、东乡、枧头、虎头等近构造带样品,岩浆来源与OIB近似,Nb、Ta亏损不明显。岩浆源区地幔性质从亏损地幔向富集地幔都有分布,流体熔体的交代作用及地壳物质参与可能是造成富集程度不同的主要原因。基性岩体未受到明显的地壳混染,主要经部分熔融形成,成岩过程中发生了橄榄石和单斜辉石的分离结晶作用。构造带对岩浆源区及深部壳幔物质演化发挥重要作用,还控制着岩浆的上升侵入。 3. 赣杭构造带基性脉岩主要为辉绿岩类,在玄武岩-玄武安山岩范围内,碱性-亚碱性范围内都有分布,以亚碱性占大多数。SiO2的范围从44.44-54.73 wt%,MgO的范围从2.74-7.89 wt%,TiO2的范围从0.91-3.39 wt%。微量元素总体富集大离子亲石元素(LILE)(Ba、Rb)和轻稀土元素(LREE),而亏损高场强元素(HFSE)(Ta、Nb、Zr、Hf、Ti)。基性岩脉经不同程度部分熔融作用形成,且成岩过程中经历了橄榄石、单斜辉石及少量斜长石的分离结晶作用。样品没有受到明显的地壳混染现象。基性脉岩的源区性质与流体熔体交代作用及地壳物质参与有关。少量下地壳以拆沉形式加入了原始地幔,进而通过流体熔体交代作用,造成了原始地幔的富集。伸展活动的逐渐加大及软流圈的上涌为拆沉提供了有利条件。赣杭构造带对岩浆源区、深部壳幔物质演化及岩浆上升侵入影响显著。 4. 赣杭构造带岩浆活动发育呈现多元化特点,Sr-Nd-Pb同位素特征显示有EMⅡ的参与。流体交代特征比较复杂,源区存在金云母和金红石的交代,进一步说明下地壳成分参与了壳幔相互作用。同位素模拟表明古老基底通过源区混合也有所参与。结合前人的研究,提出了本区的成岩模式。赣杭构造带地区伴随岩石圈伸展作用的进行,发生了岩石圈减薄及软流圈地幔的上涌作用,少量下地壳物质拆沉到岩石圈地幔参与了岩浆的形成,构造带重新活化及活动对岩浆形成制约明显。新生代岩石圈地幔对中生代岩石圈地幔继承和改造。 5. 根据K-Ar年龄并结合区域内已有同位素年龄,赣杭构造带上的基性岩具有周期性分布特点,初步分为±180 Ma、145-150 Ma、120-140 Ma、95-110 Ma和65-80 Ma五组,且以120-140 Ma和95-110 Ma的峰值最为集中,代表了赣杭构造带岩浆活动最为强烈的期次。据目前研究,145 Ma限定了中国东南岩石圈伸展作用开始作用的下限,随着研究深入,更早能准确指示转换年龄的证据可能会被发现。大于140 Ma的岩浆比较偏向于构造体制转换下的构造-岩浆活动产物,与岩石圈的减薄及软流圈上涌关系密切。整个华南的岩石圈伸展作用对大规模金属成矿意义明显。赣杭构造带在热源、流体来源及驱动机制等方面对区内的以铀为主的金属成矿作用起到了制约。

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稀土元素成矿与地壳的构造运动密切相关,稀土在中元古代具有大规模暴发性成矿特征。云南武定迤纳厂稀土铁铜矿床为昆阳群因民组出现稀土富集成矿的典型代表。本论文选择迤纳厂矿床为主要研究对象,系统研究矿床不同类型岩(矿)石和矿物的稀土元素地球化学特征,探讨富稀土的成矿流体、成矿物质来源和稀土元素成矿时代,揭示昆阳裂谷初期因民组稀土元素富集的地球化学机制。主要认识如下:1、迤纳厂矿床产于昆阳裂谷初期形成的禄丰一武定火山断陷盆地中。早中元古界昆阳群分布于绿汁江岩石圈断裂和小江一易门断裂的夹持地带,呈狭长状展布。迤纳厂矿床赋矿地层为昆阳群因民组上段的硅质白云岩和碱性火山岩(粗面安山岩)。矿体产出形态和矿石的结构构造等均显示矿体与赋矿地层同沉积特征;出现独立矿物氟碳饰矿、独居石及褐帘石,磷灰石、萤石、菱铁矿等矿物中也含有一定量的稀土,沿矿体走向和垂向稀土元素变化不大。2、矿体顶、底板围岩(石榴石黑云母片岩、钠长黑云母片岩等)的原岩为碱性火山岩(粗面安山岩),相对富集大离子亲石元素Ba、Cs、Rb、K、LRE日及贫Zr、Sr、Ti、Hf、HEE,为早元古代末期一中元古代早期交代富集地慢低程度部分熔融所形成的碱性火山岩。矿石稀土总量高(645-4443)×10-6,强烈富集轻稀土((La/Tb)N=17.3-81.1),稀土元素分布特征明显不同于矿区正常沉积的硅质白云岩和后期侵入的钠长石英斑岩及火山角砾岩,而与矿体顶、底板碱性火山岩中稀土元素配分特征基本一致,暗示稀土成矿物质来源与碱性火山岩有密切的关系;3、矿石中微量元素组合及变化特征与现代海底正在喷出的热液和热液沉积物中元素组合有较大的可比性,明显不同与火成碳酸岩型稀土矿床中的特征元素组合;在微量元素判别图解(Al-Fe-Mn、Fe/Ti-Al/(Al+Fe+Mn)、U-Th、Y-P2O5等)中,逸纳厂矿石均投影在热水沉积区,矿石的Y/Ho值与黑烟囱值接近,表明成矿流体为高温、还原性质,稀土成矿可能以热水沉积作用方式为主;4、对矿石中主要矿物萤石、菱铁矿、磁铁矿、石英、方解石的稀土元素特征研究表明,矿石沉积时不同矿物中稀土元素分布特征基本相同,主要受成矿流体中稀土分布特征制约。而后期变质作用形成的矿物,其稀土元素分布主要受矿物晶体结构控制。同期成矿流体从早期到晚期(块状矿石→条带状矿石),轻重稀土分异变小,稀土总量增加,条带状矿石中稀土含量最高;矿石黄铜矿6345值变化在一任3%0到2g%。范围,显示慢源硫特征;菱铁矿6r3C(8%-9.1%)、δ18O(-11.17%-15.37)‰指示成矿流体具岩浆来源和有机质的脱梭酸分解作用参与;成矿流体中稀土元素可能主要以(RE(CO3)3F)4-、(既(CO3)3F2)、(RE(F,Cl万等形式迁移,当温度降低时沉淀出氟碳饰矿等稀土矿物;5、矿石和萤石单矿物 Sm-Nd等时线年龄分别为1621士110Ma和15:38士43Ma,与矿区碱性火山岩错石的U-Pb年龄1676Ma、因民组顶部石英正长斑岩的错石U-P1。年龄1685Ma基本一致,也与因民组地层年龄1765M。较为接近,反映成矿时代为早元古代晚期和中元古代早期:这一时间也与一早元古代晚期一中元古代早期昆阳裂谷初始裂陷阶段,大量来自于地幔的碱性火山岩喷发事件相吻合。矿石。Nd(t):-2.87-3.60,萤石单矿物εNd(t):-3.93-5.90,变化范围较窄并全为负值,接近0,指示源区为富集地幔。同时结合矿床形成的构造一地质环境及矿体产出的地质形态,认为逛纳厂稀土铁铜矿床可能是在昆阳裂谷初期,在碱性火山岩浆喷发的间歇期,来自地幔富稀土、挥发份的成矿流体由火山喷流一同生沉积方式形成的矿床。6、昆阳群因民组地层中出现的稀土富集、成矿与我国的白云鄂博稀土REE-Fe-Nb超大型矿一床和澳大利亚的olympic Dam Cu-U-Au-Ag-REE超大型矿床,在成矿时代、产出大地构造背景、成矿物质来源等方面具有较大的相似性,均体现成矿受控于中元古代1.5Ga超大陆聚合前或随后裂解初始阶段伴随的非造山型碱性岩浆或热液作用,稀土来源于超大陆拼合前因板块俯冲交代而形成的富集地幔。