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1.
波龙斑岩铜金矿床是近年来在青藏高原中部发现的最大的斑岩型矿床,波龙矿床发育两期花岗闪长斑岩和一期花岗斑岩,两期花岗闪长斑岩是波龙矿床的成矿斑岩。本文开展了波龙矿床三期斑岩锆石U-Pb年龄、全岩岩石地球化学和Sr-Nd-Hf同位素组成分析。锆石U-Pb测年结果显示,三期斑岩在120Ma集中侵位。两期花岗闪长斑岩均富集轻稀土、大离子亲石元素,亏损重稀土、高场强元素,Eu异常不明显,显示出岛弧岩浆岩的特征;两期花岗闪长斑岩的(87Sr/86Sr)i值分别为0.70562-0.70711和0.70567-0.70850,εNd(t)分别为-4.0--3.1和-8.0--2.4,εHf(t)值分别变化于2.5-6.9和3.3-6.9,表明两期花岗闪长斑岩起源于新生的下地壳;花岗斑岩也具有岛弧岩浆岩的岩石化学特征,但其具有较高εNd(t)值(-0.7--0.2)和εHf(t)值(1.3-12.2),可能表明花岗斑岩也起源于下地壳,但有更多幔源物质混入。波龙斑岩铜金矿床形成于班公湖-怒江洋壳向北俯冲末期,其成岩-成矿可能与洋壳俯冲关系密切,但波龙矿床的三期斑岩均起源于新生的下地壳,可能表明在120Ma南羌塘地块南缘开始逐步加厚。  相似文献   

2.
西藏多不杂斑岩铜矿位于西藏北部,是青藏高原中部发现的第一个斑岩铜矿。多不杂斑岩铜矿内有两期花岗闪长斑岩和最晚期的闪长玢岩侵位,其中第二期侵位的花岗闪长斑岩是多不杂矿床的主要成矿斑岩。本文开展了多不杂矿床三期斑岩的锆石U-Pb年龄、全岩岩石地球化学和Sr-Nd-Hf同位素组成分析。锆石U-Pb测年结果显示,斑岩在120Ma集中侵位。较早侵位的两期花岗闪长斑岩均富集轻稀土、大离子亲石元素,亏损重稀土、高场强元素,Eu异常不明显,显示出岛弧岩浆岩的特征,均具有高Sr低Y的特征,(87 Sr/86 Sr)i值0.7057~0.7062和0.7059~0.7064,εNd(t)值为较小的负值(-2.5~-1.7和-6.2~-4.0),第二期花岗闪长斑岩的εHf(t)值为3.7~7.5,显示两期花岗闪长斑岩均属于类埃达克质岩石,可能起源于新生下地壳角闪岩相,有幔源物质混入。最晚侵位的闪长玢岩与两期花岗闪长斑岩岩石化学特征类似,但具有富钠特征,其MgO、Y、Yb等含量相对较高,可能表明闪长玢岩与花岗闪长斑岩源区相同,有更多幔源物质混入。多不杂斑岩铜矿可能形成于班公湖-怒江洋向北俯冲末期,可能产出于陆缘弧环境。  相似文献   

3.
西藏拿若矿床位于西藏多龙矿集区北部,是2010年新发现的一个斑岩铜矿。三期花岗闪长斑岩在拿若斑岩铜矿内侵位,前两期花岗闪长斑岩是拿若矿床的主要成矿斑岩;成矿前的闪长岩在拿若矿床东南侧侵位。本文开展了拿若矿床斑岩和闪长岩的锆石U-Pb年龄、全岩岩石地球化学和Sr-Nd-Hf同位素组成分析。锆石U-Pb测年结果显示,三期花岗闪长斑岩在120Ma集中侵位,闪长岩略早于花岗闪长斑岩侵位(121 Ma)。三期花岗闪长斑岩具有相似的岩石化学特征,均富集轻稀土、大离子亲石元素,亏损重稀土、高场强元素,Eu异常不明显,显示出岛弧岩浆岩的特征,均具有高Sr低Y的特征,可能表明三期花岗闪长斑岩形成于同一个岩浆房;三期花岗闪长斑岩均具有高Al2O3、富钠、低镁和高Sr低Y的特征,显示出埃达克岩的特征;前两期花岗闪长斑岩的(87Sr/86Sr)i值分别为0.7054~0.7058和0.7056~0.7057,εNd(t)分别为-3.7~-2.9和-3.5~-3.2,εHf(t)值分别变化于3.6~6.7和3.6~7.4,表明前两期花岗闪长斑岩起源于新生的下地壳角闪岩相,有较多幔源物质混入;第三期花岗闪长斑岩具有较高εNd(t)值(-1.3~1.6)和εHf(t)值(5.1~8.1),表明第三期花岗闪长斑岩也起源于下地壳,但地壳物质混入较少。闪长岩也具有岛弧岩浆岩的特征,具有与花岗闪长斑岩相似的(87Sr/86Sr)i值(0.7052~0.7057)和略高的εNd(t)值(0.2~3.3)与εHf(t)值(1.2~9.5),表明闪长岩也起源于新生的下地壳,源区中壳源物质混入相对更少。闪长岩和成矿的花岗闪长斑岩铜背景值均较高,可能表明成岩源区内Cu丰度较高。含矿斑岩中地壳物质混入较多,可能表明成矿斑岩在侵位过程中从地壳中萃取了较多成矿元素。成矿晚期花岗闪长斑岩中Cu含量明显较低,可能是末期岩浆在岩浆房中释放了较多成矿元素所致;多期岩浆活动释放的成矿元素有利于成矿元素在成矿流体中持续富集成矿,多期岩浆侵位是形成斑岩铜矿的必要因素。  相似文献   

4.
为探究石英闪长玢岩成因及幔源基性岩浆对斑岩铜矿的贡献,本文选取德兴矿床石英闪长玢岩开展了锆石U-Pb定年、Hf同位素和全岩地球化学研究。获得石英闪长玢岩LA-ICP-MS锆石U-Pb年龄为169 Ma,与成矿花岗闪长斑岩侵位时间一致,岩体为中侏罗世岩浆活动的产物。石英闪长玢岩具有低的SiO2(58.41%~63.12%)和K2O(1.68%~2.94%)含量及A/CNK值(0.85~1.04),富集大离子亲石元素和轻稀土元素,亏损高场强元素Nb、Ta、Ti和重稀土元素,属于钙碱性到高钾钙碱性系列岩石。具有相对亏损的锆石Hf同位素组成,εHf(t)=2.20~7.93(最大值7.93),指示其源区为岩石圈地幔。锆石稀土元素配分模式图显示出明显的正Ce异常,岩浆氧逸度(lg fO2)为-20.05~-6.66,达到磁铁矿-赤铁矿氧逸度等级,指示石英闪长玢岩结晶自高氧逸度岩浆。全岩地球化学特征显示,德兴石英闪长玢岩与成矿花岗闪长斑岩及其暗色包体符合岩浆混合的演化趋势,说明成矿花岗闪长斑岩可能是中侏罗世幔源基性岩浆和地壳酸性岩浆大规模混合作用的产物,并且石英闪长玢岩代表了岩浆混合过程中的幔源基性端员。结合前人研究成果,认为在中侏罗世伸展构造背景下,软流圈物质上涌导致新元古代受交代的岩石圈地幔部分熔融形成幔源基性岩浆,基性岩浆的底侵作用诱发下地壳物质熔融并与之发生一定程度的岩浆混合作用,形成了花岗闪长斑岩的母岩浆。高氧逸度幔源岩浆的加入可抑制斑岩体系硫化物的过早饱和,同时为德兴矿床注入了成矿所需的部分挥发分和金属元素。  相似文献   

5.
甘肃公婆泉铜矿是我国西北地区一个非常重要的斑岩型铜矿床,矿体主要产在花岗闪长斑岩和英安斑岩体内。地球化学特征上,这两种斑岩的主量元素表现为低铝、高钾、高碱,微量元素以富集大离子亲石元素(LILE),如Rb、Ba、Th、Sr等元素,亏损高场强元素(HFSE),如Nb、Ta等元素为特征,具有较为明显的Eu负异常。锆石Hf同位素研究显示,本区花岗闪长斑岩的锆石εHf(t)值为4.7~8.2,单阶段Hf模式年龄(t DM1)为714~857Ma,平均为791Ma;二阶段模式年龄(t DM2)的变化范围为887~1113Ma,平均为1003Ma,显示幔源特征。利用LA-ICP-MS锆石U-Pb年代学方法,测得花岗闪长斑岩的年龄为453.2±6.5Ma,为晚奥陶世,代表了公婆泉铜矿花岗闪长斑岩的成岩结晶时代。花岗闪长斑岩的结晶时间为晚奥陶世,因此认为,公婆泉铜矿的成矿时代为晚奥陶世。  相似文献   

6.
刘军  周振华  欧阳荷根 《矿床地质》2017,36(5):1057-1073
多宝山矿床位于大兴安岭北部,是中国东北地区规模最大的斑岩型Cu-Mo矿床。文章对该矿床中与成矿关系密切的花岗闪长斑岩进行了详细的LA-ICP-MS锆石U-Pb定年、主量元素、微量元素及Hf同位素研究。结果表明,花岗闪长斑岩的LA-ICP-MS锆石U-Pb年龄为(474.9±1.8)Ma,其w(Si O2)为70.73%~73.45%,w(K2O)和w(Na2O)分别为2.99%~3.88%、3.86%~4.38%,属高钾钙碱性系列。岩石富集轻稀土元素,(La/Yb)N=6.32~12.76,显示出Ba、K、La、Sr、Zr、Hf、Sm等元素富集,Th、Ta、Nb、Ce、P、Ti等元素亏损的特征。锆石εHf(t)值介于10.3~14.6。详尽的元素和同位素地球化学特征表明多宝山花岗闪长斑岩可能形成于大陆边缘弧环境,来源于加厚陆壳条件下亏损地幔新增生的年轻地壳物质的部分熔融过程。  相似文献   

7.
藏南冈底斯带广泛发育中新世中酸性高Sr/Y比岩浆岩,对该类型岩石的成因研究可为藏南后碰撞岩浆活动提供良好的记录和约束。通过对冈底斯带东段中酸性岩浆岩进行锆石U-Pb年代学研究表明,该中酸性岩浆岩形成于16~18Ma,为中新世时期;全岩地球化学数据表明岩浆岩具有高SiO_2含量( 64%),高钾富钠,高Sr、低Y和高Sr/Y比,轻稀土富集、重稀土亏损且较平坦的特征,显示出埃达克质岩的地球化学亲缘性;与冈底斯带中段~14Ma埃达克质闪长玢岩脉相比,冈底斯带东段的中新世岩浆岩具有更高的K含量;锆石Hf同位素分析结果表明,中新世中酸性岩浆岩具有正的且变化较大的εHf(t)值(+1. 2~+14. 4);全岩(La/Yb)N值对中新世地壳厚度的估算结果为77~84km,处于壳幔边界处。综合上述数据分析表明,冈底斯带东段中新世中酸性高Sr/Y岩浆岩的成因为拉萨地块加厚下地壳(占主体的新生下地壳+少量古老地壳)的部分熔融,并在源区残留了石榴子石和角闪石,造成熔融的热量来源可能为拉萨地体岩石圈根部拆沉导致的热扰动。  相似文献   

8.
王立强  林鑫  李壮  张志  康浩然  李海峰 《地质学报》2014,88(12):2572-2583
蒙亚啊铅锌矿床位于冈底斯铅锌成矿带东段,矿区发育大量的花岗斑岩体.本文通过LA-ICP-MS锆石U-Pb年代学、主量元素、微量元素地球化学和锆石Hf同位素组成探讨了花岗斑岩体侵位时序、岩石成因、成岩物质源区及其与成矿之间的关系.锆石U-Pb年代学测试结果表明,花岗斑岩体侵位时代为13.18~13.57 Ma,系中新世岩浆作用的产物.花岗斑岩富硅,富碱,A/CNK为1.04~1.15;稀土元素呈轻稀土富集的配分模式,发育明显的Eu负异常;微量元素中富集Rb、Th、U、K、Pb等大离子亲石元素,而Ba、Sr及高场强元素Nb、Ta、Ce、P、Zr、Ti则有不同程度的亏损.主量、微量元素综合研究结果显示花岗斑岩为高分异的S型花岗岩.花岗斑岩εHf(t)值为-9.0~1.6之间,平均值为-2.0;两阶段模式年龄为996~1673Ma,平均值为1225Ma.花岗斑岩亏损高场强元素及锆石Hf同位素组成特征指示岩浆物质源区为念青唐古拉群结晶基底.  相似文献   

9.
江家等系列花岗闪长斑岩是皖南祁门县东源钨钼矿区含矿岩体的组成部分,位于东源花岗闪长岩的西侧。对江家和方村花岗闪长斑岩进行的SHRIMP锆石U-Pb测年结果表明,江家、方村花岗闪长斑岩的结晶年龄为149~152Ma,与富钨的东源花岗闪长岩相近。岩石地球化学和锆石Hf同位素分析显示,江家等系列花岗闪长斑岩源区具有复杂的多成分端元,其中老锆石核的正εHf值反映了成岩岩浆对晋宁期岩浆岩的继承,震荡岩浆环带的负εHf值(-39.5~-2.86)指示源区的主要成分为古老的地壳物质,有少量地幔物质的混染。全岩锆石饱和温度(737~913°C)显示岩浆组成中有幔源物质的贡献。  相似文献   

10.
对鲁西沂南铜井岩体的中生代闪长玢岩进行了主量元素、微量及稀土元素、Sr-Nd-Pb同位素以及锆石U-Pb年龄、Hf同位素研究,结果表明,铜井闪长玢岩SiO2含量为54.68%~63.01%,富Na,Na2O/K2O为0.93~4.46,Mg#较高,为55~66,为中钾-高钾钙碱性系列,TiO2含量较低,0.2%~0.71%。样品具有显著的LREE富集[(La/Yb)n=10~15]以及高场强元素Nb、Ta和Ti的负异常,Eu基本无异常,Sr、Ba含量高(分别为241×10-6~711×10-6和554×10-6~822×10-6)的特征。ISr和εNd(t)值分别为0.706473~0.708867和-15.13~-9.18,与鲁西方城玄武岩和前人所研究的沂南辉长岩结果有所差异,显示其源区具有多端员混合特征,除了富集岩石圈地幔外,亏损地幔和地壳物质的贡献也很重要,Pb同位素也显示其源区有扬子克拉通物质的贡献,佐证了华北克拉通中生代富集岩石圈地幔的形成与扬子克拉通的俯冲有关。闪长岩中锆石具有典型的岩浆锆石特征,U-Pb年龄为128~129Ma,锆石εHf(t)值主要在-13~-8(平均值为-10.3)范围内,暗示了岩浆来源于富集岩石圈地幔,但受到亏损地幔物质的混染。沂南铜井闪长玢岩岩浆源区的多元性以及亏损地幔物质参与程度的逐渐增强,说明该地区中生代岩石圈减薄已达到最大,岩浆源区的差异可能也是该地区与胶东地区成矿性差异的主要原因之一。  相似文献   

11.
This paper reports the first results of a study of 11 isotope systems (3He/4He, 40Ar/36Ar, 34S/32S, 65Cu/63Cu, 62Ni/60Ni, 87Sr/86Sr, 143Nd/144Nd, 206–208Pb/204Pb, Hf–Nd, U–Pb, and Re–Os) in the rocks and ores of the Cu–Ni–PGE deposits of the Norilsk ore district. Almost all the results were obtained at the Center of Isotopic Research of the Karpinskii All-Russia Research Institute of Geology. The use of a number of independent genetic isotopic signatures and comprehensive isotopic knowledge provided a methodic basis for the interpretation of approximately 5000 isotopic analyses of various elements. The presence of materials from two sources, crust and mantle, was detected in the composition of the rocks and ores. The contribution of the crustal source is especially significant in the paleofluids (gas–liquid microinclusions) of the ore-forming medium. Crustal solutions were probably a transport medium during ore formation. Air argon is dominant in the ores, which indicates a connection between the paleofluids and the atmosphere. This suggests intense groundwater circulation during the crystallization of ore minerals. The age of the rocks and ores of the Norilsk deposits was determined. The stage of orebody formation is restricted to a narrow age interval of 250 ± 10 Ma. An isotopic criterion was proposed for the ore-bearing potential of mafic intrusions in the Norilsk–Taimyr region. It includes several interrelated isotopic ratios of various elements: He, Ar, S, and others.  相似文献   

12.
最新的流行病学研究表明,空气中较高浓度的悬浮细颗粒可能对人类的健康有不利的影响。根据该项研究显示,由于心脏病、慢性呼吸问题和肺功能指标恶化而导致死亡率的升高与细尘粒子有关。这些研究结果已经促使欧盟于1999年4月出台了限制空气中二氧化硫、二氧化氮、氧化氮、铅和颗粒物含量的法案(1999/30/EC),对各项指标包括对可吸入PM10颗粒的浓度提出了新的限制性指标。PM10颗粒是指可以通过预分级器分离采集的气体动力学直径小于10μm的细颗粒。目前研究的兴趣重点逐步偏向PM2.5这些更细微颗粒物,PM2.5这种颗粒物对健康有明显的不利影响。在欧盟指令2008/50/EC中,对PM10和PM2.5都提  相似文献   

13.
Komatiites are mantle-derived ultramafic volcanic rocks. Komatiites have been discovered in several States of India, notably in Karnataka. Studies on the distribution of trace-elements in the komatiites of India are very few. This paper proposes a simple, accurate, precise, rapid, and non-destructive wavelength-dispersive x-ray fluorescence (WDXRF) spectrometric technique for determining Sc, V, Cr, Co, Ni, Cu, Zn, Rb, Sr, Y, Zr, Nb, Ba, Pb, and Th in komatiites, and discusses the accuracy, precision, limits of detection, x-ray spectral-line interferences, inter-element effects, speed, advantages, and limitations of the technique. The accuracy of the technique is excellent (within 3%) for Sc, V, Cr, Co, Ni, Cu, Zn, Rb, Sr, Zr, Nb, Ba, Pb, and Th and very good (within 4%) for Y. The precision is also excellent (within 3%) for Sc, V, Cr, Co, Ni, Cu, Zn, Rb, Sr, Y, Zr, Nb, Ba, Pb, and Th. The limits of detection are: 1 ppm for Sc and V; 2 ppm for Cr, Co, and Ni; 3 ppm for Cu, Zn, Rb, and Sr; 4 ppm for Y and Zr; 6 ppm for Nb; 10 ppm for Ba; 13 ppm for Pb; and 14 ppm for Th. The time taken for determining Sc, V, Cr, Co, Ni, Cu, Zn, Rb, Sr, Y, Zr, Nb, Ba, Pb, and Th in a batch of 24 samples of komatiites, for a replication of four analyses per sample, by one operator, using a manual WDXRF spectrometer, is only 60 hours.  相似文献   

14.
The Kuskokwim River at Bethel, Alaska, drains a major mercury-antimony metallogenic province in its upper reaches and tributaries. Bethel (population 4000) is situated on the Kuskokwim floodplain and also draws its water supply from wells located in river-deposited sediment. A boring through overbank and floodplain sediment has provided material to establish a baseline datum for sediment-hosted heavy metals. Mercury (total), arsenic, antimony, and selenium contents were determined; aluminum was also determined and used as normalizing factor. The contents of the heavy metals were relatively constant with depth and do not reflect any potential enrichment from upstream contaminant sources.  相似文献   

15.
Most sulfide-rich magmatic Ni-Cu-(PGE) deposits form in dynamic magmatic systems by partial melting S-bearing wall rocks with variable degrees of assimilation of miscible silicate and volatile components, and generation of barren to weakly-mineralized immiscible Fe sulfide xenomelts into which Ni-Cu-Co-PGE partition from the magma. Some exceptionally-thick magmatic Cr deposits may form by partial melting oxide-bearing wall rocks with variable degrees of assimilation of the miscible silicate and volatile components, and generation of barren Fe ± Ti oxide xenocrysts into which Cr-Mg-V ± Ti partition from the magma. The products of these processes are variably preserved as skarns, residues, xenoliths, xenocrysts, xenomelts, and xenovolatiles, which play important to critical roles in ore genesis, transport, localization, and/or modification. Incorporation of barren xenoliths/autoliths may induce small amounts of sulfide/chromite to segregate, but incorporation of sulfide xenomelts or oxide xenocrysts with dynamic upgrading of metal tenors (PGE > Cu > Ni > Co and Cr > V > Ti, respectively) is required to make significant ore deposits. Silicate xenomelts are only rarely preserved, but will be variably depleted in chalcophile and ferrous metals. Less dense felsic xenoliths may aid upward sulfide transport by increasing the effective viscosity and decreasing the bulk density of the magma. Denser mafic or metamorphosed xenoliths may also increase the effective viscosity of the magma, but may aid downward sulfide transport by increasing the bulk density of the magma. Sulfide wets olivine, so olivine xenocrysts may act as filter beds to collect advected finely dispersed sulfide droplets, but other silicates and xenoliths may not be wetted by sulfides. Xenovolatiles may retard settling of – or in some cases float – dense sulfide droplets. Reactions of sulfide melts with felsic country rocks may generate Fe-rich skarns that may allow sulfide melts to fractionate to more extreme Cu-Ni-rich compositions. Xenoliths, xenocrysts, xenomelts, and xenovolatiles are more likely to be preserved in cooler basaltic magmas than in hotter komatiitic magmas, and are more likely to be preserved in less dynamic (less turbulent) systems/domain/phases than in more dynamic (more turbulent) systems/domains/phases. Massive to semi-massive Ni-Cu-PGE and Cr mineralization and xenoliths are often localized within footwall embayments, dilations/jogs in dikes, throats of magma conduits, and the horizontal segments of dike-chonolith and dike-sill complexes, which represent fluid dynamic traps for both ascending and descending sulfides/oxides. If skarns, residues, xenoliths, xenocrysts, xenomelts, and/or xenovolatiles are present, they provide important constraints on ore genesis and they are valuable exploration indicators, but they must be included in elemental and isotopic mass balance calculations.  相似文献   

16.
《Applied Geochemistry》2001,16(2):137-159
Five hundred and ninety-eight samples of terrestrial moss (Hylocomium splendens and Pleurozium schreberi) collected from a 188,000 km2 area of the central Barents region (NE Norway, N Finland, NW Russia) were analysed by ICP-AES and ICP-MS. Analytical results for Al, B, Ba, Ca, K, La, Mg, Mn, Na, P, Rb, Si, Sr, Th, U and Y concentrations are reported here. Graphical methods of data analysis, such as geochemical maps, cumulative frequency diagrams, boxplots and scatterplots, are used to interpret the origin of the patterns for these elements. None of the elements reported here are emitted in significant amounts from the smelting industry on the Kola Peninsula. Despite the conventional view that moss chemistry reflects atmospheric element input, the nature of the underlying mineral substrate (regolith or bedrock) is found to have a considerable influence on moss composition for several elements. This influence of the chemistry of the mineral substrate can take place in a variety of ways. (1) It can be completely natural, reflecting the ability of higher plants to take up elements from deep soil horizons and shed them with litterfall onto the surface. (2) It can result from naturally increased soil dust input where vegetation is scarce due to harsh climatic conditions for instance. Alternatively, substrate influence can be enhanced by human activity, such as open-cast mining, creation of ‘technogenic deserts’, or handling, transport and storage of ore and ore products, all of which magnify the natural elemental flux from bedrock to ground vegetation. Seaspray is another natural process affecting moss composition in the area (Mg, Na), and this is most visible in the Norwegian part of the study area. Presence or absence of some plant species, e.g., lichens, seems to influence moss chemistry. This is shown by the low concentrations of B or K in moss on the Finnish and Norwegian side of the (fenced) border with Russia, contrasting with high concentrations on the other side (intensive reindeer husbandry west of the border has selectively depleted the lichen population).  相似文献   

17.
18.
The Samchampi-Samteran alkaline igneous complex (SAC) is a near circular, plug-like body approximately 12 km2 area and is emplaced into the Precambrian gneissic terrain of the Karbi Anglong district of Assam. The host rocks, which are exposed in immediate vicinity of the intrusion, comprise granite gneiss, migmatite, granodiorite, amphibolite, pegmatite and quartz veins. The SAC is composed of a wide variety of lithologies identified as syenitic fenite, magnetite ± perovskite ± apatite rock, alkali pyroxenite, ijolite-melteigite, carbonatite, nepheline syenite with leucocratic and mesocratic variants, phonolite, volcanic tuff, phosphatic rock and chert breccia. The magnetite ± perovskite ± apatite rock was generated as a cumulus phase owing to the partitioning of Ti, Fe at a shallow level magma chamber (not evolved DI = O1). The highly alkaline hydrous fluid activity indicated by the presence of strongly alkalic minerals in carbonatites and associated alkaline rocks suggests that the composition of original melt was more alkalic than those now found and represent a silica undersaturated ultramafic rock of carbonated olivine-poor nephelinite which splits with falling temperature into two immiscible fractions—one ultimately crystallises as alkali pyroxenite/ijolite and the other as carbonatite. The spatial distribution of varied lithotypes of SAC and their genetic relationships suggests that the silicate and carbonate melts, produced through liquid immiscibility, during ascent generated into an array of lithotypes and also reaction with the country rocks by alkali emanations produced fenitic aureoles (nephelinisation process). Isotopic studies (δ18O and δ13C) on carbonatites of Samchampi have indicated that the δ13C of the source magma is related to contamination from recycled carbon.  相似文献   

19.
蓝晶石的分析通常采用碱熔体系,重量、容量、比色、原子吸收光谱法、离子选择电极法等多种分析手段进行单独测定,对含有刚玉、金红石矿物的难熔性蓝晶石样品,这种分析方法常因熔矿不完全而导致测定结果偏低,而且分析手续冗长,操作复杂,不能满足地质测试的需要。本文采用玻璃熔融法制样,建立了X射线荧光光谱法同时测定蓝晶石矿中F、Na、Mg、Al、Si、Fe、Ti等主量元素的分析方法。以不同矿种的标准物质和自制含多种矿物组分的蓝晶石管理样拟合校准曲线,对玻璃熔融法的稀释比、熔矿温度及对F元素的影响因素等测定条件进行优化,确定选择样品与四硼酸锂-偏硼酸锂混合熔剂的稀释比为1:10,在1050℃温度下实际样品熔矿完全,各元素的分析结果与化学分析法的测定值基本吻合。方法检出限小于0.05%,方法精密度(RSD, n=7)小于4.5%。本法操作简单,重现性好,准确可靠,解决了难熔样品的熔矿问题,同时也很好地解决了传统方法费时、耗材、不能同时测定多元素的问题。  相似文献   

20.
The Markandeya River Basin stretches geographically from 15o56′ to 16o08′ N latitude and 74o37′ to 74o58′ E longitude, positioned in the midst of Belgaum district, in the northern part of Karnataka. The groundwater quality of 54 pre-monsoon samples in the Markandeya River Basin was evaluated for its suitability for drinking and irrigation purposes by estimating pH, EC, TDS, hardness and alkalinity besides major cations (Na+, K+, Ca2+, Mg2+) and anions (HCO3–, Cl–, SO42–, PO43-, F-, NO3–), boron, SAR, % Na, RSC, RSBC, chlorinity index, SSP, non-carbonate hardness, Potential Salinity, Permeability Index, Kelley’s ratio, Magnesium hazard and Index of Base Exchange. Negative Index of Base Exchange indicates the chloro-alkaline disequilibrium in the study area and the majority of water samples fall in the rock dominance field based on Gibbs’ ratio. Permeability indices of classes I and II suggest suitability of groundwater for irrigation. Based on Cl, SO4, HCO3 concentrations, water samples can be classified as normal chloride (96.3%) and normal sulfate (94.4%) and normal bicarbonate (44.4%) water types.  相似文献   

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