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101.
多龙矿集区位于班公湖_怒江成矿带西段、羌塘地块南缘的岩浆弧中。过去十多年来,西藏地勘局第五地质大队在多龙矿集区内已发现和评价了多不杂、波龙、地堡那木岗、拿若、荣那等5处大型、超大型铜金多金属矿床,目前已探明的铜资源量近1000万吨,金300余吨。区内以斑岩型铜金矿床为主,兼有斑岩_浅成低温热液型和斑岩_角砾岩型矿化组合。研究发现,矿区黄铁矿的δ34S值变化于-2.2‰~2.3‰之间,平均为0.2‰,峰值在-1‰~1‰之间,塔式效应明显,接近幔源硫,显示成矿物质来源于深部岩浆;成矿温度介于250~420℃之间,成矿深度1~5 km,成矿流体为残余岩浆流体,大气降水在成矿过程中的作用不明显。作者根据多年的勘查实践,总结出多龙矿集区斑岩型铜金矿最有效的找矿勘查方法技术组合是:地质+化探(水系沉积物)+物探(高精度磁测、激电中梯)+钻探。  相似文献   
102.
湘西北地区铅锌矿床成矿地质特征及矿床成因研究   总被引:3,自引:1,他引:2  
湘西北铅锌矿带属于中国16个重点成矿区带之湘西-鄂西成矿带的南西段,区内成矿地质条件优越,形成保靖、洛塔、花垣渔塘、凤凰4个矿田。文章在野外考察和室内研究的基础上,以洛塔矿田中的下光荣、江家垭等铅锌矿床、花垣渔塘矿田中的李梅铅锌矿床为例,从地层、岩性、构造等分析入手,采用同位素测试、包裹体分析等手段,对湘西北铅锌矿带的成矿地质特征及成矿机制进行了探讨,认为区内成矿物质主要来源于寒武纪地层,成矿作用过程中,油田卤水在构造作用下的大规模运移、循环,导致了成矿物质的富集和沉淀,主要成矿时代为加里东期。  相似文献   
103.
应立娟  唐菊兴 《矿床地质》2015,34(6):1309-1320
矿床成矿系列理论在中国经过三十多年的发展,已被广泛应用于找矿勘查实践。文章在以往矿床成矿系列研究的基础上,对中国铜矿床的成矿系列进行了补充与完善,厘定出30个以铜为特色的矿床成矿系列。结合全国地质与成矿演化,分析铜矿床成矿系列在主要地质历史时期的特点与时空分布规律,其中,前寒武纪7个铜矿床成矿系列,矿床类型以变质型和岩浆型为主;古生代8个铜矿床成矿系列,矿床类型以海相火山岩型为主;中生代13个铜矿床成矿系列和新生代2个铜矿床成矿系列,矿床类型均以斑岩型和矽卡岩型为主。西藏地区铜矿找矿突破显著,新增2个全国范围的铜矿床成矿系列。矿床成矿系列的复合,是中国铜矿床成矿系列研究的重要成果和特色。  相似文献   
104.
殷马断裂带在桐柏山—大别山造山带中的地质意义探讨   总被引:2,自引:0,他引:2  
殷店—马垅断裂带是桐柏—大别造山带南缘一条重要的韧性断裂带,是桐柏—大别造山带内部发育的一条明显的岩地层单元界线,同时也是华北和扬子两大板碰撞挤压的产物。它与桐柏—大别造山带的形成,发展和演化,有着密不可分的联系。通过对殷店—马垅断裂带东西段野外岩性剖面对比分析、显微构造对比、有限应变测量对比分析、应力场分析等,发现尽管东、西段构造特征略有差异,但是殷店—马垅断裂整体是具有右旋运动性质的剪切带,殷店—马垅断裂带的形成对华北与扬子碰撞所产生的应力具有消减转移效应,它本身是一个塑性剪切最强的断裂带,它反映了造山带内部不同岩性的块体之间右旋流变的运动学模式,同时也可能充当着桐柏—大别山核部岩块相对扬子板块向东运动的的"润滑带"。  相似文献   
105.
卡拉麦里地区处于中亚—兴蒙成矿域东准噶尔成矿带的南段,晚古生代增生—碰撞过程明显、构造和岩浆活动强烈、矿产资源丰富。晚古生代增生—碰撞成矿作用集中在两个时期,卡拉麦里北缘至野马泉为主的泥盆纪和卡拉麦里构造带为主的早石炭世中晚期—二叠纪。本文在综合研究基础上,根据卡拉麦里地区晚古生代增生—碰撞过程的地球动力学和成矿特征,将成矿系统划分为:泥盆纪活动大陆边缘斑岩型金成矿系统,早石炭世中晚期后碰撞挤压—伸展转换阶段浅成低温热液—斑岩型金铜成矿系统,晚石炭世—二叠纪后碰撞伸展阶段造山型金铜成矿系统和岩浆热液型锡金成矿系统,以后3类为主。矿床组合包括:韧性剪切带型金矿、浅成低温热液型金矿、岩浆期后热液脉型金矿、斑岩型铜金矿、构造控制脉型铜矿和云英岩—石英脉型锡矿。认为该地区的泥盆纪活动大陆边缘成矿系统可能被晚石炭世—二叠纪后碰撞造山型金成矿系统所叠置而不易识别,后碰撞作用主导了该地区主要成矿系统,大陆岩石圈拆沉和软流圈地幔上涌产生的走滑伸展构造—壳幔岩浆作用—混合流体作用是卡拉麦里地区金属成矿作用的地球动力学机制。  相似文献   
106.
Analysis of 3.3 Ga tonalite–trondhjemite–granodiorite (TTG) series granitoids and greenstone belt assemblages from the Bundelkhand craton in central India reveal that it is a typical Archaean craton. At least two greenstone complexes can be recognized in the Bundelkhand craton, namely the (i) Central Bundelkhand (Babina, Mauranipur belts) and (ii) Southern Bundelkhand (Girar, Madaura belts). The Central Bundelkhand greenstone complex contains three tectonostratigraphic assemblages: (1) metamorphosed basic or metabasic, high-Mg rocks; (2) banded iron formations (BIFs); and (3) felsic volcanics. The first two assemblages are regarded as representing an earlier sequence, which is in tectonic contact with the felsic volcanics. However, the contact between the BIFs and mafic volcanics is also evidently tectonic. Metabasic high-Mg rocks are represented by amphibolites and tremolite-actinolite schists in the Babina greenstone belt and are comparable in composition to tholeiitic basalts-basaltic andesites and komatiites. They are very similar to the metabasic high-Mg rocks of the Mauranipur greenstone belt. Felsic volcanics occur as fine-grained schists with phenocrysts of quartz, albite, and microcline. Felsic volcanics are classified as calc-alkaline dacites, less commonly rhyolites. The chondrite-normalized rare earth element distribution pattern is poorly fractionated (LaN/LuN = 11–16) with a small negative Eu anomaly (Eu/Eu* = 0.68–0.85), being characteristic of volcanics formed in a subduction setting. On Rb – Y + Nb, Nb – Y, Rb – Ta + Yb and Ta – Yb discrimination diagrams, the compositions of the volcanics are also consistent with those of felsic rocks formed in subduction settings. SHRIMP-dating of zircon from the felsic volcanics of the Babina belt of the Central Bundelkhand greenstone complex, performed for the first time, has shown that they were erupted in Neoarchaean time (2542 ± 17 Ma). The early sequence of the Babina belt is correlatable with the rocks of the Mauranipur belt, whose age is tentatively estimated as Mesoarchaean. The Central Bundelkhand greenstone complex consists of two (Meso- and Neoarchaean) sequences, which were formed in subduction settings.  相似文献   
107.
White mica (phengite and paragonite) K–Ar ages of eclogite-facies Sanbagawa metamorphic rocks (15 eclogitic rocks and eight associated pelitic schists) from four different localities yielded ages of 84–89 Ma (Seba, central Shikoku), 78–80 Ma (Nishi-Iratsu, central Shikoku), 123 and 136 Ma (Gongen, central Shikoku), and 82–88 Ma (Kotsu/Bizan, eastern Shikoku). With the exception of a quartz-rich kyanite-bearing eclogite from Gongen, white mica ages overlap with the previously known range of phengite K–Ar ages of pelitic schists of the Sanbagawa metamorphic belt and can be distinguished from those of the Shimanto metamorphic belt. The similarity of K–Ar ages between the eclogites and surrounding pelitic schists supports a geological setting wherein the eclogites experienced intense ductile deformation with pelitic schists during exhumation. In contrast, phengite extracted from the Gongen eclogite, which is less overprinted by a ductile shear deformation during exhumation, yielded significantly older ages. Given that the Gongen eclogite is enclosed by the Higashi-Akaishi meta-peridotite body, these K–Ar ages are attributed to excess 40Ar gained during an interaction between the eclogite and host meta-peridotite with mantle-derived noble gas (very high 40Ar/36Ar ratio) at eclogite-facies depth. Fluid exchange between deep-subducted sediments and mantle material might have enhanced the gain of mantle-derived extreme 40Ar in the meta-sediment. Although dynamic recrystallization of white mica can reset the Ar isotope system, limited-argon-depletion due to lesser degrees of ductile shear deformation of the Gongen eclogite might have prevented complete release of the trapped excess argon from phengites. This observation supports a model of deformation-controlled K–Ar closure temperature.  相似文献   
108.
The Mata Amarilla Formation dates from the early Upper Cretaceous and was deposited during a transition in tectonic regime from the extensional Rocas Verdes Basin to the Austral Foreland Basin. Detailed sedimentological logs and architectural parameters were used to define 13 facies associations. The distribution of facies associations and associated variations in fluvial architecture have enabled large‐scale changes in accommodation space/sediment supply ratios (A/S ratio) to be defined for the three component sections of the Mata Amarilla Formation. The lower and upper sections are characterized by a high A/S ratio, whereas the middle section corresponds to a low A/S ratio. In the western part of the study area, small‐scale variations in the A/S ratio were recognized in the middle section. The strong west to east trend in evolution of the fluvial systems coincides with the direction of propagation of the Patagonian fold and thrust belt, which is located to the west of the study area. Intervals of high A/S ratio (i.e. lower and upper sections) are interpreted to have developed during periods of increased loading by the fold and thrust belt caused by tectonic uplift. In contrast, intervals of low A/S ratio (i.e. middle section) were developed during periods of tectonic quiescence. This article suggests that the large‐scale variations in A/S ratios are related to different rates of migration and growth of the Patagonian fold and thrust belt, whereas the small‐scale variation occurred in response to specific periods of thrusting and folding in the Patagonian fold and thrust belt (i.e. local loads). This field example of the effects of different scales of variation in A/S ratios across the Austral Foreland Basin could be used to recognize similar tectonically forced variations in stratigraphic architecture in other foreland basins throughout the world, as well as to understand the response of fluvial systems to such changes.  相似文献   
109.
甯濛  刘殊  龚文平  魏一冰  纪璇 《地质论评》2015,61(6):1248-1256
前陆冲断带具有巨大的油气勘探潜力,构造分段性控制油气分布。龙门山冲断带构造分段特征明显,但对分段性的形成机理缺乏深入研究。总结前人砂箱模拟实验成果认为:盆地基底差异和推覆带附近刚性体分布的差异,是造成冲断带构造分段的主要原因。龙门山前川西古拗拉谷的发现,为盆地基底存在差异提供了有利证据,古拗拉谷两侧发育大邑古隆起、江油——老关庙古隆起,在后期逆冲推覆过程中形成阻挡。通过对龙门山推覆带基底特征和刚性地体进行分析,结合前人模拟实验结果,明确提出龙门山冲断带构造分段机理:龙门山北段构造的形成是以碧口地块为动力,龙门山初始裂谷边缘古隆起形成阻挡,在古隆起上方形成冲断带;中段以彭灌杂岩体[彭县——灌县(都江堰)杂岩体]传递动力,在川西古拗拉谷坳陷部位,刚性体挤入盆地内部,印支期——喜马拉雅期,古坳陷部位继承性地发展为川西前陆盆地;南段以宝兴杂岩体传递动力,在大邑古隆起上方形成冲断带。  相似文献   
110.
魏浩 《地质与勘探》2015,51(2):283-394
阿拉伯-努比亚地盾(Arabian Nubian Shield,简称ANS)是900~550Ma期间冈瓦纳超大陆汇聚过程中形成的增生造山带,这一造山过程也被称为是泛非造山运动。它记录了一个长期的造山演化历史,经历了从大洋俯冲、岛弧形成及弧后的岩浆作用到大陆板块碰撞地体的拼合,再到新生地壳的逃逸构造、走滑剪切、张性断裂一系列的构造演化过程。这个演化可以分为四个阶段:(1)洋盆形成阶段(870~800 Ma);(2)洋壳俯冲阶段(800~670 Ma);(3)造山阶段(750~550 Ma);(4)后造山阶段(550 Ma~三叠纪),其中后三个阶段都有金的富集成矿作用。洋壳俯冲阶段的金矿化主要赋存在Algoma型含铁建造层(BIF)、凝灰质变质碎屑岩,以及火山成因的块状硫化物矿床内。造山阶段的主要金矿化类型为含金石英-碳酸盐脉状金矿化、与斑岩铜矿化有关的金矿化,以及与辉长岩类岩体有关的含金石英脉状矿化。与后造山阶段有关的金矿化以少量浸染状、网脉状并伴有Sn-W-Ta-Nb矿化的石英脉为特征。目前在ANS中发现了大量金矿床或矿点,它们具有各种不同的成因类型。根据构造背景及赋矿围岩,ANS原生金矿化可以划分为三类:(1)与火山沉积序列有关的金矿化,包括VMS型、浅成热液型;(2)空间分布上与碳酸盐化蛇绿岩带相关的金矿化;(3)与后造山或造山晚期闪长岩-花岗岩岩体或次火山岩有关的金矿化。  相似文献   
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