1000 resultados para Western Yunnan


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滇西兰坪中新生代盆地是我国著名“三江”构造带的重要组成部分,盆地内矿产资源丰富,金顶超大型铅锌多金属矿床及其周围的铜多金属矿床构成了我国西南地区重要的多金属大型矿集区之一。本文重点研究了兰坪中新生代盆地的演化、矿集区的成矿作用以及盆地演化与矿集区形成的藕合关系;同时对盆地上三叠统三合洞组的沉积环境以及盆地沉积岩源区构造背景和物源属性也进行了分析。研究结果表明:上三叠统三合洞组的沉积环境属浅海局限台地相,沉积时古海水的温度介于26.7℃-32.1℃,反映上三叠统三合洞组沉积时兰坪盆地处于炎热的热带区;盆地沉积岩源区构造属被动大陆边缘环境和大陆岛弧环境,原始物源来自上地壳,以长英质岩石为主,兰坪中新生代盆地属典型的大陆型盆地;盆地演化经历了三个原型盆地即裂陷盆地(T2-J1)、坳陷盆地(J2-K1)和走滑盆地(E-N)的演化过程,三个原型盆地的形成和演化明显受特提斯洋演化和印度板块与欧亚板块碰撞作用的制约;矿集:区内矿床的成矿物质源自地壳(盆地基底和盆地地层)、成矿流体为盆地热卤水:沥自盆地生油岩地层的有机质参与了成矿作用;矿集区矿床形成时间为56Ma左右或3OMa左右,两时间分别与印度板块和欧亚板块发生碰撞和后续的强烈挤压阶段的时间相一致;中新生代兰坪盆地演化过程也是多金属大型矿集区形成的过程。在裂陷和坳陷盆地演化阶段是大型矿集区形成的预备阶段,形成了成矿物质、成矿流体和成矿流.体通道及矿石堆积场所;走滑盆地演化过程中,强烈的构造活动等使区内成矿能量快速积聚,同时进一步富集成矿物质、成矿流体进一步汇聚以及形成成矿流体的运移通道和矿石堆积的场所,在印度板块和欧亚板块发生碰撞时和后续的强烈挤压阶段分别发生成矿作用,最后形成多金属大型矿集区。

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本论文在前人数据资料和研究成果的基础上,以北衙金矿床及其相关的富碱侵入岩作为主要研究对象,以探讨滇西新生代富碱火成岩成岩过程及富碱岩浆上升演化过程中的流体分异,北衙金矿床的成因,最终揭示北衙金矿床与相关的富碱侵入岩之间的关系为主要研究目的,通过主、微量(包括稀土)元素地球化学,Pb、Sr、Nd、C、O、S及He-Ar等同位素地球化学,以及流体包裹体地球化学等方面的研究获得以下主要认识:-1.滇西新生代富碱火成岩来源于EM-II型富集地慢,源区的交代富集过程与古特提斯洋壳的俯冲有关,俯冲板片的含水流体对上覆上慢楔的交代是滇西富碱侵入岩(相当于A型花岗岩)含水的原因,这次富碱岩浆活动是一次滞后的弧岩浆活动;富碱中、酸性岩浆由碱性玄武质岩浆混染约20%的主要来自变质基底的地壳物质演化而来;滇西新生代富碱岩浆具备岛弧岩浆的氧化条件(即fogfo2>FMQ+2,FMQ代表铁橄榄石一磁铁矿一石英氧缓冲),并在其上升演化过程中分异出大量的流体相,具有较大的An、Cu成矿潜力。2.北衙金矿的矿化时代33.0±1.5Ma与相关的富碱侵入岩的成岩时代(32-34Ma)一致。3,成矿早期流体或初始流体具有富碱岩浆在变质基底内分异的流体的Nd和sr同位素组成(Isr≈0.722390,ε Nd(t)≈-2.8)、矿区及外围富碱斑岩的平均Pb同位素组成(206Pb/204Pb=18.590,207Pb/204Pb=15.606,208Pb/204Pb=38.770)、与相关富碱斑岩一致的稀土配分模式、岩浆热液的C、O同位素组成(δ13C≈-5%0,61、尧11%0)、以及壳一慢混合He-Ar同位素组成(3He尸He;1 .80-1.94 Ra,3He/3 6Ar=1 .19 * 10-3-3.93火10·3)并显示明显的He-Ar分异(4oAr*/He=0.34-0.75),且以高温、高压、高盐度、富c02为特征,说明初始流体主要在变质基底内由富碱岩浆分异而来;初始流体在上升过程中由于温度、压力降低发生富co2相和盐水相的分离,成矿元素优先分配进入富COZ相,逐步演化为成矿阶段流体;成矿阶段流体在去气或与大气降水混合过程中释放出其中的成矿元素。4.约80%的成矿金属来自富碱岩浆,其余部分主要通过岩浆流体从变质基底摄取。结论:北衙金矿与相关的富碱侵入岩具有密切的成因关系。

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Four new Early Carboniferous athyridid species in three genera, including one new genus, Bruntonathyris, are described from the Qaidam Basin, northwest China: Lamellosathyris qaidamensis, Bruntonathyris amunikeensis, Bruntonathyris? heijianshanensis, and Lochengia qinghaiensis. Based on the new material and also on published information, we also reviewed the taxonomic composition and the stratigraphic and paleogeographic distributions of the three genera. As a result, Lamellosathyris is considered to be indicative of late Famennian to Viséan age, originating in late Famennian in central North America and Armenia of Russia, respectively. Later, the genus appears to have two migratory directions: one branch rapidly dispersed over Mississippi Valley, Oklahoma, Texas and New Mexico of central North America in Tournaisian; alternatively, another branch from Armenia migrated westerly to Belgium, France, Spain, Britain, Ireland, via the Moscow Basin and Ural seaway, eastward to the Tienshan Mountains and Qaidam Basin of northwest China during the Tournaisian to Viséan, and easterly along the southern shelves of the Paleo-Tethys to Iran and western Yunnan of southwestern China in Tournaisian. Both Bruntonathyris and Lochengia are restrictedly Tournaisian to Viséan in age, and probably originated in the Qaidam Basin. Later, Bruntonathyris migrated easterly to South China and Japan, and westerly to Urals, Moscow Basin, Donetsk Basin and Britain; Lochengia migrated easterly to South China and westerly to the Urals seaway and the adjoined Russian Platform (i.e., both the Moscow and Donetsk Basins).

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Neogene climates and vegetation history of western Yunnan are reconstructed on the basis of known fossil plants using the Coexistence Approach (CA) and Leaf Margin Analysis (LMA). Four Neogene leaf floras from Tengchong, Jianchuan and Eryuan in southwestern China are analyzed by the CA, and the paleoclimatic data of one Miocene carpoflora from Longling and three Pliocene palynofloras from Longling, Yangyi and Eryuan are used for comparison. The Miocene vegetation of the whole of West Yunnan is subtropical evergreen broad-leaved forest, and a similar mean annual precipitation is inferred for Tengchong, Longling and Jianchuan. However, by the Late Pliocene a large difference in vegetation occurred between the two slopes of Gaoligong Mountain, western Yunnan. The region of Tengchong retained a subtropical evergreen broad-leaved forest vegetation, whereas in Yangyi and Eryuan a vertical vegetation zonation had developed, which consists, in ascending order, of humid evergreen broad-leaved, needle and broad-leaved mixed evergreen, and coniferous forests. Distinctively, the Late Pliocene vegetational patterns of West Yunnan were already very similar to those of the present, and the Pliocene mean annual precipitation in Tengchong was markedly higher than that of Yangyi and Eryuan. Considering that the overall vegetation of West Yunnan and the precipitation at Yangyi and Eryuan have undergone no distinct change since the Late Pliocene, we conclude that the Hengduan Mountains on the northern boundary of West Yunnan must have arisen after the Miocene and approached their highest elevation before the Late Pliocene. Furthermore, the fact of the eastern portion of the Tibetan Plateau underwent a slight uplift after the Late Pliocene is also supported.

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The Yangla copper deposit, situated in the middle section of Jinshajiang tectonic belt between Zhongza-Zhongdian block and Changdu-Simao block, is a representative and giant copper deposit that has been discovered in Jinshajiang-Lancangjiang-Nujiang region in recent years. There are coupled relationship between Yangla granodiorite and copper mineralization in the Yangla copper deposit. Five molybdenite samples yielded a well-constrained 187Re-187Os isochron age of 233.3±3 Ma, the metallogenesis is therefore slightly younger than the crystallization age of the granodiorite. S, Pb isotopic compositions of the Yangla copper deposit indicate that the ore-forming materials were derived from the mixture of upper crust and mantle, also with the magmatic contributions. In the late Early Permian, the Jinshajiang Oceanic plate was subducted to the west, resulting in the formation of a series of gently dipping thrust faults in the Jinshajiang tectonic belt, meanwhile, accompanied magmatic activities. In the early Late Triassic, which was a time of transition from collision-related compression to extension in the Jinshajiang tectonic belt, the thrust faults were tensional; it would have been a favorable environment for forming ore fluids. The ascending magma provided a channel for the ore-forming fluid from the mantle wedge. After the magma arrived at the base of the early-stage Yangla granodiorite, the platy granodiorite at the base of the body would have shielded the late-stage magma from the fluid. The magma would have cooled slowly, and some of the ore-forming fluid in the magma would have entered the gently dipping thrust faults near the Yangla granodiorite, resulting in mineralization.

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Six Early Carboniferous brachiopod species in four genera of the Superfamily Spiriferoidea are described from the Qaidam Basin, northwestern China, including a new genus, Qaidamospirifer, and two new species: Grandispirifer qaidamensis and Qaidamospirifer elongatus. Additionally, a new genus, Triangulospirifer, is also proposed to replace Triangularia (Poletaev, 2001) that was preoccupied by a Devonian molluscan genus.

On the basis of the new material as well as published information, we have reviewed the taxonomic composition and the stratigraphic and palaeobiogeographic distributions of the three previously established genera from the viewpoint of palaeobiogeography. The study reveals that Grandispirifer has a relatively long stratigraphic range from the late Tournaisian to Serpukhovian. During this interval, the genus attained a wide geographical distribution, reaching Northwest China, western Yunnan of West China, Japan, as well as Iran and North Africa. Angiospirifer first occurred in western Europe in the Viséan, and later migrated to North Africa during the late Viséan. In the Serpukhovian, it migrated eastward, reaching the Donets Basin of Ukraine and the Qaidam Basin in Northwest China. Anthracothyrina evolved from Brachythyrina in North Africa in late Viséan, then dispersed north-westward to western and eastern Europe and, further eastward to the Qaidam Basin during the Serpukhovian.

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Rhagophthalmus fugongensis Li & Liang and Rhagophthalmus lufengensis Li & Ohba are introduced as new to science. The first record of R. tonkineus in China is provided. The male genitalia of R. gibbosulus and R. giganteus are described and illustrated. The female and larva of R. giganteus and the female of R. semisulcatus are illustrated. The distribution of Rhagophthalmus is discussed and a rectification of the relative arrangement of different parts of the male genitalia is provided (the base-piece is on the ventral side of the male genitalia, and the parameres on the dorsal side).

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The adjoining area of western Guizhou and eastern Yunnan Provinces in southwest China is an ideal place to investigate the feasibility of correlating marine and nonmarine Permian–Triassic boundary (PTB) sequences, as it contains outcrop sections of shallow marine, marginal marine (or paralic), and terrestrial PTB sections, all in close geographic proximity. This paper documents for the first time multiple stratigraphic data from several well-preserved terrestrial PTB sections in the area and attempts to use these data to define, locate, and correlate the PTB in the area. A study of the spores and pollen and vegetation types across the terrestrial PTB sections in the study area suggests three distinct evolutionary stages across the boundary: Stage 1 (Xuanwei Formation) is characterised by Late Permian or Paleozoic-type ferns and pteridosperms (85.0%), with a few gymnosperms (15.0%); stage 2 is marked by an abrupt drop of sporopollen elements of Late Permian aspects, coupled with the appearance of fungal spores and limited Early Triassic palynomorphs; stage 3 (top Xuanwei Formation and Kayitou Formation) is dominated by gymnosperm pollen (58.8%) of clearly Early Triassic aspect, although still retaining limited ferns and pteridosperms. The three biotic stages seem to well correspond with the changing trend of the δ13Corg curves from the same sections, which is characterized by a sharp drop just before the PTB, followed by a short term partial recovery across the boundary, and then succeeded by a gradual decline after the PTB in the Early Triassic. Combining evidence from eventostratigraphic (i.e., the succession of boundary clay beds), biostratigraphic (using both macroplants and palynomorphs), and chemostratigraphic (i.e., organic carbon isotope excursion signals), we propose that a high-resolution PTB succession, closely correlatable to its marine counterpart at the Meishan section in eastern China, is recognisable at the terrestrial PTB sections in the western Guizhou–eastern Yunnan area in southwest China.