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江西雅山花岗岩体交代作用及其与稀有金属的成矿关系 被引量:19
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作者 黄小娥 徐志华 《江西有色金属》 2005年第4期1-4,共4页
根据雅山花岗岩体相带划分及岩体演化特征,论述岩体交代作用与Ta、Nb、Li、Rb、Cs等稀有金属的成矿关系,进而探讨矿床形成机制和成因类型。
关键词 花岗岩 交代作用 稀有金属 成矿 江西雅山
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江西宜春雅山花岗岩体的成因与演化及其对成矿的制约 被引量:58
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作者 杨泽黎 邱检生 +2 位作者 邢光福 余明刚 赵姣龙 《地质学报》 EI CAS CSCD 北大核心 2014年第5期850-868,共19页
雅山岩体位于钦杭成矿带东段萍乡-绍兴结合带西端,是华南地区最重要的钽铌矿化稀有金属花岗岩之一。该岩体为一经多阶段演化形成的复式花岗岩体,自早至晚主要可区分为黑鳞云母-白云母花岗岩—锂云母花岗岩—黄玉锂云母花岗岩等不同阶段... 雅山岩体位于钦杭成矿带东段萍乡-绍兴结合带西端,是华南地区最重要的钽铌矿化稀有金属花岗岩之一。该岩体为一经多阶段演化形成的复式花岗岩体,自早至晚主要可区分为黑鳞云母-白云母花岗岩—锂云母花岗岩—黄玉锂云母花岗岩等不同阶段。锆石LA-ICP-MS U-Pb定年表明,岩体成岩年龄约为150Ma,属晚侏罗世岩浆活动的产物。化学组成上,雅山岩体富硅,贫铁、镁,分异演化程度高,分异指数(DI)值普遍大于93,并具亚碱、强过铝特征,过碱指数(AKI值)多低于0.80,铝饱和指数(A/CNK值)均大于1.20。岩体富Cs、Rb、Th、U、Nb、Ta,亏损Ba、Sr,稀土总量低,并具显著的Eu负异常(δEu=0.04~0.25)。自早至晚,岩体的Na2O/K2O比值渐次增大,F含量逐渐增多,Ta/Nb比值增大,稀土总量急剧降低,Eu负异常和稀土元素四组分效应增强,成岩温度逐渐降低。岩体具有低的εNd(t)值(=-9.5^-10.7)和CaO/Na2O比值(<0.3),指示其应主要起源于基底地壳中变质泥质岩的部分熔融,但其锆石εHf(t)值变化范围较大(=0.7^-14.8),表明其成岩过程中也有地幔组分参与。综合分析表明,雅山岩体成因类型应属高分异的S型花岗岩,其成矿受到岩浆高程度分异演化和晚期流体-熔体相互作用的共同影响,但前者是导致Ta、Nb富集的主控因素。 展开更多
关键词 稀有金属花岗岩 锆石U-PB年龄 元素地球化学 Nd-Hf同位素组成 岩浆演化 江西雅山岩体
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Constraining the timing of the India-Asia continental collision by the sedimentary record 被引量:37
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作者 HU XiuMian WANG JianGang +2 位作者 AN Wei Eduardo GARZANTI LI Juan 《Science China Earth Sciences》 SCIE EI CAS CSCD 2017年第4期603-625,共23页
Placing precise constraints on the timing of the India-Asia continental collision is essential to understand the successive geological and geomorphological evolution of the orogenic belt as well as the uplift mechanis... Placing precise constraints on the timing of the India-Asia continental collision is essential to understand the successive geological and geomorphological evolution of the orogenic belt as well as the uplift mechanism of the Tibetan Plateau and their effects on climate,environment and life.Based on the extensive study of the sedimentary record on both sides of the Yarlung-Zangbo suture zone in Tibet,we review here the present state of knowledge on the timing of collision onset,discuss its possible diachroneity along strike,and reconstruct the early structural and topographic evolution of the Himalayan collided range.We define continent-continent collision as the moment when the oceanic crust is completely consumed at one point where the two continental margins come into contact.We use two methods to constrain the timing of collision onset:(1) dating the provenance change from Indian to Asian recorded by deep-water turbidites near the suture zone,and(2) dating the age of unconformities on both sides of the suture zone.The first method allowed us to constrain precisely collision onset as middle Palaeocene(59±l Ma).Marine sedimentation persisted in the collisional zone for another 20-25 Ma locally in southern Tibet,and molassic-type deposition in the Indian foreland basin did not begin until another 10-15 Ma later.Available sedimentary evidence failed to firmly document any significant diachroneity of collision onset from the central Himalaya to the western Himalaya and Pakistan so far.Based on the Cenozoic stratigraphic record of the Tibetan Himalaya,four distinct stages can be identified in the early evolution of the Himalayan orogen:(1) middle Palaeocene-early Eocene earliest Eohimalayan stage(from 59 to 52 Ma):collision onset and filling of the deep-water trough along the suture zone while carbonate platform sedimentation persisted on the inner Indian margin;(2) early-middle Eocene early Eohimalayan stage(from 52 to 41 or 35 Ma):filling of intervening seaways and cessation of marine sedimentation;(3) late Eocene-Oligocene late Eohimalayan stage(from 41 to 25 Ma):huge gap in the sedimentary record both in the collision zone and in the Indian foreland;and(4) late Oligocene-early Miocene early Neohimalayan stage(from 26 to 17 Ma):rapid Himalayan growth and onset of molasse-type sedimentation in the Indian foreland basin. 展开更多
关键词 India-Asia continental collision Timing of collision onset Himalayan orogeny Tibet Himalaya Sedimentary record
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