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长白山天池火山造锥阶段玄武质火山活动期次划分及成因探讨 被引量:3
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作者 钱程 崔天日 +6 位作者 唐振 江斌 张超 秦涛 陆露 陈会军 吴桐 《中国地质》 CAS CSCD 北大核心 2016年第6期1963-1976,共14页
在天池火山造锥阶段,长白山火山区玄武质火山活动频繁。文章在野外调查的基础上,通过年代学及地球化学研究,对其活动期次进行划分,并探讨其岩浆来源与演化。天池火山造锥阶段的玄武质火山岩主要呈火山渣锥或小型河谷玄武岩形式分布... 在天池火山造锥阶段,长白山火山区玄武质火山活动频繁。文章在野外调查的基础上,通过年代学及地球化学研究,对其活动期次进行划分,并探讨其岩浆来源与演化。天池火山造锥阶段的玄武质火山岩主要呈火山渣锥或小型河谷玄武岩形式分布,其形成可划分为两期:一期为老房子小山期,形成时限为0.87~0.54Ma,属碱性岩石系列;另一期为老虎洞期,形成时限为0.34~0.1Ma,属碱性岩石系列和拉斑岩石系列。地球化学特征显示,碱性系列玄武岩具高Al、Ti、K、P和低Mg特征,拉斑系列玄武岩具高Mg、富Fe、Ca和低Na特征;二者稀土和微量特征较为一致,稀土元素配分曲线呈右倾型,略显正铕异常,并富集Ba、K、Pb、P、Ti,亏损Th、U、Sr,但拉斑系列玄武岩的稀土元素和微量元素含量及轻重稀土分馏强度均低于碱性系列。天池火山造锥阶段形成的玄武质火山岩均来源于进化岩浆,具有同源特征,经历了一致或相似的演化过程,岩浆房赋存位置相当于上地幔—下地壳的过渡部位,结晶分异岩浆作用显著、地壳混染作用微弱,其成分变化受控于多期次结晶分异作用和早期结晶再循环的岩浆作用过程。 展开更多
关键词 造锥阶段 玄武质火山活动 进化岩浆 结晶分异
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内蒙古乌兰哈达晚第四纪玄武岩岩石学特征 被引量:3
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作者 刘延畅 白志达 +1 位作者 宋卡迪 刘磊 《地震地质》 EI CSCD 北大核心 2016年第1期182-196,共15页
乌兰哈达火山群地处华北地块北缘内蒙地轴与边缘增生带的交接部位,晚第四纪玄武岩包括晚更新世和全新世2期。火山产物为玄武岩、玄武质熔结火山碎屑岩和松散火山渣,以玄武岩为主。Na2O+K2O含量高达5.94%~8.34%,平均为7.55%;K2O/Na2O〈... 乌兰哈达火山群地处华北地块北缘内蒙地轴与边缘增生带的交接部位,晚第四纪玄武岩包括晚更新世和全新世2期。火山产物为玄武岩、玄武质熔结火山碎屑岩和松散火山渣,以玄武岩为主。Na2O+K2O含量高达5.94%~8.34%,平均为7.55%;K2O/Na2O〈1(0.48~0.59),属钠质碱性玄武岩。岩石化学和地球化学特征表明,玄武岩岩浆来自富集地幔,但经历了一定程度的分异及陆壳混染,为弱进化岩浆。晚更新世早期主要为碱性橄榄玄武岩,全新世主要为碱玄岩。玄武岩具大陆板内之属性,形成于大陆裂谷初期的构造环境。 展开更多
关键词 碱性玄武岩 进化岩浆 裂谷初期 晚第四纪 乌兰哈达
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Crystal fractionation of granitic magma during its non-transport processes: A physics-based perspective 被引量:7
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作者 CHEN Chen DING Xing +4 位作者 LI Rui ZHANG WeiQi OUYANG DongJian YANG Lei SUN WeiDong 《Science China Earth Sciences》 SCIE EI CAS CSCD 2018年第2期190-204,共15页
Granitic continental crust distinguishes the Earth from other planets in the Solar System. Consequently, for understanding terrestrial continent development, it is of great significance to investigate the formation an... Granitic continental crust distinguishes the Earth from other planets in the Solar System. Consequently, for understanding terrestrial continent development, it is of great significance to investigate the formation and evolution of granite.Crystal fractionation is one of principal magma evolution mechanisms. Nevertheless, it is controversial whether crystal fractionation can effectively proceed in felsic magma systems because of the high viscosity and non-Newtonian behavior associated with granitic magmas. In this paper, we focus on the physical processes and evaluate the role of crystal fractionation in the evolution of granitic magmas during non-transport processes, i.e., in magma chambers and after emplacement. Based on physical calculations and analyses, we suggest that general mineral particles can settle only at tiny speed(~10^(-9)–10^(-7) m s^(-1))in a granitic magma body due to high viscosity of the magma; however, the cumulating can be interrupted with convection in magma chambers, and the components of magma chambers will tend to be homogeneous. Magma convection ceases once the magma chamber develops into a mush(crystallinity, F>~40–50%). The interstitial melts can be extracted by hindered settling and compaction, accumulating gradually and forming a highly silicic melt layer. The high silica melts can further evolve into high-silica granite or high-silica rhyolite. At various crystallinities, multiple rejuvenation of the mush and the following magma intrusion may generate a granite complex with various components. While one special type of granites, represented by the South China lithium-and fluoride-rich granite, has lower viscosity and solidus relative to general granitic magmas, and may form vertical zonation in mineral-assemblage and composition through crystal fractionation. Similar fabrics in general intrusions that show various components on small lengthscales are not the result of gravitational settling. Rather, the flowage differentiation may play a key role. In general, granitic magma can undergo effective crystal fractionation; high-silica granite and volcanics with highly fractionated characteristics may be the products of crystal fractionation of felsic magmas, and many granitoids may be cumulates. 展开更多
关键词 GRANITE Crystal fractionation Magma convection Layering structure Mush model Highly fractionated granite Granite complex Li-F granite
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