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1X射线衍射-X射线荧光光谱-电子探针等分析测试技术在玄武岩矿物鉴定中的应用显示文摘玄武岩的鉴定通常采用显微镜镜下判定,鉴定结果容易受到鉴定人员的专业水平和主观因素、切片方位的影响,光性特征有差异,再者颗粒细小的矿物还受到光学显微镜本身放大倍数的限制也很难准确鉴定。当前的鉴定方法已由传统的显微镜向现代分析仪器(X射线衍射仪、电子探针、X射线荧光光谱仪等)综合研究方向发展。本文采用X射线粉晶衍射(XRD)和显微镜镜下观测相结合的方法,对安徽女山玄武岩(未经蚀变)和团山玄武岩(经过蚀变)进行鉴定,并采用X射线荧光光谱仪(XRF)和电子探针对鉴定结果进行验证。结果表明:女山玄武岩用显微镜鉴定主要由基质(74%,斜长石44%+辉石30%)和斑晶(13%)组成,还含有少量金属矿物(8%)及较大颗粒石英捕掳晶(5%);其中,基质部分的斜长石经XRD分析可进一步确定为拉长石,辉石主要为普通辉石(单斜辉石),少量金属矿物为钛铁矿。团山玄武岩用显微镜鉴定主要由基质(75%,斜长石50%+辉石25%)和斑晶(9%)组成,还含有少量绿泥石充填的杏仁体;其中,基质部分的斜长石经XRD分析可进一步确定为微斜长石,蚀变矿物为蒙脱石而非薄片鉴定中的绿泥石。综合XRD和相关技术鉴定结果可确定,女山玄武岩主要矿物为拉长石、辉石、钛铁矿;团山玄武岩主要矿物为微斜长石、辉石、蒙脱石。研究显示,单独的显微鉴定技术在含蚀变矿物的玄武岩鉴定中会产生较大偏差,而结合XRD等多种分析测定技术可以快速鉴定出矿物种类,尤其对颗粒较小的矿物鉴定的准确度更高。许乃岑 沈加林 张静 2015岩矿测试2015,34,1:20
2俯冲构造vs.地幔柱构造——板块运动驱动力探讨显示文摘板块构造是指地球外壳岩石圈块体在地球表面的(水平)运动及其相互作用.自50年前板块构造理论建立以来,对板块运动的动力来源这一问题一直存在争议.早期的观点认为是'自下而上'机制,即板块运动受控于板块之下的地幔对流系统,特别是起源于核幔边界的地幔柱作用于板块底部,促使大陆裂解,并驱动板块运动.而现今较为普遍接受的观点则是'自上而下'机制,即认为板块运动的驱动力主要来源于板块自身的负浮力(即重力大于浮力),板块构造和地幔对流均受控于板块的俯冲作用,因此板块构造又被称为俯冲构造.这一观点得到了众多地质和地球物理观测的支持.进一步研究表明,个别板块增速、减速与单一地幔柱活动在百万年时间尺度具有耦合关系;多个板块内稳定克拉通地区地表隆升、沉积速率与地幔柱相关的岩浆活动在亿年时间尺度存在时空相关性;而全球范围的超大陆聚合、裂解与超级地幔柱活动在二十亿年以来的地质历史时期表现为周期性耦合关系.这些不同时空尺度的耦合现象均表明,板块构造与地幔柱构造在地球演化过程中是紧密联系、相互作用的,地幔柱构造对板块运动产生了不可忽视的影响.因此,需要将板块构造和地幔柱构造这两大地球构造体系加以联合,开展综合分析与研究,才能获得对板块构造和整个地球动力系统运行机制的全面认识.陈凌 王旭 梁晓峰 万博 刘丽军 2020中国科学:地球科学2020,50,4:15
3Subduction tectonics vs.plume tectonics——Discussion on driving forces for plate motion显示文摘Plate tectonics describes the horizontal motions of lithospheric plates,the Earths outer shell,and interactions among them across the Earths surface.Since the establishment of the theory of plate tectonics about half a century ago,considerable debates have remained regarding the driving forces for plate motion.The early'Bottom up'view,i.e.,the convecting mantledriven mechanism,states that mantle plumes originating from the core-mantle boundary act at the base of plates,accelerating continental breakup and driving plate motion.Toward the present,however,the'Top down'idea is more widely accepted,according to which the negative buoyancy of oceanic plates is the dominant driving force for plate motion,and the subducting slabs control surface tectonics and mantle convection.In this regard,plate tectonics is also known as subduction tectonics.'Top down'tectonics has received wide supports from numerous geological and geophysical observations.On the other hand,recent studies indicate that the acceleration/deceleration of individual plates over the million-year timescale may reflect the effects of mantle plumes.It is also suggested that surface uplift and subsidence within stable cratonic areas are correlated with plumerelated magmatic activities over the hundred-million-year timescale.On the global scale,the cyclical supercontinent assembly and breakup seem to be coupled with superplume activities during the past two billion years.These correlations over various spatial and temporal scales indicate the close relationship and intensive interactions between plate tectonics and plume tectonics throughout the history of the Earth and the considerable influence of plumes on plate motion.Indeed,we can acquire a comprehensive understanding of the driving forces for plate motion and operation mechanism of the Earth's dynamic system only through joint analyses and integrated studies on plate tectonics and plume tectonics.Ling CHEN Xu WANG Xiaofeng LIANG Bo WAN Lijun LIU 2020Science China Earth Sciences2020,63,3:10
4A 32-million year cycle detected in sea-level fluctuations over the last 545 Myr显示文摘Spectral analyses of past relative sea-level oscillations as represented by the ages of 57 Phanerozoic(the last 545 Myr)stratigraphic sequence boundaries from the Canadian Arctic show a strong spectral peak at 32 Myr(>99.9%confidence).These findings concur with previous reports of significant cycles with periods of around 30 Myr in various records of fluctuations of sea level,and in potentially related episodes of tectonism,volcanism,climate,and biotic extinctions.Sequence boundaries commonly coincide with stage boundaries based on biostratigraphy,and are correlated with episodes of extinction and times of flood-basalt volcanism.The connection between tectonics and sea-level variations may come from changes in rates of ocean-floor spreading and subduction,intraplate stresses from plate-reorganizations,and pulsations of hotspot volcanism.These coordinated periodic fluctuations in tectonics,sea level and climate may be modulated by cyclical activity in the Earth’s mantle,although some pacing by astronomical cycles is suspected.Michael R.Rampino Ken Caldeira 2020Geoscience Frontiers2020,11,6:2
5A pulse of the Earth: A 27.5-Myr underlying cycle in coordinated geological events over the last 260 Myr显示文摘We performed spectral analyses on the ages of 89 well-dated major geological events of the last 260 Myr from the recent geologic literature. These events include times of marine and non-marine extinctions,major ocean-anoxic events, continental flood-basalt eruptions, sea-level fluctuations, global pulses of intraplate magmatism, and times of changes in seafloor-spreading rates and plate reorganizations. The aggregate of all 89 events shows ten clusters in the last 260 Myr, spaced at an average interval of ~ 26.9 Myr, and Fourier analysis of the data yields a spectral peak at 27.5 Myr at the ≥96% confidence level. A shorter period of ~ 8.9 Myr may also be significant in modulating the timing of geologic events.Our results suggest that global geologic events are generally correlated, and seem to come in pulses with an underlying ~ 27.5-Myr cycle. These cyclic pulses of tectonics and climate change may be the result of geophysical processes related to the dynamics of plate tectonics and mantle plumes, or might alternatively be paced by astronomical cycles associated with the Earth’s motions in the Solar System and the Galaxy.Michael R.Rampino Ken Caldeira Yuhong Zhu 2021Geoscience Frontiers2021,12,6:1
6Time series analysis of mantle cycles Part Ⅱ:The geologic record in zircons, large igneous provinces and mantle lithosphere显示文摘Igneous and detrital zircons have six major U/Pb isotopic age peaks in common(2700 Ma,1875 Ma.1045 Ma,625 Ma,265 Ma and 90 Ma).For igneous rocks,each age peak is comprised of subpeaks with distinct geographic distributions and a subpeak age range per age peak≤100 Myr.There are eight major LIP age peaks(found on≥10 crustal provinces)of which only four are in common to major detrital zircon age peaks(2715 Ma,1875 Ma,825 Ma,90 Ma).Of the whole-rock Re depletion ages,58%have correspo nding detrital zircon age peaks and 55%have corresponding LIP age peaks.Ten age pea ks are fou nd in common to igneous zircon,detrital zircon,LIP,and Re depletion age time series(3225 Ma,2875 Ma,2145 Ma,2085 Ma,1985 Ma,1785 Ma,1455 Ma,1175 Ma,825 Ma,and 90 Ma).and these are very robust peaks on a global scale as recorded in both crustal and mantle rocks.About 50%of the age peaks in each of these time series correspond to predicted peaks in a 94-Myr mantle cycle,including four of the ten peaks in common to all four time series(2875 Ma,1785 Ma,825 Ma and 90 Ma).Age peak widths and subpeak ranges per age peak suggest that mantle events responsible for age peaks are<100 Myr and many<50 Myr in duration.Age peak geographic distributions show three populations(≤1000 Ma,2500-1000 Ma,>2500 Ma),with the number of new provinces in which age peaks are represented decreasing with time within each population.The breaks between the populations(at 2.5 Ga and 1 Ga)fall near the onsets of two transitions in Earth history.The First Transition may represent a change from stagnant-lid tectonics into plate tectonics and the Second Transition,the onset of subduction of continental crust.The major factor controlling geographic distribution of age peaks is the changing locations of orogeny.Before^2 Ga,age subpeaks and peaks are housed in orogens within or around the edges of crustal provinces,mostly in accretionary orogens.but beginning at 1.9 Ga,collisional orogens become more important.The coincidence in duration between magmatic flare-ups in Phanerozoic arcs and duration of age subpeaks(10-30 Myr)is consiste nt with subpeaks representing periods of enhanced arcrelated magmatism.probably caused by increased subduction flux.The correlation of isotopic age peaks between time series supports a cause and effect relationship between mantle plume activity,continental magma production at convergent margins,and crustal deformation.Correlation of over half of the detrital zircon age peaks(and six of the nine major peaks)with Re depletion age peaks supports an interpretation of the zircon peaks as crustal growth rather than selective preservation peaks.Kent C. Condie Stephen J. Puetz 2019Geoscience Frontiers2019,10,4:1
7塔里木大火成岩省瓦吉里塔格层状岩体的钼同位素组成特征及其地质意义显示文摘钼同位素地球化学是国际地学研究领域的一个前沿和热点问题。塔里木大火成岩省中的瓦吉里塔格镁铁质超镁铁质层状岩体的Mo同位素研究结果表明,瓦吉里塔格镁铁质超镁铁质岩石具有相近的Mo同位素组成,其平均值为-0.18‰±0.04‰(2 s.d.;n=11)。在瓦吉里塔格岩浆体系中,岩浆分异没有导致明显的Mo同位素分馏。瓦吉里塔格岩石中Mo同位素与其(87Sr/86Sr)i和εNd(t)值呈现一定相关性,指示其地幔源区不均一性。此外,这些岩石δ98Mo值低于洋中脊玄武岩δ98Mo值范围(^-0.15‰),指示它们的源区很可能受到早中古生代南天山洋板片俯冲的熔体交代的影响。结合前人研究成果,塔里木大火成岩省中丰富的岩石系列可归因于不均一的地幔源区以及地幔柱岩石圈俯冲洋壳的相互作用。曹俊 王旋 陶继华 2020东华理工大学学报(自然科学版)2020,43,2:0
8Supercontinent evolution:Preface显示文摘The evolution of the earth is marked by development of more than 70%of the present day continents during Archean.The Archean-Proterozoic boundary is characterized by continental amalgamation, and subsequent breaking and development of worldwide glaciations. The Paleoproterozoic time is characterized by change in atmospheric oxygen and intense biogenic activity during the early part,and amalgamation of the continents to form the supercontinent 'Columbia',S.Mohanty 2013Geoscience Frontiers2013,4,3:0
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