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| 1 | A H_(2)O-in-zircon perspective on the heterogeneous water content of crust-derived magmas in southern Tibet显示文摘Geophysical and geochemical evidence revealed that certain amounts of water are stored in the Earth’s interior,and its distribution exhibits temporal and spatial differences.Recent studies indicate that the H_(2)O-in-zircon has a potential to reveal magma water content.Using secondary ion mass spectrometry(SIMS),we analyzed the zircon water content and oxygen isotopes in granitoids(two-mica granite,quartz monzonite,diorite,and granodiorite)from southern Tibet.The results are used to explore the diversity of water content in crust-derived magmas,which is also supported by the LA-ICPMS zircon trace element analysis.There are low zircon water contents for two partial melting products of the ancient crust(peak at 85 and300 ppm,respectively).Meanwhile,there are high H_(2)O-in-zircon peaks(435 and 475 ppm,respectively)for two partial melting products of the juvenile crust.The calculated radiation damage accumulation in these zircon grains is below 3×10^(15)αdecay events mg^(–1),suggesting that the zircon grains are well crystalline.There is no correlation between REE+Y and H+P,indicating that the mechanism of charge balance for water uptaking into zircon,in which the excess of REE+Y to P controls Hcontent,is not applicable to the studied samples.The degree of magma fractionation cannot account for the zircon water content variation,because there is no co-variation between zircon Hf and H_(2)O contents.Similarly,the degree of partial melting was unlikely to be responsible for the H_(2)O-in-zircon distinction.We interpret that the H_(2)O-in-zircon variation reflects the influence of melting mode(dehydration vs.water-fluxed)and water content in the crustal source.In the Late Devonian,dehydration melting of the crustal rocks was facilitated at elevated temperatures,which produced magmas with the lowest water contents.Water-fluxed melting of the ancient crust would produce relatively“drier”magma than water-fluxed melting of the juvenile crust. | Juntong MENG Xiaoping XIA Lin MA Ziqi JIANG Jian XU Zexian CUI Qing YANG Wanfeng ZHANG Le ZHANG | 2021 | Science China Earth Sciences2021,64,7: | 1 |
| 2 | 拉萨地块南缘壳源岩浆水含量差异:来自锆石水含量的启示显示文摘地球物理与地球化学资料显示,地球各圈层含有一定量的水并且在时空分布上存在差异.最近的研究显示,锆石水含量具有反映岩浆水含量的潜力.文章对拉萨地块南缘几个壳源部分熔融成因的二云母花岗岩、石英二长岩、闪长岩以及花岗闪长岩样品中的锆石进行了SIMS水含量和氧同位素分析以及LA-ICPMS微量元素分析,结果用以探讨壳源岩浆水含量的差异性.分析结果显示,两个古老地壳部分熔融样品在锆石水含量核密度图上的峰值分别是85和300ppm,分别明显低于两个新生地壳部分熔融样品的峰值435和475ppm.四个样品计算的U-Th辐射剂量都小于3×10^(15)events mg^(-1),表明它们的晶格未受到严重辐射损伤,都不属于蜕晶化锆石.锆石中元素REE+Y和H+P以及Hf和H含量之间没有相关性,说明它们的水含量并非受控于前人提出的相对于P过量REE+Y电荷补偿机制,岩浆演化程度的差异也不是造成不同样品锆石水含量的主要因素.地壳源岩部分熔融程度的差异也无法解释这些样品锆石水含量的差异.我们认为,这些锆石样品间水含量差异记录了岩浆水含量差异.这一差异反映了熔融方式(加水熔融或者脱水熔融)和源区水含量对岩浆水含量的影响.地壳发生升温减压脱水熔融,岩浆水含量最低.同为加水熔融的地壳岩浆,古老地壳脱水熔融成因熔体中的水含量低于新生地壳加水熔融形成的熔体. | 蒙均桐 夏小平 马林 姜子琦 徐健 崔泽贤 杨晴 张万峰 张乐 | 2021 | 中国科学:地球科学2021,51,8: | 1 |
| 3 | 长白山新生代玄武岩中橄榄岩包体所揭示的岩石圈地幔特征显示文摘长白山地区位于华北克拉通东北部,广泛出露富含地幔橄榄岩包体的新生代玄武岩,为研究岩石圈地幔的性质和演化提供了优越条件。本文对长白山地区天池和龙岗新生代火山岩群中尖晶石相橄榄岩包体进行了岩石学、全岩主微量元素、矿物主量元素、单斜辉石微量元素和Sr-Nd-Hf同位素分析。研究结果表明,尖晶石相橄榄岩包体由二辉橄榄岩和少量的方辉橄榄岩组成,Mg^#值为87.4~91.2,表现出新生饱满的特征,平衡温度为900~1100℃。橄榄石的Mg^#值(%Fo)为85.6~91.3。单斜辉石包括四种类型:(1)轻稀土元素严重亏损型;(2)轻稀土元素亏损型;(3)向右微倾型和(4)'勺型'。单斜辉石表现出Sr同位素(87Sr/86Sr=0.702749~0.707276)整体亏损,部分样品富集的特征,单斜辉石的Nd-Hf同位素呈现出亏损特征(143Nd/144Nd=0.512886~0.51333、εHf=+17.7^+49.8)。长白山地区二辉和方辉橄榄岩分别经历了小于10%和略大于10%的部分熔融作用,并受到富水硅酸盐熔体的地幔交代作用。太平洋板块向西俯冲作用使得软流圈上涌并携带大量壳源物质进入地幔深部,与岩石圈地幔发生橄榄岩-熔体反应,形成了长白山地区不均一的岩石圈地幔,以新增生饱满地幔为主,夹有少量古老难熔岩石圈地幔碎片。 | 徐青鹄 刘嘉麒 莫宣学 贺怀宇 张云辉 赵文斌 | 2020 | 岩石学报2020,36,7: | 1 |
| 4 | 地球深部的不混溶金属熔体:来自火山岩中碳硅石的记录显示文摘碳硅石(SiC)以捕掳晶形式产于玄武质和金伯利质岩石中,为揭示深部地幔的C-H-O相互作用提供了新的窗口.碳硅石仅能稳定于氧逸度(fO2)<△IW-6的条件,而岩石圈地幔及相关熔体却更加氧化.本研究发现玄武质火山碎屑岩和金伯利岩中的碳硅石包含由Si^0+Fe3Si7±FeSi2Ti±CaSi2Al2±FeSi2Al3±CaSi2构成的金属包裹体,其形态特征表明它们是捕获的熔体.碳硅石还包含具有结晶学取向且附存H2+CH4±CO2±CO的气体空洞.这些观察表明碳硅石结晶于含有还原性C-H-O组分的金属熔体(Si-Fe-Ti-C±Al±Ca),富集于岩石圈-软流圈、地壳-地幔这样的界面.当镁铁质-超镁铁质岩浆被持续注入H2+CH4时,岩浆逐步被还原,直至硅化物熔体不混溶分离并结晶出碳硅石.碳硅石产于不同构造环境的幔源火山岩,表明来自深部的H2+CH4可能伴随火山作用被传输至岩石圈,并改变局部岩石圈地幔的氧化还原状态.这种氧逸度的不均一性能够影响地幔熔融等地球化学过程以及地震波速和黏滞度等地球物理性质. | 黄金香 熊庆 Sarah E.M.Gain William L.Griffin Timothy D.Murphy Andrei A.Shiryaev 李立武 Vered Toledo Mikhail D.Tomshin Suzanne Y.O'Reilly | 2020 | Science Bulletin2020,65,17: | 0 |