青藏高原东南木里地区二叠纪苦橄岩的Os-Sr-Nd同位素地球化学研究

李杰,许继峰,何斌,徐义刚,董彦辉. 青藏高原东南木里地区二叠纪苦橄岩的Os-Sr-Nd同位素地球化学研究[J]. 岩石学报, 2008, 24(2).
引用本文: 李杰,许继峰,何斌,徐义刚,董彦辉. 青藏高原东南木里地区二叠纪苦橄岩的Os-Sr-Nd同位素地球化学研究[J]. 岩石学报, 2008, 24(2).
Sr-Nd-Os isotope geochemistry of Permain picrites from Mull area, southeast Tibet[J]. Acta Petrologica Sinica, 2008, 24(2).
Citation: Sr-Nd-Os isotope geochemistry of Permain picrites from Mull area, southeast Tibet[J]. Acta Petrologica Sinica, 2008, 24(2).

青藏高原东南木里地区二叠纪苦橄岩的Os-Sr-Nd同位素地球化学研究

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Sr-Nd-Os isotope geochemistry of Permain picrites from Mull area, southeast Tibet

  • 本文报道了在青藏高原东南木里地区发现的二叠纪苦橄岩和与其共生玄武岩的主微量元素地球化学特征以及Os-Sr-Nd同位素组成.苦橄岩和与其共生玄武岩受地壳混染作用影响较小.根据苦橄岩的Ti/Y比值和初始的Os同位素组成,将木里苦橄岩分为两类:高Ti/Y型苦橄岩和低ⅣY型苦橄岩,其中高Ti/Y型苦橄岩具有高的γOs= 5.3~ 10.7和εNd= 5.9~ 6.4,与全球典型洋岛玄武岩的Os和Nd同位素组成接近,代表了地幔柱源区的同位素特征;而低Ti/Y型苦橄岩具有低的γOs=-4.1~ 1.2和εNd= 3.2~ 5.0,可能表明受到了SCLM(大陆岩石圈地幔)源区物质的混染.与其共生的玄武岩具有低的γOs=-3.5~-1.6和εNd=-0.6~ 0.7,表明其来自于不同于低Ti/Y型苦橄岩也有异于高Ti/Y型苦橄岩的地幔源区,但是也可能受到了SCLM物质的混染.基于Nd-Os同位素的地幔柱与SCLM的二端元混合模型显示:低Ti/Y型苦橄岩可能是SCLM物质组分与地幔柱起源的苦橄质原始岩浆混合形成的;与苦橄岩共生的玄武岩可能是由地幔柱来源的玄武质岩浆与SCLM小比例熔融的熔体混合形成的.
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  • [1]

    Ali JR, Thompson GM, Zhou MF and Song X. 2005. Emeishan large igneous province, SW China. Lithos 79, 475 -489

    [2]

    Bird JM, Meibom A, Frei R and Nagler Th F. 1999. Osmium and lead isotopes of rare OsIrRu minerals: derivation from the core - mantle boundary region? Earth Planet. Sci. Lett., 170:83 -92

    [3]

    Brandon AD, Norman MD, Walker RJ and Morgan JW. 1999. ^186Os-^187 Os systematics of Hawaiian picrites. Earth and Planetary Science Letters, 174:25-42

    [4]

    Brandon AD and Walker RJ. 2005. The debate over core-mantle interaction. Earth and Planetary Science Letters, 232:211 -225

    [5]

    Campbell IH and Griffiths RW. 1990. Implications of mande plume structure for the evolution of flood basalts. Earth Planet. Sci. Lett. , 99 : 79 - 93

    [6]

    Chen L, Zhi XC, Zhang ZC and Shi RD. 2007. Preliminary study on the Re-Os isotope geochemistry of picfites from Lijiang area, Yunnan Province. Geological Journal of China Universities, 13:337 -343

    [7]

    Chung SL and Jahn BM. 1995. Plume - lithosphere interaction in generation of the Emeishan flood basalts at the Permian - Triassic boundary. Geology, 23 : 889 - 892

    [8]

    Cohen AS and Waters GG. 1996. Separation of Osmium from Geological Materials by Solvent Extraction for Analysis by Thermal Ionization Mass Spectrometry. Anal Chimica Acta, 332 : 269 - 275

    [9]

    Condie KC. 1993. Chemical composition and evolution of the upper continental crust: contrasting results from surface samples and shales. Chem. Geol. , 104:1 -37

    [10]

    Ellam RM, Carlson RW, Shirey SB. 1992. Evidence from Re-Os isotopes for plume-lithosphere mixing in Karoo food basalt genesis. Nature, 359:718-721

    [11]

    Ernst RE and Buchan KL. 2003. Recognizing mantle plumes in the geological record. Annu. Rev. Earth Planet. Sci. , 31 : 469 -523

    [12]

    Esser BK and Turekian KK. 1993. The osmium isotopic composition of the continental crust. Geochimica et Cosmochimica Acta, 57 : 3093 -3104

    [13]

    Goto A and Tatsumi Y. 1994. Quantitative analysis of rock samples by an X-ray fluorescence spectrometer. The Rigaku Journal, 11 : 40 -59

    [14]

    Hanski E, Walker R J, Polyakov HHGV. 2004. Orion of the PermianTriassic komatiites, northwestern Vietnam. Contrib. Mineral. Petrol. , 147:453 -469

    [15]

    Hauri EH and Hart SR. 1993. Re-Os isotope systematics of HIMU and EMII oceanic island basahs from the south Pacific Ocean. Earth and Planetary Science Letters, 114 : 353 - 371

    [16]

    Hauri EH, Lassiter JC, DePaolo DJ. 1996. Osmium isotope systematics of drilled lavas from Mauna Loa, Hawaii. J. Geophys. Res. , 101 : 11793 - 11806

    [17]

    He B, Xu YG, Chung SL. 2003. Sedimentary evidence for a rapid, kilometer-scale crustal doming prior to the eruption of the Emeishan flood basalts. Earth Planet. Sci. Lett., 213:391 -405

    [18]

    Hofmann AW and White WM. 1982. Mantle plumes from ancient oceanic crust. Earth Planet. Sci. Lett. , 57:421 -436

    [19]

    Hoffman AW. 1997. Mantle geochemistry: the message from oceanic volcanism. Nature, 385:219-229

    [20]

    Horan MF, Walker RJ, Fedorenko VA. 1995. Osmium and neodymium isotopic constraints on the temporal and spatial evolution of Siberian flood basalt sources. Geochimica et Cosmochimica Acta, 59:5159 - 5168

    [21]

    Martin CE. 1991. Osmium isotopic characteristics of mantle-derived rocks. Geochimica et Cosmochimica Acta, 55:1421 -1434

    [22]

    Morgan JW and Baedecker PA. 1983. Elemental composition of sulfide particles from an ultramafic xenolith and the siderophile element content of the upper mantle. Lunar Planet. Sci. , 14:513 - 14 ( Abstr. )

    [23]

    Li J, Liang XR, Dong YH. 2007. Measurement of Re-Os isotopic composition in mafic-uhramafic rocks by multi-collector inductively coupled plasma mass spectrometer (MC-ICPMS). Geochimica, 36 : 153 -160

    [24]

    Liang XR, Wei GJ, Li XH and Liu Y. 2002. Precise measurement of ^143Nd/^144Nd and Sm/Nd ratios using multiple collector inductively coupled plasma mass spectrometer (MC-ICPMS). Geochimica, 32: 91 -96

    [25]

    Liang XR, Li J, Qi L. 2005. Accurate measurement for the concentration and isotopic abundance of rhenium using multi-collector inductively coupled plasma mass spectrometer. Rock and Mineral Analysis, 24: 1 -6

    [26]

    Liu Y Liu HC, Li XH. 1996. Simultaneous and precise determination of 40 trace elements using ICP-MS. Geochimica, 25:552 -558

    [27]

    Nier AO. 1937. The isotopic constitution of osmium. Phys. Rev. , 52:885 - 892

    [28]

    Pearson DG, Shirey SB, Carlson RW. 1995. Re-Os, Sm-Nd, and Rb-Sr isotope evidence for thick Archaean lithospheric mantle beneath the Siberian craton modified by multistage metasomatism. Geochimica et Cosmochimica Acta, 59:959-977

    [29]

    Porcelli D and Halliday AN. 2001. The core as a possible source of mantle helium. Earth Planet. Sci. Lett., 192:45-56

    [30]

    Qiu YM, Gao S, McNaughton NJ. 2000. First evidence of > 3.2 Ga continental crust in the Yangtze craton of south China and its implications for Archean crustal evolution and Phanerozoic tectonics. Geology, 28:11 - 14

    [31]

    Reisberg L, Zindler A, Mareantonio F. 1993. Os isotope systematics in ocean island basalts. Earth and Planetary Science Letters, 120:149 - 167

    [32]

    Roy-Barman M and Allegre CJ. 1995. ^187Os/^186Os Os in oceanic island basahs: tracing oceanic crust recycling in the mantle. Earth and Planetary Science Letters, 129:145 -161

    [33]

    Roy-Barman M, Wasserburg GJ, Papanastassiou DA. 1998. Osmium isotopic compositions and Re-Os concentrations in sulfide globules from basaltic glasses. Earth and Planetary Science Letters, 154:331 - 347

    [34]

    Russell WA, Papanastassiou DA, Tombrello TA. 1978. Ca isotope fractionation on the Earth and other solar system materials. Geochimica et Cosmochimica Acta, 42. 1075 -1090

    [35]

    Shirey SB and Walker RJ. 1995. Carius Tube Digestion for Low-blank Rhenium-Osmium Analysis. Anal Chem. , 67:2136 -2141

    [36]

    Shirey SB and Walker RJ. 1995. The Re-Os isotope system in cosmochemistry and high-temperature geochemistry. Annu. Rev. Earth Planet. Sci. , 26:423 -500

    [37]

    Smoliar MI, Walker RJ, Morgan JW. 1996. Re-Os ages of Group ⅡA, ⅢA, ⅣA, and ⅣB iron meteorites. Science, 271 : 1099 - 1102

    [38]

    Sun SS and McDonough WF. 1989. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes. Magnatism in the Ocean Basins. Geologial Society, London, Special Publications, 42:313-345

    [39]

    Suzuki K, Xu JF, Xu YG. 2006. Osmium, lead and neodymium isotope geochemistry of Permian Emeishan continental flood basalts: Insights into the source of a large igneous province. Geochimica et Cosmochimica Acta, 70:A631

    [40]

    Taylor SB and McLennan SM. 1981. The composition and evolution of the continental crust: rare earth element evidence from sedimentary rocks. Phil. Trans. Roy. Soc. , A301:381 -399

    [41]

    Xiao L, Xu YG, Chung SL. 2003a. Chemostratigraphic correlation of upper Permian lavas, from Yunnan Province, China: extent of the Emeishan large igneous province. Int. Geol. Rev. , 45:754 -766

    [42]

    Xiao L, Xu YG, Mei H. 2003b. Late Permian flood basalts at Jinping area and its relation to Emei mantle plume: Geochemical evidences. Acta Petrologica Sinica, 19:38 -48

    [43]

    Xiao L, Xu YG, Mei HJ. 2004. Distinct mantle sources of low-Ti and high-Ti basalts from the western Emeishan large igneous province, SW China: implications for plume lithosphere interaction. Earth Planet. Sci. Lett. , 228:525 -546

    [44]

    Xu JF, Suzuki K, Xu YG. 2007. Os, Pb, and Nd isotope geochemistry of the Permian Emeishan continental flood basalts : Insights into the source of a large igneous province. Geochimica et Cosmochimica Acta, 71:2104 -2119

    [45]

    Xu YG, Chung SL, Jahn BM. 2001. Petrologic and geochemical constraints on the petrogenesis of Permian - Triassic Emeishan flood basalts in southwestern China. Lithos, 58:145 -168

    [46]

    Xu YG and Chung SL. 2001. The Emeishan large igneous province: evidence for mantle plume activity and melting conditions. Geochimica, 30:1 -9

    [47]

    Xu YG, He B, Chung SL. 2004. Geologic, geochemical and geophysical consequences of plume involvement in the Emeishan flood-basalt province. Geology, 32 : 917 -920

    [48]

    Walker RJ, Morgan JW, Horan MF. 1995. ^187Os enrichment in some mantle plume sources: evidence for core-mantle interaction? Science, 269 : 819 - 822

    [49]

    Walker RJ, Storey M, Kerr AC. 1999. Implications of ^187Os isotopic heterogeneities in a mantle plume: evidence from Gorgona Island and Curacao. Geochimica et Cosmochimica Acta, 63:713 -728

    [50]

    Wei GJ, Liang XR, Li XH. 2002. Precise measurement of Sr isotopic composition of liquid and solid base using (LP) MC-ICPMS. Geochimica, 31 : 295 - 299

    [51]

    Zhang ZC, Wang F, Hao Y and Maboney J. 2004. Geochemistry of the picfites and basalts from Emeishan large igneous basahs province and constraints on their source regions. Acta Geologica Sinica, 78:171 -180

    [52]

    Zhang ZC, Wang F, Hao Y, 2005. Picrites from Emeishan large igneous, evidence for the mantle plume activity. Bulletin of Mineralogy, Petrology and Geochemistry, 24:62 -65

    [53]

    Zhang ZC, Mahoney J, Mao JW. 2006. Geochemistry of picritic and associated basalts flows of the Western Emeishan flood basalt province, China. Journal of Petrology, 47 : 1997 - 2018

    [54]

    Zhang ZC, Mahoney J, Wang F. 2006. Geochemistry of picritic and associated basalts flows of the Western Emeishan flood basalt province, China: evidence for a plume-head origin. Acta Petrologica Sinica, 22:1538 -1552

    [55]

    Zhi XC, Chen L, Zhang ZC. 2006. Re-Os isotope geochemistry of picrite from Emeishan LIP, southwestern China: Implications for link between ELIP eruption and mantle plume. Geochimica et Cosmochimica Acta, 70 : A748 - 317

    [56]

    Zhou MF, Yan DP, Kennedy AK. 2002. SHRIMP U-Pb zircon geochronological and geochemical evidence for Neoproterozoic arcmagmatism along the western margin of the Yangtze Block, South China. Earth and Planetary Science Letters, 196:51 -67

    [57]

    梁细荣 韦刚健 李献华 刘颖.利用MC—ICPMS精确测定^143Nd/^144Nd和Sm/Nd比值[J].地球化学,:.

    [58]

    张招崇 王福生 郝艳丽 JohnJ.Mahoney.峨眉山大火成岩省中苦橄岩与其共生岩石的地球化学特征及其对源区的约束[J].地质学报,:.

    [59]

    张招崇 王福生 郝艳丽.峨眉山大火成岩省中的苦橄岩:地幔柱活动证据[J].矿物岩石地球化学通报,2005,24(1):17-22.

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