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冈瓦纳大陆边缘罗斯运动的岩浆活动时代:来自北维多利亚地松散沉积物锆石年龄的证据

陈虹 王宏晖 包国栋

陈虹, 王宏晖, 包国栋, 2021. 冈瓦纳大陆边缘罗斯运动的岩浆活动时代:来自北维多利亚地松散沉积物锆石年龄的证据. 地质力学学报, 27 (5): 796-808. DOI: 10.12090/j.issn.1006-6616.2021.27.05.065
引用本文: 陈虹, 王宏晖, 包国栋, 2021. 冈瓦纳大陆边缘罗斯运动的岩浆活动时代:来自北维多利亚地松散沉积物锆石年龄的证据. 地质力学学报, 27 (5): 796-808. DOI: 10.12090/j.issn.1006-6616.2021.27.05.065
CHEN Hong, WANG Honghui, BAO Guodong, 2021. Detrital zircon age from the glacial and littoral deposit, Northern Victoria Land, Antarctica: Implications for the timing of magmatic activity of the Ross Orogeny on the Gondwana continental margin. Journal of Geomechanics, 27 (5): 796-808. DOI: 10.12090/j.issn.1006-6616.2021.27.05.065
Citation: CHEN Hong, WANG Honghui, BAO Guodong, 2021. Detrital zircon age from the glacial and littoral deposit, Northern Victoria Land, Antarctica: Implications for the timing of magmatic activity of the Ross Orogeny on the Gondwana continental margin. Journal of Geomechanics, 27 (5): 796-808. DOI: 10.12090/j.issn.1006-6616.2021.27.05.065

冈瓦纳大陆边缘罗斯运动的岩浆活动时代:来自北维多利亚地松散沉积物锆石年龄的证据

doi: 10.12090/j.issn.1006-6616.2021.27.05.065
基金项目: 

国家自然科学基金 41941004

极地专项项目 CHINARE 2016-02-05

中国地质调局地质调查项目 DD20160060

详细信息
    作者简介:

    陈虹(1982-), 男, 副研究员, 主要从事区域构造与大陆变形研究。E-mail: chhzxm8281@163.com

  • 中图分类号: P597.3

Detrital zircon age from the glacial and littoral deposit, Northern Victoria Land, Antarctica: Implications for the timing of magmatic activity of the Ross Orogeny on the Gondwana continental margin

Funds: 

the National Natural Science Foundation of China 41941004

Chinese Polar Environment Comprehensive Investigation # Assessment Programs CHINARE 2016-02-05

the Geological Investigation Project of China Geological Survey DD20160060

  • 摘要: 横穿南极大陆中部的横贯南极山脉是早古生代时期古太平洋向东冈瓦纳活动大陆边缘俯冲形成的罗斯造山带,该阶段的地层沉积、变形变质以及花岗质岩浆侵入代表了罗斯运动的演化过程。由于岩浆活动与沉积地层和变形变质在时代上存在明显差异,罗斯运动的时代仍缺乏精确的限定。通过采集北维多利亚地难言岛地区冰碛物和海岸沉积物中的松散砂砾石样品,并进行碎屑锆石U-Pb测年得出:4件不同粒径的冰碛物和海岸沉积样品中的碎屑锆石年龄峰谱具有单一峰谱的特征,年龄区间为2443~323 Ma,主要集中于530~450 Ma之间,峰值年龄约为485 Ma;锆石Th/U比值均大于0.1,而且以>0.4为主,其CL图像也具有明显的振荡环带,稀土元素特征主体具有岩浆锆石的特征,反映了样品物源区岩浆活动的时代特征。碎屑锆石年龄组成与周缘地区岩浆活动和陆内变形以及沉积地层时代基本一致,表明北维多利亚地及其周缘地区在罗斯运动晚期陆内变形阶段的岩浆活动应持续至450 Ma,这可能代表了罗斯运动结束的时代,该结果为冈瓦纳大陆边缘罗斯运动的构造演化过程提供了新的约束。

     

  • 图  1  罗斯造山带与北维多利亚地地质简图(据Estrada et al., 2016Chen et al., 2019修改)

    a—罗斯-德拉美造山带构造格架与岩浆年龄分布特征;b—北维多利亚地构造特征与岩浆年龄特征

    Figure  1.  Geological map of the Ross Orogen and Northern Victoria Land (modified after Estrada et al., 2016; Chen et al., 2019)

    (a) Tectonic framework of the Ross-Delamerian orogenic belt and the magmatic age distribution in it; (b) Tectonic features and magmatic age in Northern Victoria Land

    图  2  难言岛及周边地区综合地貌图(航空正射影像图由黑龙江测绘地理信息局极地测绘工程中心提供)

    a—难言岛周边地区地貌特征;b—难言岛综合地貌特征

    Figure  2.  The location and geomorphological map of the Inexpressible Island and its surrounding areas (The aerial orthophoto map was provided by the Polar Mapping Engineering Center of Heilongjiang Bureau of Surveying and Mapping Geographic Information)

    (a) Geomorphological features around the Inexpressible Island; (b) Geomorphological features of the Inexpressible Island

    图  3  难言岛中部U形谷地区基岩和松散堆积物地质特征

    Figure  3.  Geological characteristics of the bedrocks and Quaternary deposits in the middle U-shaped valley area of the Inexpressible Island

    图  4  难言岛地区松散堆积物砾石组成与结构特征

    Figure  4.  Gravel composition and structural characteristics of Quaternary deposits in the Inexpressible Island

    图  5  典型碎屑锆石CL图像及其U-Pb年龄

    Figure  5.  Cathodoluminescenc images of typical detrital zircons and their U-Pb ages

    图  6  锆石年龄直方图

    Figure  6.  Zircon age histogram diagram

    图  7  碎屑锆石稀土配分曲线与岩浆锆石和热液锆石特征对比图(标准化值据Sun and McDonough, 1989;典型岩浆锆石和热液锆石数据来源于Hoskin, 2005)

    Figure  7.  Chondrite-normalized REE patterns of detrital zircons and comparison of characteristics between magmatic and hydrothermal zircons(Normalization values were after Sun and McDonough, 1994; Typical magmatic and hydrothermal zircon datas were obtained from Hoskin, 2005)

    表  1  难言岛表层松散物碎屑锆石样品及年龄特征

    Table  1.   Detrital zircon samples and their age characteristics of surface Quaternary deposits in the Inexpressible Island

    序号 样品编号 经纬度 沉积类型 砂样粒径(目/μm) 测点数量(谐和度>90%/全部测点) 最小/最大年龄值/Ma 其他年龄峰值/Ma
    1 VC 161/1 S74°54′51.3″; E163°42′18.3″ 冰碛物 5~12/1400~4000 58/60 323/2440 ~494
    2 VC 161/2 S74°54′51.3″; E163°42′18.3″ 冰碛物 >12/ < 1400 56/60 421/517 ~474
    3 VC 163/1 S74°54′49.1″; E163°42′57.0″ 海岸堆积 5~12/1400~4000 57/60 414/568 ~476
    4 VC 163/2 S74°54′49.1″; E163°42′57.0″ 海岸堆积 >12/ < 1400 60/60 458/2443 ~489
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  • ANDERSEN T, 2002. Correction of common lead in U-Pb analyses that do not report 204Pb[J]. Chemical Geology, 192(1-2): 59-79. doi: 10.1016/S0009-2541(02)00195-X
    BLACK L P, SHERATON J W, 1990. The influence of Precambrian source components on the U-Pb zircon age of a Palaeozoic granite from Northern Victoria Land, Antarctica[J]. Precambrian Research, 46(4): 275-293. doi: 10.1016/0301-9268(90)90016-J
    BOGER S D, MILLER J M, 2004. Terminal suturing of Gondwana and the onset of the Ross-Delamerian Orogeny: the cause and effect of an Early Cambrian reconfiguration of plate motions[J]. Earth and Planetary Science Letters, 219(1-2): 35-48. doi: 10.1016/S0012-821X(03)00692-7
    BOGER S D, 2011. Antarctica-Before and after Gondwana[J]. Gondwana Research, 19(2): 335-371. doi: 10.1016/j.gr.2010.09.003
    BORSI L, PETRINI R, TALARICO F, et al., 1995. Geochemistry and Sr-Nd isotopes of amphibolite dykes of northern Victoria Land, Antarctica[J]. Lithos, 35(3-4): 245-259. doi: 10.1016/0024-4937(95)99070-D
    BRACCIALI L, DI VINCENZO G, ROCCHIS, et al., 2009. The Tiger Gabbro from northern Victoria Land, Antarctica: the roots of an island arc within the early Palaeozoic margin of Gondwana[J]. Journal of the Geological Society, 166(4): 711-724. doi: 10.1144/0016-76492008-098
    CAPPONI G, CRISPINI L, MECCHERI M, 1999. Structural history and tectonic evolution of the boundary between the Wilson and Bowers terranes, Lanterman Range, northern Victoria Land, Antarctica[J]. Tectonophysics, 312(2-4): 249-266. doi: 10.1016/S0040-1951(99)00174-2
    CHEN H, WANG W, ZHAO Y, 2019. Constraints on early Paleozoic magmatic processes and tectonic setting of Inexpressible Island, Northern Victoria Land, Antarctica[J]. Advances in Polar Science, 30(1): 52-69.
    CHEN T Y, SHEN Y B, ZHAO Y, et al., 2008. Geological development of Antarctica and evolution of Gondwanaland[M]. Beijing: Business Printing House: 1-372. (in Chinese)
    CRADDOCK C, 1970. Geologic Map of Antarctica (1: 5000000). American Geographical Society, Antarctic map folio series, 12: Pl. XXIII.
    DI VINCENZO G, PALMERI R, TALARICO F, et al., 1997. Petrology and geochronology of eclogites from the Lanterman Range, Antarctica[J]. Journal of Petrology, 38(10): 1391-1417. doi: 10.1093/petroj/38.10.1391
    DI VINCENZO G, ROCCHI S, 1999. Origin and interaction of mafic and felsic magmas in an evolving late orogenic setting: the Early Paleozoic Terra Nova Intrusive Complex, Antarctica[J]. Contributions to Mineralogy and Petrology, 137(1-2): 15-35. doi: 10.1007/s004100050579
    DI VINCENZO G, GHIRIBELLI B, GIORGETTI G, et al., 2001. Evidence of a close link between petrology and isotope records: constraints from SEM, EMP, TEM and in situ 40Ar-39Ar laser analyses on multiple generations of white micas (Lanterman Range, Antarctica)[J]. Earth and Planetary Science Letters, 192(3): 389-405. doi: 10.1016/S0012-821X(01)00454-X
    DI VINCENZO G, CAROSI R, PALMERI R, et al., 2007. A comparative U-Th-Pb (zircon-monazite) and 40Ar-39Ar (muscovite-biotite) study of shear zones in northern Victoria Land (Antarctica): Implications for geochronology and localized reworking of the Ross Orogen[J]. Journal of Metamorphic Geology, 25(6): 605-630. doi: 10.1111/j.1525-1314.2007.00717.x
    DI VINCENZO G, ROSSETTI F, VITI C, et al., 2013. Constraining the timing of fault reactivation: Eocene coseismic slip along a Late Ordovician ductile shear zone (northern Victoria Land, Antarctica)[J]. GSA Bulletin, 125(3-4): 609-624. doi: 10.1130/B30670.1
    DI VINCENZO G, GRANDE A, ROSSETTI F, 2014. Paleozoic Siliciclastic rocks from northern Victoria Land (Antarctica): provenance, timing of deformation, and implications for the Antarctica-Australia connection[J]. GSA Bulletin, 126(11-12): 1416-1438. doi: 10.1130/B31034.1
    DI VINCENZO G, HORTON F, PALMERI R, 2016. Protracted (~30 Ma) eclogite-facies metamorphism in northern Victoria Land (Antarctica): implications for the geodynamics of the Ross/Delamerian Orogen[J]. Gondwana Research, 40: 91-106. doi: 10.1016/j.gr.2016.08.005
    ELLIOT D H, FANNING C M, 2008. Detrital zircons from upper Permian and lower Triassic Victoria Group sandstones, Shackleton Glacier region, Antarctica: evidence for multiple sources along the Gondwana plate margin[J]. Gondwana Research, 13(2): 259-274. doi: 10.1016/j.gr.2007.05.003
    ESTRADA S, LÄUFER A, ECKELMANN K, et al., 2016. Continuous Neoproterozoic to Ordovician sedimentation at the East Gondwana margin-implications from detrital zircons of the Ross Orogen in northern Victoria Land, Antarctica[J]. Gondwana Research, 37: 426-448. doi: 10.1016/j.gr.2015.10.006
    FARABEE M J, TAYLOR E L, TAYLOR T N, 1990. Correlation of Permian and Triassic palynomorph assemblages from the central Transantarctic Mountains, Antarctica[J]. Review of Palaeobotany and Palynology, 65(1-4): 257-265. doi: 10.1016/0034-6667(90)90075-T
    FEDERICO L, CRISPINI L, CAPPONI G, et al., 2009. The Cambrian ross orogeny in northernVictoria Land (Antarctica) and New Zealand: a synthesis[J]. Gondwana Research, 15(2): 188-196. doi: 10.1016/j.gr.2008.10.004
    FEDERICO L, CRISPINI L, CAPPONI G, 2010. Fault-slip analysis and transpressional tectonics: A study of Paleozoic structures in northern Victoria Land, Antarctica[J]. Journal of Structural Geology, 32(5): 667-684. doi: 10.1016/j.jsg.2010.04.001
    GIACOMINI F, TIEPOLO M, DALLAI L, et al., 2007. On the onset and evolution of the Ross-orogeny magmatism in North Victoria Land-Antarctica[J]. Chemical Geology, 240(1-2): 103-128. doi: 10.1016/j.chemgeo.2007.02.005
    GLEN R A, COOPER R A, 2021. Evolution of the East Gondwana convergent margin in Antarctica, southern Australia and New Zealand from the Neoproterozoic to latest Devonian[J]. Earth-Science Reviews, 220: 103687. doi: 10.1016/j.earscirev.2021.103687
    GOODGE J W, FANNING C M, BENNETT V C, 2001. U-Pb evidence of~1.7 Ga crustal tectonism during the Nimrod Orogeny in the Transantarctic Mountains, Antarctica: implications for Proterozoic plate reconstructions[J]. Precambrian Research, 112(3-4): 261-288. doi: 10.1016/S0301-9268(01)00193-0
    GUNN B M, WARREN G, 1962. Geology of victoria land between the Mawson and Mullock glaciers, ross Dependency, Antarctica[R]. New Zealand Geological Survey Bulletin, New Series, No. 71, 1-157.
    HAGEN-PETER G, COTTLE J M, 2016. Synchronous alkaline and subalkaline magmatism during the late Neoproterozoic-early Paleozoic Ross orogeny, Antarctica: insights into magmatic sources and processes within a continental arc[J]. Lithos, 262: 677-698. doi: 10.1016/j.lithos.2016.07.032
    HOSKIN P W O, 2005. Trace-element composition of hydrothermal zircon and the alteration of Hadean zircon from the Jack Hills, Australia[J]. Geochimica et Cosmochimica Acta, 69(3): 637-648. doi: 10.1016/j.gca.2004.07.006
    LIU Y S, HU Z C, GAO S, et al., 2008. In situ analysis of major and trace elements of anhydrous minerals by LA-ICP-MS without applying an internalstandard[J]. Chemical Geology, 257(1-2): 34-43. doi: 10.1016/j.chemgeo.2008.08.004
    LIU Y S, GAO S, HU Z C, et al., 2010. Continental and oceanic crust recycling-induced melt-peridotite interactions in the Trans-North China Orogen: U-Pb dating, Hf isotopes and trace elements in zircons from mantle xenoliths[J]. Journal of Petrology, 51(1-2): 537-571. doi: 10.1093/petrology/egp082
    LUDWIG K R, 2003. ISOPLOT 3.00: A geochronological toolkit for Microsoft excel[M]. Berkeley: Berkeley Geochronology Center: 70.
    PALMERI R, SANDRONI S, GODARD G, et al., 2012. Boninite-derived amphibolites from the Lanterman-Mariner suture (northern Victoria Land, Antarctica): New geochemical and petrological data[J]. Lithos, 140-141: 200-223. doi: 10.1016/j.lithos.2012.02.001
    PAULSEN T S, ENCARNACIÓN J, GRUNOW A M, et al., 2007. New age constraints for a short pulse in Ross orogen deformation triggered by East-West Gondwana suturing[J]. Gondwana Research, 12(4): 417-427. doi: 10.1016/j.gr.2007.05.011
    PAULSEN T S, ENCARNACIÓN J, GRUNOW A M, et al., 2013. Age and significance of 'outboard' high-grade metamorphics and intrusives of the Ross orogen, Antarctica[J]. Gondwana Research, 24(1): 349-358. doi: 10.1016/j.gr.2012.10.004
    PAULSEN T S, ENCARNACIÓN J, GRUNOW A M, et al., 2015. Detrital mineral ages from the Ross Supergroup, Antarctica: Implications for the Queen Maud terrane and outboard sediment provenance on the Gondwana margin[J]. Gondwana Research, 27(1): 377-391. doi: 10.1016/j.gr.2013.10.006
    PAULSEN T S, DEERING C, SLIWINSKI J, et al., 2016. Detrital zircon ages from the Ross Supergroup, north Victoria Land, Antarctica: Implications for the tectonostratigraphic evolution of the Pacific-Gondwana margin[J]. Gondwana Research, 35: 79-96. doi: 10.1016/j.gr.2016.04.001
    PERUGINI D, POLI G, ROCCHI S, 2005. Development of viscous fingering between mafic and felsic magmas: evidence from the Terra Nova Intrusive Complex (Antarctica)[J]. Mineralogy and Petrology, 83(3-4): 151-166. doi: 10.1007/s00710-004-0064-2
    ROCCHI S, TONARINI S, ARMIENTI P, et al., 1998. Geochemical and isotopic structure of the early Palaeozoic active margin of Gondwana in northern Victoria Land, Antarctica[J]. Tectonophysics, 284(3-4): 261-281. doi: 10.1016/S0040-1951(97)00178-9
    ROCCHI S, BRACCIALI L, DI VINCENZO G, et al., 2011. Arc accretion to the early Paleozoic Antarctic margin of Gondwana in Victoria Land[J]. Gondwana Research, 19(3): 594-607. doi: 10.1016/j.gr.2010.08.001
    ROCCHI S, DI VINCENZO G, DINI A, et al., 2015. Time-space focused intrusion of genetically unrelated arc magmas in the early Paleozoic Ross-Delamerian Orogen (Morozumi Range, Antarctica)[J]. Lithos, 232: 84-99. doi: 10.1016/j.lithos.2015.06.006
    ROSSETTI F, VIGNAROLI G, DI VINCENZO G, et al., 2011. Long-lived orogenic construction along the paleo-Pacific margin of Gondwana (deep freeze range, North Victoria Land, Antarctica)[J]. Tectonics, 30(4): TC4008. http://www.researchgate.net/profile/A_Gerdes/publication/230629964_Long-lived_orogenic_construction_along_the_paleo-Pacific_margin_of_Gondwana_Deep_Freeze_Range_North_Victoria_Land_Antarctica/links/00463525d996ad23d2000000.pdf
    SHERATON J W, BABCOCK R S, BLACK L P, et al., 1987. Petrogenesis of granitic rocks of the Daniels Range, northern Victoria Land, Antarctica[J]. Precambrian Research, 37(4): 267-286. doi: 10.1016/0301-9268(87)90078-7
    STUMP E, FITZGERALD P G, 1992. Episodic uplift of the transantarctic mountains[J]. Geology, 20(2): 161-164. doi: 10.1130/0091-7613(1992)020<0161:EUOTTM>2.3.CO;2
    STUMP E, 1995. Ross orogen of the transantarctic mountains[M]. Cambridge: Cambridge University Press: 1-284.
    SUN S S, MCDONOUGH W F, 1989. Chemical and isotopic systematics of Oceanic Basalts: implications for mantle composition and processes[J]. Geological Society, London, Special Publications, 42(1): 313-345. doi: 10.1144/GSL.SP.1989.042.01.19
    TALARICO F, BORSI L, LOMBARDO B, 1995. Relict granulites in the Ross Orogen of northern Victoria Land (Antarctica), Ⅱ. Geochemistry and palaeo-tectonic implications[J]. Precambrian Research, 75(3-4): 157-174. doi: 10.1016/0301-9268(95)80004-2
    TALARICO F, CASTELLI D, 1995. Relict granulites in the Ross orogen of northern Victoria Land (Antarctica), Ⅰ. Field occurrence, petrography and metamorphic evolution[J]. Precambrian Research, 75(3-4): 141-156. doi: 10.1016/0301-9268(95)80003-Z
    WANG W, HU J M, CHEN H, et al., 2014. LA-ICP-MS zircon U-Pb ages and geological constraint of intrusive rocks from the Inexpressible Island, Northern Victoria Land, Antarctica[J]. Geological Bulletin of China, 33(12): 2023-2031. (in Chinese with English abstract) http://en.cnki.com.cn/Article_en/CJFDTOTAL-ZQYD201412024.htm
    WEAVER S D, BRADSHAW J D, LAIRD M G, 1984. Geochemistry of Cambrian volcanics of the Bowers Supergroup and implications for the Early Palaeozoic tectonic evolution of northern Victoria Land, Antarctica[J]. Earth and Planetary Science Letters, 68(1): 128-140. doi: 10.1016/0012-821X(84)90145-6
    WU Y B, ZHENG Y F, 2004. Genesis of zircon and its constraints on interpretation of U-Pb age[J]. Chinese Science Bulletin, 49(16): 1589-1604. (in Chinese) doi: 10.1360/csb2004-49-16-1589
    陈廷愚, 沈炎彬, 赵越, 等, 2008. 南极洲地质发展与冈瓦纳古陆演化[M]. 北京: 商务印书馆: 1-372.
    王伟, 胡健民, 陈虹, 等, 2014. 南极北维多利亚地难言岛侵入岩LA-ICP-MS锆石U-Pb年龄及其地质意义[J]. 地质通报, 33(12): 2023-2031. doi: 10.3969/j.issn.1671-2552.2014.12.024
    吴元保, 郑永飞, 2004. 锆石成因矿物学研究及其对U-Pb年龄解释的制约[J]. 科学通报, 49(16): 1589-1604. doi: 10.3321/j.issn:0023-074X.2004.16.002
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  • 收稿日期:  2021-06-13
  • 修回日期:  2021-08-31
  • 预出版日期:  2021-12-31
  • 刊出日期:  2021-10-28

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