Continental rift to back-arc basin: Jurassic-Cretaceous stratigraphical and structural evolution of the Larsen Basins, Antarctic Peninsula

被引:128
|
作者
Hathway, B [1 ]
机构
[1] British Antarctic Survey, Cambridge CB3 0ET, England
关键词
Antarctica; South America; Gondwana; Mesozoic; back-arc basins;
D O I
10.1144/jgs.157.2.417
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The Larsen Basin developed in Jurassic times as a result of continental rifting during the early stages of Gondwana break-up. Lower-?Upper Jurassic non-marine sedimentary and volcanic rocks constitute a syn-rift megasequence recording initial largely amagmatic extension and subsequent widespread extension-related silicic volcanism. A succeeding, Kimmeridgian-early Berriasian transgressive megasequence, consisting largely of anoxic-dysoxic hemipelagic mudstones, is thought to have been deposited during a thermal subsidence phase when relative magmatic quiescence and peak Jurassic eustatic sea levels served to maximize sediment starvation. The fragmentary record for late Berriasian-Barremian limes suggests that a ?regressive megasequence may have developed in the earlier part of this period, recording increased sediment yield to the Larsen Basin from the increasingly emergent Antarctic Peninsula are. Subsequently, strata in the southern, but not the northern, part of the basin underwent relatively intense eastward-verging deformation, possibly during the formation of a retro-arc fold-thrust belt. Where exposed, the lower part of the succeeding Aptian-Eocene megasequence consists of a deep-marine elastic wedge deposited along the fault-bounded western basin margin during a phase of are uplift and related differential subsidence. Following partial basin inversion in Late Cretaceous times, regression took place as reduced basinal subsidence rates allowed shallow marine facies to prograde basinward.
引用
收藏
页码:417 / 432
页数:16
相关论文
共 35 条
  • [21] Basin evolution within the Kitakami Massif, northeast Japan: relationship between sedimentation, tectonics and volcanism in an incipient Neogene continental back-arc basin
    Yagishita, K
    Komori, K
    SEDIMENTARY GEOLOGY, 2000, 133 (1-2) : 7 - 26
  • [22] Tectonic evolution of the Cretaceous Gyeongsang Back-arc Basin, SE Korea: Transition from sinistral transtension to strike-slip kinematics
    Cheon, Youngbeom
    Ha, Sangmin
    Lee, Seongjun
    Son, Moon
    GONDWANA RESEARCH, 2020, 83 : 16 - 35
  • [23] On the tectono-stratigraphic evolution and hydrocarbon systems of extensional back-arc basins: inferences from 2D basin modelling from the Pannonian basin
    Bartha, Attila
    Balazs, Attila
    Szalay, Arpad
    ACTA GEODAETICA ET GEOPHYSICA, 2018, 53 (03) : 369 - 394
  • [24] On the tectono-stratigraphic evolution and hydrocarbon systems of extensional back-arc basins: inferences from 2D basin modelling from the Pannonian basin
    Attila Bartha
    Attila Balázs
    Árpád Szalay
    Acta Geodaetica et Geophysica, 2018, 53 : 369 - 394
  • [25] Basin evolution during the transition from continental rifting to subduction: Evidence from the lithofacies and modal petrology of the Jurassic Latady Group, Antarctic Peninsula
    Willan, RCR
    Hunter, MA
    JOURNAL OF SOUTH AMERICAN EARTH SCIENCES, 2005, 20 (03) : 171 - 191
  • [26] Sandstone Provenance of the Arperos Basin (Sierra de Guanajuato, Central Mexico): Late Jurassic-Early Cretaceous Back-Arc Spreading as the Foundation of the Guerrero Terrane
    Martini, Michelangelo
    Mori, Laura
    Solari, Luigi
    Centeno-Garcia, Elena
    JOURNAL OF GEOLOGY, 2011, 119 (06): : 597 - 617
  • [27] Petrological vestiges of the Late Jurassic-Early Cretaceous transition from rift to back-arc basin in southernmost Chile: New age and geochemical data from the Capitan Aracena, Carlos III, and Tortuga ophiolitic complexes
    Calderon, M.
    Prades, C. F.
    Herve, F.
    Avendano, V.
    Fanning, C. M.
    Massonne, H. -J.
    Theye, T.
    Simonetti, A.
    GEOCHEMICAL JOURNAL, 2013, 47 (02) : 201 - 217
  • [28] Mineral, bulk rock, and isotope geochemistry of the Late Cretaceous Sabzevar ophiolite in NE Iran and the magmatic and tectonic evolution of a continental back-arc basin oceanic crust in the Mesozoic Tethyan orogenic belt
    Moghadam, Hadi Shafaii
    Xiao, Wenjiao
    Dilek, Yildirim
    Ghorbani, Ghasem
    Chiaradia, Massimo
    Santos, Jose F.
    Ottley, Chris J.
    Karsli, Orhan
    Khedr, Mohamed Zaki
    Arai, Shoji
    GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2025, 137 (1-2) : 649 - 681
  • [29] Paleoproterozoic Back-Arc Basin Opening and Closure: Evidence from the Structural Research of the Volcanic-Sedimentary Rocks in the Helan Town, Liaodong Peninsula
    Tian Z.
    Xu W.
    Liu L.
    Ji L.
    Diqiu Kexue - Zhongguo Dizhi Daxue Xuebao/Earth Science - Journal of China University of Geosciences, 2020, 45 (09): : 3217 - 3238
  • [30] Provenance analysis on detrital zircons from the back-arc Arivechi basin: Implications for the Upper Cretaceous tectonic evolution of northern Sonora and southern Arizona
    Luis Rodriguez-Castaneda, Jose
    Ortega-Rivera, Amabel
    Roldan-Quintana, Jaime
    Guadalupe Espinoza-Maldonado, Inocente
    JOURNAL OF SOUTH AMERICAN EARTH SCIENCES, 2018, 84 : 276 - 298