首页> 外文期刊>Tectonophysics: International Journal of Geotectonics and the Geology and Physics of the Interior of the Earth >A hypothesis for Proterozoic-Phanerozoic supercontinent cyclicity, with implications for mantle convection, plate tectonics and Earth system evolution
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A hypothesis for Proterozoic-Phanerozoic supercontinent cyclicity, with implications for mantle convection, plate tectonics and Earth system evolution

机译:一个元古生代的超大陆周期性假设,对地幔对流,板块构造和地球系统演化有影响

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We present a conceptual model for supercontinent cycles in the Proterozoic-Phanerozoic Eons. It is based on the repetitive behavior of C and Sr isotopes in marine carbonates and U-Pb ages and epsilon Hf of detrital zircons seen during the Neoproterozoic-Paleozoic and Paleoproterozoic Eras, respectively. These records are considered to reflect secular changes in global tectonics, and it is hypothesized that the repetitive pattern is caused by the same type of changes in global tectonics. The fundamental premise of this paper is that such repetitive changes should also be recorded in orogenic belts worldwide. This carries the implication that Neoproterozoic-Paleozoic orogenic belts should have Paleoproterozoic equivalents. It is proposed that this is the case for the East African, Uralides and Ouachita-Alleghanian orogens, which have Paleoproterozoic analogs in the West African-Amazon, Laurentian and East European cratons, respectively. The Neoproterozoic-Paleozoic orogenic belts are not isolated features but occur in a specific global context, which correspond to the relatively well-constrained Neoproterozoic break-up of Rodinia, and the subsequent Late Paleozoic assembly of Pangea. The existence of Paleoproterozoic equivalents to Neoproterozoic-Paleozoic orogens requires that the same cycle defined the Paleoproterozoic. We therefore hypothesize that there were Paleoproterozoic supercontinents equivalent to Rodinia and Pangea, and that Proterozoic-Phanerozoic supercontinents are comprised of two basic types of configurations, equivalent to Rodinia (R-type) and Pangea (P-type). The Paleoproterozoic equivalent of Rodinia is likely the first supercontinent to have formed, and Proterozoic-Phanerozoic supercontinent cycles are therefore defined by R- to R-type cycles, each lasting approximately 1.5 Gyr. We use this cyclic pattern as a framework to develop a conceptual model that predicts the configuration and cycles of Proterozoic-Phanerozoic supercontinents, and their relation to mantle convection and Earth system evolution. (C) 2015 Elsevier B.V. All rights reserved.
机译:我们提出了元古代-杂生代离子中的超大陆循环的概念模型。它是基于C和Sr同位素在海洋碳酸盐和U-Pb年龄以及碎屑锆石的εHf在新元古代—古生代和古元古代时代的重复行为而建立的。这些记录被认为反映了全球构造的长期变化,并且假设重复模式是由全球构造的相同类型的变化引起的。本文的基本前提是,此类重复性变化也应记录在全球造山带中。这暗示着新元古代—古生代造山带应具有古元古代等价物。建议东非造山带,乌拉利德造山带和瓦希塔-阿勒加尼造山带就是这种情况,它们在西非亚马逊河,洛朗山脉和东欧克拉通分别具有古元古代类似物。新元古代—古生代造山带不是孤立的特征,而是在特定的全球范围内发生的,这对应于罗迪尼亚相对受限制的新元古代解体以及随后的Pangea古生代组合。新元古代-古生代造山带的古元古代等价物的存在要求以相同的周期定义古元古代。因此,我们假设存在与Rodinia和Pangea相当的古元古代超大陆,而元古代-Phanerozoic超大陆由两种基本类型的构造组成,分别相当于Rodinia(R型)和Pangea(P型)。 Rodinia的古元古代等价物很可能是第一个形成的超大陆,因此,元古代-Phanerozoic的超大陆周期是由R型到R型周期定义的,每个周期持续约1.5 Gyr。我们使用这种循环模式作为框架来开发概念模型,该模型可预测元古代-半生代超大陆的构造和周期,以及它们与地幔对流和地球系统演化的关系。 (C)2015 Elsevier B.V.保留所有权利。

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