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Quantitative Correlation between Geodynamic Systems and Geodynamic Cycles of Various Ranks

机译:地球动力学系统与不同等级地球动力学循环之间的定量相关性

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摘要

A concept of geodynamics of hierarchically subordinate geospheres developed by the author is briefly characterized. Geospheres of different ranks—(ⅰ) the Earth as a whole, (ⅱ) the mantle and the crust, (ⅲ) the upper mantle and the crust, (ⅳ) the asthenosphere + the lithosphere, and (ⅴ) sedimentary cover—are successively enclosed in one another. Convective geodynamic systems of the respective ranks function in each of these geospheres. Such systems are composed of cells controlled by balanced arrangement of the tectonic flow and consisting, in turn, of domains of horizontal compression and horizontal extension alternating in chessboard order. The hierarchical organization of geodynamic systems implies that the domain of a lower rank (a larger scale) is simultaneously a system of a higher rank (a smaller scale). The interference of geodynamic systems of various ranks generates the entire spectrum of tectonic units of different scales, from the substantially continental Northern Hemisphere and the Indo-Atlantic segment of the Earth to small folds in orogenic belts. The geodynamic systems of various ranks reveal quantitative correlation with the hierarchical series of geodynamic cycles established by V.E. Khain. The ratios of the thicknesses of the geospheres, where geodynamic systems of various ranks work, to the duration of the geodynamic cycle of the respective rank fall within a very narrow range of 0.45 ± 0.10 cm/yr. Therefore, this ratio may be regarded as an out-of-rank geodynamic constant that has dimensionality of velocity. Its formal physical meaning is a time-averaged rate of uplift of a minor elementary body of a geosphere from bottom to top during the geodynamic cycle. This rate may be deemed a characteristic velocity of the ascending convective flow in any of the aforementioned geospheres. The physical and geologic reality of this velocity is confirmed by realistic (within an order of magnitude) estimates of rates of continental drift and oceanic spreading deduced from this value. In contrast to the average velocity of tectonic flow, the average rate of deformation is variable and inversely proportional to the thickness of a geosphere of a respective rank. Not only does the thickness of a geosphere decrease with increasing rank but also the respective geodynamic system functions within more local areas. This is a specific realization of the abstract computer model of cascade convection in geospheres. The increase in the deformation rate within increasingly local areas is a manifestation of the weak link effect. The essence of this effect is clearly demonstrated by a combination of extensive but slow ductile deformation and more local but faster brittle failure resulted from small-scale deformation in the Earth's crust.
机译:简要介绍了作者开发的分级从属地球的地球动力学概念。不同等级的地层-(ⅰ)整个地球,(ⅱ)地幔和地壳,(ⅲ)上地幔和地壳,(ⅳ)软流层+岩石圈,(ⅴ)沉积层-先后相互封闭。各个等级的对流地球动力学系统在每个这些地球层中起作用。这样的系统由由构造流的平衡布置控制的单元组成,依次由水平压缩域和水平延伸域按棋盘顺序交替组成。地球动力学系统的分层组织意味着较低等级(较大规模)的域同时也是较高等级(较小规模)的系统。从基本的北半球和地球的印度-大西洋部分到造山带中的小褶皱,各种等级的地球动力学系统的干扰产生了不同规模的整个构造单元谱。不同等级的地球动力学系统揭示了与V.E.建立的地球动力学循环的分层序列的定量相关性。卡恩不同等级的地球动力学系统在其中工作的地球球的厚度与相应等级的地球动力学循环持续时间的比值落在0.45±0.10 cm / yr的非常窄的范围内。因此,该比率可以被认为是具有速度维数的过高的地球动力学常数。它的形式上的物理含义是在地球动力学循环中,一个地球上次要基本物体从底部到顶部的时间平均上升速率。该速率可以认为是上述任何一个地球圈中上升对流的特征速度。该速度的物理和地质现实是通过从该值推论得出的大陆漂移和海洋扩散速率的实际估计值(在一个数量级内)来确认的。与构造流的平均速度相反,平均变形速率是可变的,并且与相应等级的地球层的厚度成反比。不仅地球层的厚度随着等级的增加而减小,而且各个地球动力学系统在更多局部区域中发挥作用。这是地圈级联对流抽象计算机模型的特定实现。局部区域内变形率的增加是薄弱环节效应的体现。这种作用的实质清楚地证明了地壳的小范围变形导致的广泛但缓慢的延性变形与局部性较大但较快的脆性破坏的结合。

著录项

  • 来源
    《Geotectonics》 |2006年第2期|p.83-100|共18页
  • 作者

    M. A. Goncharov;

  • 作者单位

    Faculty of Geology, Moscow State University, Vorob'evy gory, Moscow, 119899 Moscow;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 天文学、地球科学;
  • 关键词

  • 入库时间 2022-08-18 03:40:03

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