A CONTINUOUS KINEMATIC MODEL OF PLATE-TECTONIC MOTIONS

被引:15
|
作者
BERCOVICI, D
WESSEL, P
机构
[1] Department of Geology and Geophysics, School of Ocean and Earth Science and Technology, University of Hawaii, Honolulu, Hawaii
关键词
PLATE MANTLE COUPLING; PLATE TECTONICS; TOROIDAL POLOIDAL PARTITIONING;
D O I
10.1111/j.1365-246X.1994.tb00144.x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
One of the many problems in the study of plate-mantle coupling is the disparity between the theory of mantle dynamics-which involves continuum physics-and the theory of plate tectonics-which employs discontinuous plates. This discordance causes a variety of difficulties in geodynamic models, e.g. infinite tractions between the plates and mantle, As motions of the Earth's surface do not involve discontinuous plates (i.e. intraplate deformation is significant and plate margins have finite width), it is necessary to adjust the plate-tectonic model to allow for continuous surface motions. Here we present a model of plate motions on a sphere using analytically continuous (i.e. infinitely differentiable) functions to describe both plate geometry and plate margin width. We first apply this model to the idealized system of a single 'rectangular' plate to examine the influence of plate geometry and size on kinetic-energy partitioning of plate motions on a sphere. The ratio of toroidal (strike slip and spin) kinetic energy to poloidal (convergent-divergent) kinetic energy is affected not only by the relative lengths of strike-slip and convergent-divergent margins, but also on plate size, which controls the magnitude of plate spin. For large plates, spin toroidal motion contributes a major portion of the net toroidal energy. Basic concepts from this simple illustrative model are then expanded to derive an analytically continuous model of present-day plate-tectonic motions. The plate boundary for any given plate is smoothed and expressed as a single-valued differentiable function; this function is employed to generate the analytically continuous shape function of the plate. The shape function is then used to model the plate's motion about its contemporaneous Euler pole. This technique is carried out for all the plates and their motions are superposed to yield a complete yet simplified model of present-day plate motions. We use this model to examine the influence of plate margin width on energy partitioning for the Earth's plates; this approximately indicates the extent to which energy partitioning is influenced by intraplate deformation. The calculations indicate that the introduction of finite margin width allows spin vorticity to make a larger contribution to the toroidal energy, Depending on margin width, the partitioning of energy is possibly reversed, with toroidal energy assuming a larger proportion of the net kinetic energy. The model of continuous plate motions proposed here may not only ease the disparity between the theories of plate tectonics and mantle convection, but is a first simple step toward incorporating intraplate deformation into plate tectonics.
引用
收藏
页码:595 / 610
页数:16
相关论文
共 50 条
  • [31] SOME AFRICAN ALKALINE RING-COMPLEX PROVINCES AND THEIR PLATE-TECTONIC SIGNIFICANCE
    ONUOHA, KM
    GERLANDS BEITRAGE ZUR GEOPHYSIK, 1985, 94 (01): : 52 - 62
  • [32] Plate-tectonic processes at ca. 2.0 Ga: Evidence from >600 km of plate convergence
    Yin, An
    Brandl, Gunther
    Kroener, Alfred
    GEOLOGY, 2020, 48 (02) : 103 - 107
  • [33] Plate-tectonic reconstructions predict part of the Hawaiian hotspot track to be preserved in the Bering Sea
    Steinberger, Bernhard
    Gaina, Carmen
    GEOLOGY, 2007, 35 (05) : 407 - 410
  • [34] The Early Permian Thysanophyllum coral belt: Another clue to Permian plate-tectonic reconstructions
    Stevens, Calvin H.
    Bulletin of the Geological Society of America, 1982, 93 (08): : 798 - 803
  • [35] Emergence of silicic continents as the lower crust peels off on a hot plate-tectonic Earth
    Chowdhury, Priyadarshi
    Gerya, Taras
    Chakraborty, Sumit
    NATURE GEOSCIENCE, 2017, 10 (09) : 698 - +
  • [36] The Sumatra earthquake of December 26, 2004, as an event unrelated to the plate-tectonic process in the lithosphere
    Shevchenko, V. I.
    Lukk, A. A.
    Prilepin, M. T.
    IZVESTIYA-PHYSICS OF THE SOLID EARTH, 2006, 42 (12) : 1018 - 1037
  • [37] NORTHLAND OPHIOLITE, NEW-ZEALAND, AND IMPLICATIONS FOR PLATE-TECTONIC EVOLUTION OF THE SOUTHWEST PACIFIC
    MALPAS, J
    SPORLI, KB
    BLACK, PM
    SMITH, IEM
    GEOLOGY, 1992, 20 (02) : 149 - 152
  • [38] CONTRASTING PLATE-TECTONIC STYLES OF THE QINLING-DABIE-SULU AND FRANCISCAN METAMORPHIC BELTS
    ERNST, WG
    LIOU, JG
    GEOLOGY, 1995, 23 (04) : 353 - 356
  • [39] New visualizations of global tectonic plate motions and plate boundary interactions
    Henderson, DM
    TERRA NOVA, 2001, 13 (01) : 70 - 78
  • [40] Tectonic synthesis of the Ouachita-Marathon-Sonora otogenic margin of southern Laurentia: Stratigraphic and structural implications for timing of deformational events and plate-tectonic model
    Poole, Forrest G.
    Perry, William J.
    Madrid, Raul J.
    Amaya-Martinez, Ricardo
    Special Paper of the Geological Society of America, 2005, 393 : 543 - 596