RECENT GEODYNAMIC EVOLUTION OF CONVERGENT PLATE MARGINS AND THE RECONSTRUCTION OF FOSSIL PLATE BOUNDARIES

被引:1
作者
HANUS, V
VANEK, J
机构
[1] Laboratory of Global Tectonics and Metallogeny, Geophysical Institute, Acad. Sci. Czech Republic, Prague
关键词
PLATE TECTONICS; CONVERGENT PLATE MARGINS; WADATI-BENIOFF ZONES; CALC-ALKALINE VOLCANISM; FOSSIL PLATE BOUNDARIES;
D O I
10.1007/BF02295892
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
The discovery of paleoplates buried in the upper mantle leads to an interpretation of the subduction as a discontinuous process running in cycles and shifting the place of its operation in or against the direction of ocean floor spreading. This mechanism explains the distribution of calc-alkaline volcanism of different age in fossil convergent plate boundaries. The establishment of regular spatial correlation of the aseismic gap in the Wadati-Benioff zones with the distribution of calc-alkaline volcanism enables to reconstruct fossil plate boundaries and to define allochtonous terranes in apparently homogeneous continental plates. The hampering effect of the ocean floor morphology and of the fragments of continental plates approaching the trench, which substantially influences the rates of subduction and the geodynamic history of active continental margins in different domains along the trench, allows us to understand the complicated geological development of continental wedges in fossil convergent plate margins. The establishment of the segmented nature of active subduction zones and the dramatic morphology of the lower limit of the active subducted slab along the trench help us to interpret extensive lateral gaps in volcanic chains overlying active as well as fossil subduction zones.
引用
收藏
页码:375 / 388
页数:14
相关论文
共 22 条
[1]  
Barazangi M., Isacks B.L, Oliver J., Dubois J., Pascal G., Descent of lithosphere beneath New Hebrides, Tonga-Fiji and New Zealand: Evidence for detached slabs, Nature, 242, pp. 98-101, (1973)
[2]  
Hanus V., Vanek J., Intermediate aseismicity of the Andean subduction zone and recent andesitic volcanism, J. Geophys., 42, pp. 219-223, (1976)
[3]  
Hanus V., Vanek J., Subduction of the Cocos plate and deep active fracture zones of Mexico, Geofisica Internacional, 17, pp. 14-53, (1977)
[4]  
Hanus V., Vanek J., Morphology of the Andean Wadati-Benioff zone, andesitic volcanism, and tectonic features of the Nazca plate, Tectonophysics, 44, pp. 65-77, (1978)
[5]  
Hanus V., Vanek J., Tonga-Lau system: Deep collision of subducted lithospheric plates, J. Geophys., 44, pp. 473-480, (1978)
[6]  
Hanus V., Vanek J., Morphology of the Wadati-Benioff zone, andesitic volcanism, and active fracture zones in Central America, Studia geoph. et geod., 23, pp. 218-234, (1979)
[7]  
Hanus V., Vanek J., Morphology and volcanism of the Wadati-Benioff zone in the Tonga-Kermadec system of recent subduction, New Zealand Journal of Geology and Geophysics, 22, pp. 659-671, (1979)
[8]  
Hanus V., Vanek J., Northern part of the Tonga region: A complicated subduction closure, J. Geophys., 46, pp. 385-395, (1979)
[9]  
Hanus V., Vanek J., Time sequence of volcanism and subduction in the Tonga island arc, Čas. Min. Geol. (Prague), 24, pp. 155-163, (1979)
[10]  
Hanus V., Vanek J., Plate tectonic interpretation of deep earthquakes between the Tonga-Lau and New Hebrides subduction zones, Tectonophysics, 75, pp. T19-T28, (1981)