The continental lower crust

被引:0
作者
Zhang Y. [1 ]
Zhai M. [1 ,2 ]
Zhou Y. [1 ,2 ]
Zhou L. [1 ]
机构
[1] State Key Laboratory of Lithospheric Evolution, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing
[2] College of Earth and Planetary Sciences, University of Chinese Academy of Sciences, Beijing
关键词
continental lower crust; craton; geodynamics; geological process; interaction between crust and mantle; orogeny;
D O I
10.13745/j.esf.sf.2023.12.27
中图分类号
P3 [地球物理学];
学科分类号
0708 ;
摘要
The lower crust, linking the lithospheric mantle and the upper crust, is the most active place of energy exchange between the crust and the mantle; and partial melting of the lower crust and upper mantle, and delamination of the lower crust can directly lead to crust/mantle material exchange, re-cycling, recombination. In other words, the lower crust is one of the most important site for mantle-crust interactions where magma underplating, ana texis, delamination, high-grade metamorphism, and other processes take place. However, the lower crust has been largely overlooked by previous studies of the deep Earth. In this paper, the lower crustal profile of the North China Craton is described in detail. On this basis, the craton-type lower crust processes are discussed, and their dynamic significance and important position in the study of continental dynamics are emphasized. Cratonization is the transition of the formerly chaotic crust of the continent to stable upper and lower crust, and thus establishing a stable lithosphere. This unprecedented stable relationship between the crust and the mantle has been maintained from the beginning to the present, and is the basis for continental evolution, ocean-continent interaction, and crust-mantle interaction. The cratonic crust is not static after formation, and the continental boundaries can change during ocean-continental subduction-collisions. Especially during continent-continent collisions, the continental crust that can form different continental blocks is superimposed, thickened, collapsed, disassembled, underpinned and re-stabilized. At the root of the continental orogenic belt, a new lower crust is formed to become the lower crust of the orogenic belt type. We, therefore, suggest in this paper that the craton-type lower crust processes should receive full attention in the study of the deep Earth as well as in the designing of geoscience curricula. © 2024 Science Frontiers editorial department. All rights reserved.
引用
收藏
页码:28 / 45
页数:17
相关论文
共 56 条
[1]  
WINDLEY B F., Overview and history of investigation of early Earth history, Earth's oldest rocks, pp. 3-7, (2007)
[2]  
ROGERS J J W, SANTOSH M T., Tectonics and surface effects of the Supercontinent Columbia, Gondwana Research, 15, pp. 373-380, (2009)
[3]  
BOHLEN S R, MERZGER K., Origin of granulite terrenes and the formation of the lowermost continental crust, Science, 244, pp. 326-329, (1989)
[4]  
MA X Y., Geological observation for southern and northern parts along the geological profile of Xiangshui, Jiangsu-Mandula, Inner Mongolia, Journal of Earth Science, 14, pp. 1-6, (1989)
[5]  
GAO S, RUDNICK R L, YUAN H L, Et al., Recycling lower continental crust in the North China Craton, Nature, 432, pp. 892-897, (2004)
[6]  
KERN H, Gao S, LIU Q S L., Seismic properties and densities of middle and lower crustal rocks exposed along the North China geoscience transect, Earth and Planetary Science Letters, 139, pp. 439-455, (1996)
[7]  
RUDNICK R L, FOUTAIN D M., Nature and composition of the continental crust: a lower crustal perspective, Reviews of Geophysics, 33, pp. 267-309, (1995)
[8]  
PERCIVAL J A, FOUTAIN D M, SALIBURY M H., Exposed crustal cross-sections as windows of the lower crust, Continental lower crust, pp. 317-319, (1992)
[9]  
CHRISTENSEN N I, MOONEY W D., Seismic velocity structure and composition of the continental crust: a global view, Journal of Geophysical Research: Solid Earth, 100, B7, pp. 9761-9788, (1995)
[10]  
WEAVER B L, TARNEY J., Elemental depletion in Archaean granilite facies rocks, Migmatite, melting and metamorphism, pp. 250-263, (1983)