3-D shear wave velocity structure of the crust and upper mantle in South China Sea and its surrounding regions by surface wave dispersion analysis

被引:49
|
作者
Wu, HH [1 ]
Tsai, YB
Lee, TY
Lo, CH
Hsieh, CH
Van Toan, D
机构
[1] Natl Cent Univ, Inst Geophys, Chungli 32054, Taiwan
[2] Natl Taiwan Normal Univ, Dept Earth Sci, Taipei, Taiwan
[3] Natl Taiwan Univ, Dept Earth Sci, Taipei 1617, Taiwan
[4] I Shou Univ, Dept Civil & Ecol Engn, Kaohsiung 840, Taiwan
[5] Natl Ctr Nat Sci & Technol, Inst Geol Sci, Hanoi, Vietnam
关键词
3-D shear wave velocity structure; constrained block inversion method;
D O I
10.1007/s11001-005-0730-8
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
In this study, we construct a 3-D shear wave velocity structure of the crust and upper mantle in South China Sea and its surrounding regions by surface wave dispersion analysis. We use the multiple filter technique to calculate the group velocity dispersion curves of fundamental mode Rayleigh and Love waves with periods from 14 s to 120 s for earthquakes occurred around the Southeast Asia. We divide the study region (80 degrees E-140 degrees E, 16 degrees S-32 degrees N) into 3 degrees x 3 degrees blocks and use the constrained block inversion method to get the regionalized dispersion curve for each block. At some chosen periods, we put together laterally the regionalized group velocities from different blocks at the same period to get group velocity image maps. These maps show that there is significant heterogeneity in the group velocity of the study region. The dispersion curve of each block was then processed by surface wave inversion method to obtain the shear wave velocity structure. Finally, we put the shear wave velocity structures of all the blocks together to obtain the three-dimensional shear wave velocity structure of crust and upper mantle. The three-dimensional shear wave velocity structure shows that the shear wave velocity distribution in the crust and upper mantle of the South China Sea and its surrounding regions displays significant heterogeneity. There are significant differences among the crustal thickness, the lithospheric thickness and the shear wave velocity of the lid in upper mantle of different structure units. This study shows that the South China Sea Basin, southeast Sulu Sea Basin and Celebes Sea Basin have thinner crust. The thickness of crust in South China Sea Basin is 5-10 km; in Indochina is 25-40 km; in Peninsular Malaysia is 30-35 km; in Borneo is 30-35 km; in Palawan is 35 km; in the Philippine Islands is 30-35 km, in Sunda Shelf is 30-35 km, in Southeast China is 30-40 km, in West Philippine Basin is 5-10 km. The South China Sea Basin has a lithosphere with thickness of about 45-50 km, and the shear wave velocity of its lid is about 4.3-4.7 km/s; Indochina has a lithosphere with thickness of about 55-70 km, and the shear wave velocity of its lid is about 4.3-4.5 km/s; Borneo has a lithosphere with thickness of about 55-60 km, and the shear wave velocity of its lid is about 4.1-4.3 km/s; the Philippine Islands has a lithosphere with thickness of about 55-60 km, and the shear wave velocity of its lid is about 4.2-4.3 km/s, West Philippine Basin has a lithosphere with thickness of about 50-55 km, and the shear wave velocity of its lid is about 4.7-4.8 km/s, Sunda Self has a lithosphere with thickness of about 55-65 km, and the shear wave velocity of its lid is about 4.3 km/s. The Red-River Fault Zone probably penetrates to a depth of at least 200 km and is plausibly the boundary between the South China Block and the Indosinia Block.
引用
收藏
页码:5 / 27
页数:23
相关论文
共 50 条
  • [11] Crust and upper mantle shear wave structure of Northeast Algeria from Rayleigh wave dispersion analysis
    Radi, Zohir
    Yelles-Chaouche, Abdelkrim
    Corchete, Victor
    Guettouche, Salim
    PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 2017, 270 : 84 - 89
  • [12] Shear wave Q structure and its lateral variation in the crust of China and surrounding regions
    Jemberie, AL
    Mitchell, BJ
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2004, 157 (01) : 363 - 380
  • [13] Three dimensional shear wave velocity structure of the crust and upper mantle beneath China from ambient noise surface wave tomography
    Sun, Xinlei
    Song, Xiaodong
    Zheng, Sihua
    Yang, Yingjie
    Ritzwoller, Michael H.
    EARTHQUAKE SCIENCE, 2010, 23 (05) : 449 - 463
  • [14] Three dimensional shear wave velocity structure of the crust and upper mantle beneath China from ambient noise surface wave tomography
    Michael H.Ritzwoller
    Earthquake Science, 2010, (05) : 449 - 463
  • [15] Shear velocity structure of the crust and upper mantle of Madagascar derived from surface wave tomography
    Pratt, Martin J.
    Wysession, Michael E.
    Aleqabi, Ghassan
    Wiens, Douglas A.
    Nyblade, Andrew A.
    Shore, Patrick
    Rambolamanana, Gerard
    Andriampenomanana, Fenitra
    Rakotondraibe, Tsiriandrimanana
    Tucker, Robert D.
    Barruol, Guilhem
    Rindraharisaona, Elisa
    EARTH AND PLANETARY SCIENCE LETTERS, 2017, 458 : 405 - 417
  • [16] Shear wave velocity structure of the crust and upper mantle in Southeastern Tibet and its geodynamic implications
    Zhang, Zhiqi
    Yao, Huajian
    Yang, Yan
    SCIENCE CHINA-EARTH SCIENCES, 2020, 63 (09) : 1278 - 1293
  • [17] Shear wave velocity structure of the crust and upper mantle in Southeastern Tibet and its geodynamic implications
    Zhiqi ZHANG
    Huajian YAO
    Yan YANG
    Science China(Earth Sciences), 2020, 63 (09) : 1278 - 1293
  • [18] Shear wave velocity structure of the crust and upper mantle in Southeastern Tibet and its geodynamic implications
    Zhiqi Zhang
    Huajian Yao
    Yan Yang
    Science China Earth Sciences, 2020, 63 : 1278 - 1293
  • [19] A 3D shear-wave velocity model of the upper mantle beneath China and the surrounding areas
    Yuan, Xiaohui (yuan@gfz-potsdam.de), 1600, Elsevier B.V., Netherlands (633):
  • [20] A 3D shear-wave velocity model of the upper mantle beneath China and the surrounding areas
    Pandey, Shantanu
    Yuan, Xiaohui
    Debayle, Eric
    Priestley, Keith
    Kind, Rainer
    Tilmann, Frederik
    Li, Xueqing
    TECTONOPHYSICS, 2014, 633 : 193 - 210