Imaging crustal and upper mantle structure beneath the Colorado Plateau using finite frequency Rayleigh wave tomography

被引:34
|
作者
Liu, Kaijian [1 ,2 ]
Levander, Alan [1 ]
Niu, Fenglin [1 ]
Miller, Meghan S. [3 ]
机构
[1] Rice Univ, Dept Earth Sci, Houston, TX 77005 USA
[2] Rice Univ, Appl Phys Program, Houston, TX 77005 USA
[3] Univ So Calif, Dept Earth Sci, Los Angeles, CA 90089 USA
来源
GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS | 2011年 / 12卷
基金
美国国家科学基金会;
关键词
Colorado Plateau; Rayleigh wave tomography; lithospheric delamination; partial melt; small-scale convection; RIO-GRANDE RIFT; AZIMUTHAL ANISOTROPY BENEATH; NORTH-AMERICAN LITHOSPHERE; SMALL-SCALE CONVECTION; WESTERN UNITED-STATES; SEISMIC-REFRACTION; VELOCITY STRUCTURE; CENOZOIC MAGMATISM; ROCKY-MOUNTAINS; FARALLON SLAB;
D O I
10.1029/2011GC003611
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
A new 3-D shear velocity model of the crust and upper mantle beneath the Colorado Plateau and surrounding regions of the southwestern United States was made with finite frequency Rayleigh wave tomography using EarthScope/USArray data. The goal of our study is to examine the Colorado Plateau lithospheric modification that has resulted from Cenozoic tectonism and magmatism. We have inverted for the isotropic Vs model from a grid of Rayleigh wave dispersion curves obtained by a modified two-plane wave method for periods from 20 to 167 s. We map the lithosphere-asthenosphere boundary under the Colorado Plateau by identifying the middle of the shallowest upper mantle negative Vs gradient. The depths of the lithosphere-asthenosphere boundary inferred here agree well with receiver function estimates made independently. The strong lateral heterogeneity of shear velocity can be mainly attributed to 200-400 K variations in temperature together with similar to 1% partial melt fraction in the shallow upper mantle. The resulting Vs structures clearly image the upper mantle low-velocity zones under the Colorado Plateau margins that are associated with magmatic encroachment. These upper mantle low-velocity zones resulted from the convective removal of the Colorado Plateau lithosphere that had been rehydrated by subduction-released water, refertilizing and destabilizing it. This convective erosion by the asthenosphere at the low-viscosity part of the lithosphere is driven by the large step in lithospheric thickness and the thermal gradient across the boundary between the plateau and the extended Basin and Range since the Mid-Cenozoic at a rate similar to that of magmatic migration into the plateau from the southeast, south, and northwest. Moreover, the Rayleigh wave tomography model images parts of a high-velocity drip in the western Colorado Plateau and thus provides additional seismic evidence for ongoing convective downwelling of the lithosphere that was initially suggested by receiver functions and body wave tomography. The widespread edge convective erosion, which the regional delamination-style downwelling processes are a 3-D manifestation of, could provide additional buoyancy sources to support the excess uplift at the margins of the plateau.
引用
收藏
页数:24
相关论文
共 50 条
  • [21] Crustal and uppermost mantle structure of SE Tibetan plateau from Rayleigh-wave group-velocity measurements
    Li, Yonghua
    Pan, Jiatie
    Wu, Qingju
    Ding, Zhifeng
    EARTHQUAKE SCIENCE, 2014, 27 (04) : 411 - 419
  • [22] Crustal and uppermost mantle structure of SE Tibetan plateau from Rayleigh-wave group-velocity measurements
    Yonghua Li
    Jiatie Pan
    Qingju Wu
    Zhifeng Ding
    Earthquake Science, 2014, (04) : 411 - 419
  • [23] Upper mantle structure beneath Cameroon from body wave tomography and the origin of the Cameroon Volcanic Line
    Reusch, A. M.
    Nyblade, A. A.
    Wiens, D. A.
    Shore, P. J.
    Ateba, B.
    Tabod, C. T.
    Nnange, J. M.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2010, 11
  • [24] Lithospheric structure of Iberia and Morocco using finite-frequency Rayleigh wave tomography from earthquakes and seismic ambient noise
    Palomeras, I.
    Villasenor, A.
    Thurner, S.
    Levander, A.
    Gallart, J.
    Harnafi, M.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2017, 18 (05): : 1824 - 1840
  • [25] Topography-Dependent Eikonal Traveltime Tomography for Upper Crustal Structure Beneath an Irregular Surface
    Ma, Ting
    Zhang, Zhongjie
    PURE AND APPLIED GEOPHYSICS, 2015, 172 (06) : 1511 - 1529
  • [26] Lithospheric structure beneath the northeastern Tibetan Plateau and the western Sino-Korea Craton revealed by Rayleigh wave tomography
    Li, Yonghua
    Pan, Jiatie
    Wu, Qingju
    Ding, Zhifeng
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2017, 210 (02) : 570 - 584
  • [27] Imaging the Antarctic mantle using adaptively parameterized P-wave tomography: Evidence for heterogeneous structure beneath West Antarctica
    Hansen, Samantha E.
    Graw, Jordan H.
    Kenyon, Lindsey M.
    Nyblade, Andrew A.
    Wiens, Douglas A.
    Aster, Richard C.
    Huerta, Audrey D.
    Anandakrishnan, Sridhar
    Wilson, Terry
    EARTH AND PLANETARY SCIENCE LETTERS, 2014, 408 : 66 - 78
  • [28] 3D velocity structure of upper mantle beneath South China and its tectonic implications : evidence from finite frequency seismic tomography
    Qu Ping
    Chen YongShun
    Yu Yong
    Ge ZengXi
    Li QiuSheng
    Dong ShuWen
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2020, 63 (08): : 2954 - 2969
  • [29] Crustal and Upper Mantle Velocity Structure of SE Tibet From Joint Inversion of Rayleigh Wave Phase Velocity and Teleseismic Body Wave Data
    Yang, Xiaozhou
    Luo, Yinhe
    Jiang, Chengxin
    Yang, Yingjie
    Niu, Fenglin
    Li, Guoliang
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2023, 128 (07)
  • [30] Crustal and upper-mantle structure of the southeastern Tibetan Plateau from joint analysis of surface wave dispersion and receiver functions
    Li, Mengkui
    Zhang, Shuangxi
    Wang, Fang
    Wu, Tengfei
    Qin, Weibing
    JOURNAL OF ASIAN EARTH SCIENCES, 2016, 117 : 52 - 63