Seismic Velocity and Radial Anisotropy in the Crust and Upper Mantle of the South Central United States from Surface Wave Tomography

dc.contributor.advisorLi, Aibing
dc.contributor.committeeMemberMurphy, Michael A.
dc.contributor.committeeMemberHall, Stuart A.
dc.contributor.committeeMemberLi, Lun
dc.creatorYao, Yao 1989-
dc.creator.orcid0000-0003-4645-7631
dc.date.accessioned2018-03-12T19:26:28Z
dc.date.available2018-03-12T19:26:28Z
dc.date.createdDecember 2017
dc.date.issued2017-12
dc.date.submittedDecember 2017
dc.date.updated2018-03-12T19:26:28Z
dc.description.abstractThe goal of this dissertation is to improve the resolution of crust and mantle structure in the South-Central U.S. so as to better understand lithospheric evolution and modification through the last Wilson cycle. Rayleigh and Love wave phase velocities at the periods of 6-167 s were obtained from ambient noise and earthquake data recorded at 207 broadband stations of the USArray Transportable Array. 3-D shear-wave velocity and radial anisotropy models were derived from the phase velocities for the Gulf Coast region from Texas to Alabama. In the shallow crust, low velocity appears in the coastal plain to the south of the Ouachita front due to thick sediments. In the middle and lower crust, the Ouachita Belt in Texas is characterized by a seaward-dipping high-velocity band, which is not observed in the east Ouachita, indicating structural variation along the orogeny. The crust of the Texas Ouachita Belt is also much thicker than that in the east, consistent with the notion that the Ouachita was formed by a hard collision in Texas and a soft collision in Arkansas and Mississippi. Strong positive radial anisotropy (Vsh > Vsv) is largely confined in the coastal plain in the lower crust, limiting the Mesozoic crustal extension to the Ouachita and Appalachian front. Velocity variations in the mantle do not follow geological boundaries on the surface. A high-velocity lithosphere to ~75 km exists across the entire region except at a few local uplifts (Uvalde, Sabine, and Benton), the Arkansas River Valley, and the Mississippi Valley Graben. A low-velocity layer with positive radial anisotropy pervasively appears below 75 km while high velocity continues to great depths in the southern Appalachians and northwest Texas, where anisotropy is weak or slightly negative (Vsv > Vsh). Significantly low velocities are imaged in southernmost Texas and at the Uvalde, Monroe, and Jackson uplifts, where Cretaceous igneous rocks are found. These slow anomalies correlate with high surface heat flow and strong positive radial anisotropy, indicating hot and weak mantle blocks. The southernmost anomaly aligns with a high-gravity lineation in the Gulf of Mexico and probably played an important role in opening the gulf during the Mesozoic.
dc.description.departmentEarth and Atmospheric Sciences, Department of
dc.format.digitalOriginborn digital
dc.format.mimetypeapplication/pdf
dc.identifier.urihttp://hdl.handle.net/10657/2903
dc.language.isoeng
dc.rightsThe author of this work is the copyright owner. UH Libraries and the Texas Digital Library have their permission to store and provide access to this work. Further transmission, reproduction, or presentation of this work is prohibited except with permission of the author(s).
dc.subjectSouth-Central United States
dc.subjectTomography
dc.subjectAnisotropy
dc.subjectShear wave velocity
dc.titleSeismic Velocity and Radial Anisotropy in the Crust and Upper Mantle of the South Central United States from Surface Wave Tomography
dc.type.dcmiText
dc.type.genreThesis
local.embargo.lift2019-12-01
local.embargo.terms2019-12-01
thesis.degree.collegeCollege of Natural Sciences and Mathematics
thesis.degree.departmentEarth and Atmospheric Sciences, Department of
thesis.degree.disciplineGeophysics
thesis.degree.grantorUniversity of Houston
thesis.degree.levelDoctoral
thesis.degree.nameDoctor of Philosophy

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