Insight into the Evolution of the Eastern Margin of the Wyoming Craton from Complex, Laterally Variable Shear Wave Splitting

dc.contributor.authorBirkey, Andrew
dc.contributor.authorFord, Heather A.
dc.contributor.authorAnderson, Megan
dc.contributor.authorByrnes, Joseph S.
dc.contributor.authorBezada, Maximiliano J.
dc.contributor.authorShapovalov, Maxim
dc.date.accessioned2024-07-24T19:29:04Z
dc.date.available2024-07-24T19:29:04Z
dc.date.issued2024-07-12
dc.descriptionThis article was originally published in Lithosphere. The version of record is available at: https://doi.org/10.2113/2024/lithosphere_2024_117 © 2024. Andrew Birkey et al. Exclusive Licensee GeoScienceWorld. Distributed under a Creative Commons Attribution License (CC BY 4.0).
dc.description.abstractDense seismic arrays such as EarthScope’s Transportable Array (TA) have enabled high-resolution seismic observations that show the structure of cratonic lithosphere is more heterogeneous and complex than previously assumed. In this study, we pair TA data with data from the Bighorn Arch Seismic Experiment and the Crust and lithosphere Investigation of the Easternmost expression of the Laramide Orogeny (CIELO) to provide unprecedented detail on the seismic anisotropic structure of the eastern margin of the Wyoming Craton, where several orogens emerged from nominally strong cratonic lithosphere during the Laramide Orogeny. In this study, we use the splitting of teleseismic shear waves to characterize fabrics associated with deformation in the Earth’s crust and mantle. We constrain distinct anisotropic domains in the study area, and forward modeling shows that each of these domains can be explained by a single layer of anisotropy. Most significantly, we find a fast direction in the southern part of the Powder River Basin, which we refer to as the Thunder Basin Block (TBB), that deviates from absolute plate motion (APM). This change in splitting behavior coincides with changes in other modeled geophysical observations, such as active source P-wave velocity models, potential field modeling, and seismic attenuation analysis, which all show a significant change moving from the Bighorn Mountains to the TBB. We argue that these results correspond to structure predating the Laramide Orogeny, and most likely indicate a Neoarchean boundary preserved within the lithosphere.
dc.description.sponsorshipA. Birkey received funding as a postdoctoral researcher through the University of Delaware and as a graduate student through the University of California, Riverside. H.A. Ford was funded as faculty through the University of California, Riverside. M. Anderson was funded through the Washington Geological Survey. J.S. Byrnes received funding through the Northern Arizona University. M.J. Bezada was funded as faculty through the University of Minnesota, Twin Cities. M. Shapovalov worked on this project as an undergraduate at the University of California, Riverside, and did not receive funding.
dc.identifier.citationAndrew Birkey, Heather A. Ford, Megan Anderson, Joseph S. Byrnes, Maximiliano J. Bezada, Maxim Shapovalov; Insight into the Evolution of the Eastern Margin of the Wyoming Craton from Complex, Laterally Variable Shear Wave Splitting. Lithosphere 2024;; 2024 (3): lithosphere_2024_117. doi: https://doi.org/10.2113/2024/lithosphere_2024_117
dc.identifier.issn1947-4253
dc.identifier.urihttps://udspace.udel.edu/handle/19716/34588
dc.language.isoen_US
dc.publisherLithosphere
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.titleInsight into the Evolution of the Eastern Margin of the Wyoming Craton from Complex, Laterally Variable Shear Wave Splitting
dc.typeArticle

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