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  4. Wavelet transform mapping of effective elastic thickness and plate loading: Validation using synthetic data and application to the study of southern African tectonics
 
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Wavelet transform mapping of effective elastic thickness and plate loading: Validation using synthetic data and application to the study of southern African tectonics

Journal
Journal of Geophysical Research: Solid Earth
Journal Volume
108
Journal Issue
12
Date Issued
2003-12-10
Author(s)
COLIN PETER STARK  
Stewart, J.
Ebinger, C. J.
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/635717
URL
https://api.elsevier.com/content/abstract/scopus_id/0348063105
Abstract
We present a new wavelet transform method to map spatial variations in effective elastic thickness Te and plate loading ratio f. The method assumes a model of thin plate flexural isostasy to describe the mechanical response of the lithosphere to vertical loading. In this model, the rheological properties of the lithosphere are aggregated into the effective elastic thickness Te of an equivalent thin plate overlying an inviscid fluid. A number of methods have been developed to map spatial variations in Te in an attempt to assess regional patterns of flexural strength. Our new method first obtains local coherence and local admittance through wavelet cross-spectral analysis of surface topography and Bouguer gravity anomaly. Wavelet coherence is used to obtain the local characteristic wavelength, which is a function of both Te and the degree of relative loading f of the plate by subsurface loads and surface loads (loading is the combined effect of erosion, sedimentation, intrusion, faulting, and metamorphism). Wavelet admittance, in a normalized form, is used to resolve this f - Te ambiguity, and maps are made of the spatial variations in Te and f. We carry out extensive tests of the wavelet method on simulated topography and Bouguer gravity anomaly data that we generate through finite difference simulations of flexural isostasy with spectrally realistic loads and simple spatial variations in Te. These tests demonstrate that the wavelet inversion method is reasonably robust to uncertainties in loading and in crustal thickness and is able to recover Te to within ±25-50% of its correct value. We apply the wavelet method to southern Africa and recover estimates of Te principally in the range 25-50 km, in good agreement with existing estimates from forward modeling and Fourier coherence analyses. We find that our Te estimates often exceed estimates of crustal thickness, pointing to a strong upper mantle in parts of southern Africa. Copyright 2003 by the American Geophysical Union.
Subjects
Coherence | Elastic thickness | Flexure | Wavelet transform
Type
journal article

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