Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published June 1, 1963 | Published
Journal Article Open

Surface Waves on a Spherical Earth. I. Upper Mantle Structure from Love Waves

Abstract

The problem of free oscillations of a heterogeneous sphere is reformulated in terms of dispersion over a plane half-space composed of anisotropic layers having a superposed velocity gradient. This transforms the standing wave discrete spectrum to a traveling-wave continuous spectrum and considerably simplifies the analysis of surface waves on a sphere. Minor modifications make it possible to use any Love wave computer program to compute dispersion on a sphere. Results of the method are compared with those obtained from numerical integration of the exact equations of motion. Agreement is generally better than 0.06 per cent. Dispersion for the fundamental and first seven to eight higher Love modes is presented for a continental and an oceanic path. The oscillatory nature of the group velocity curves becomes more pronounced when, a velocity reversal takes place. Calculations of higher-mode group velocity structure and displacement illustrate the mechanism of propagation of the S_a wave. By successive modifications of a previously developed mantle structure, a new suboceanic model is determined which satisfies Love wave and torsional oscillation data.

Additional Information

© 1963 American Geophysical Union. Manuscript Received: 11 FEB 1963. Contribution 1144, Division of Geological Sciences, California Institute of Technology, Pasadena. This research was supported by grant AF-AFOSR-25-63 of the Air Force Office of Scientific Research as part of the Advanced Research Projects Agency project Vela.

Attached Files

Published - DLAjgr63b.pdf

Files

DLAjgr63b.pdf
Files (1.0 MB)
Name Size Download all
md5:6135e20ad3689cbaa4cdd79e9249581a
1.0 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 26, 2023