TY - JOUR
T1 - 2D seismic reflection tomography in strongly anisotropic media
AU - Huang, Guangnan
AU - Zhou, Bing
AU - Li, Hongxi
AU - Zhang, Hua
AU - Li, Zelin
N1 - Publisher Copyright:
© 2014 Sinopec Geophysical Research Institute.
PY - 2014/12/1
Y1 - 2014/12/1
N2 - Seismic traveltime tomography is an effective method to reconstruct underground anisotropic parameters. Currently, most anisotropic tomographic methods were developed under the assumption of weak anisotropy. The tomographic method proposed here can be implemented for imaging subsurface targets in strongly anisotropic media with a known tilted symmetry axis, since the adopted ray tracing method is suitable for anisotropic media with arbitrary degree. There are three kinds of reflection waves (qP, qSV and qSH waves) that were separately used to invert the blocky abnormal body model. The reflection traveltime tomographiy is developed here because a surface observation system is the most economical and practical way compared with crosswell and VSP. The numerical examples show that the traveltimes of qP reflection wave have inverted parameters c11, c13, c33 and c44 successfully. Traveltimes of qSV reflection wave have inverted parameters c11, c33 and c44 successfully, with the exception of the c13, since it is less sensitive than other parameters. Traveltimes of qSH reflection wave also have inverted parameters c44 and c66 successfully. In addition, we find that the velocity sensitivity functions (derivatives of phase velocity with respect to elastic moduli parameters) and raypath illuminating angles have a great influence on the qualities of tomograms according to the inversion of theoretical models. Finally, the numerical examples confirm that the reflection traveltime tomography can be applied to invert strongly anisotropic models.
AB - Seismic traveltime tomography is an effective method to reconstruct underground anisotropic parameters. Currently, most anisotropic tomographic methods were developed under the assumption of weak anisotropy. The tomographic method proposed here can be implemented for imaging subsurface targets in strongly anisotropic media with a known tilted symmetry axis, since the adopted ray tracing method is suitable for anisotropic media with arbitrary degree. There are three kinds of reflection waves (qP, qSV and qSH waves) that were separately used to invert the blocky abnormal body model. The reflection traveltime tomographiy is developed here because a surface observation system is the most economical and practical way compared with crosswell and VSP. The numerical examples show that the traveltimes of qP reflection wave have inverted parameters c11, c13, c33 and c44 successfully. Traveltimes of qSV reflection wave have inverted parameters c11, c33 and c44 successfully, with the exception of the c13, since it is less sensitive than other parameters. Traveltimes of qSH reflection wave also have inverted parameters c44 and c66 successfully. In addition, we find that the velocity sensitivity functions (derivatives of phase velocity with respect to elastic moduli parameters) and raypath illuminating angles have a great influence on the qualities of tomograms according to the inversion of theoretical models. Finally, the numerical examples confirm that the reflection traveltime tomography can be applied to invert strongly anisotropic models.
KW - Anisotropic media
KW - Elastic moduli parameters
KW - Seismic traveltime tomography
UR - http://www.scopus.com/inward/record.url?scp=84914166669&partnerID=8YFLogxK
U2 - 10.1088/1742-2132/11/6/065012
DO - 10.1088/1742-2132/11/6/065012
M3 - Article
AN - SCOPUS:84914166669
SN - 1742-2132
VL - 11
JO - Journal of Geophysics and Engineering
JF - Journal of Geophysics and Engineering
IS - 6
M1 - 065012
ER -