2.5-D poroelastic wave modelling in double porosity media
File(s)2011_gji_j.1365-246X.2011.05106.x.pdf (394.54 KB)
Published version
Author(s)
Liu, Xu
Greenhalgh, Stewart
Wang, Yanghua
Type
Journal Article
Abstract
To approximate seismic wave propagation in double porosity media, the 2.5-D governing equations of poroelastic waves are developed and numerically solved. The equations are obtained by taking a Fourier transform in the strike or medium-invariant direction over all of the field quantities in the 3-D governing equations. The new memory variables from the Zener model are suggested as away to represent the sum of the convolution integrals for both the solid particle velocity and the macroscopic fluid flux in the governing equations. By application of the memory equations, the field quantities at every time step need not be stored. However, this approximation allows just two Zener relaxation times to represent the very complex double porosity and dual permeability attenuation mechanism, and thus reduce the difficulty. The 2.5-D governing equations are numerically solved by a time-splitting method for the non-stiff parts and an explicit fourth-order Runge-Kutta method for the time integration and a Fourier pseudospectral staggered-grid for handling the spatial derivative terms. The 2.5-D solution has the advantage of producing a 3-D wavefield (point source) for a 2-D model but is much more computationally efficient than the full 3-D solution. As an illustrative example, we firstly show the computed 2.5-D wavefields in a homogeneous single porosity model for which we reformulated an analytic solution. Results for a two-layer, water-saturated double porosity model and a laterally heterogeneous double porosity structure are also presented.
Date Issued
2011-09-01
Citation
GEOPHYSICAL JOURNAL INTERNATIONAL, 2011, 186 (3), pp.1285-1294
ISSN
0956-540X
Publisher
OXFORD UNIV PRESS
Start Page
1285
End Page
1294
Journal / Book Title
GEOPHYSICAL JOURNAL INTERNATIONAL
Volume
186
Issue
3
Copyright Statement
© 2011 The Authors. Geophysical Journal International © 2011 RAS
Description
12.02.15 KB. Ok to add published version to spiral, publisher policy
Identifier
http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=000293998000028&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Subjects
Science & Technology
Physical Sciences
Geochemistry & Geophysics
GEOCHEMISTRY & GEOPHYSICS
Numerical solutions
elasticity and anelasticity
seismic attenuation
wave propagation
POROUS-MEDIA
PROPAGATION
ELEMENT
FLOW
Publication Status
Published