TY - JOUR
T1 - A local radial point interpolation method for dissipation process of excess pore water pressure
AU - Wang, Jian-Guo
AU - Yan, L.
AU - Liu, G.R.
PY - 2005
Y1 - 2005
N2 - Purpose - Develop a local radial point interpolation method (LRPIM) to analyze the dissipation process of excess pore water pressure in porous media and verify its numerical capability.Design/methodology/approach - Terzaghi's consolidation theory is used to describe the dissipation process. A local residual form is formulated over only a sub-domain. This form is spatially discretized by radial point interpolation method (RPIM) with basis of multiquadrics (MQ) and thin-plate spline (TPS), and temporally discretized by finite difference method. One-dimensional (ID) and two-dimensional consolidation problems are numerically analyzed.Findings - The LRPIM is suitable, efficient and accurate to simulate this dissipation process. The shape parameters, q = 1.03, R = 0.1 for MQ and 17 = 4.001 for TPS, are still valid.Research limitations/implications - The asymmetric system matrix in LRPIM spends more resources in storage and CPU time.Practical implications - Local residual form requires no background mesh, thus being a truly meshless method. This provides a fast and practical algorithm for engineering computation.Originality/value - This paper provides a simple, accurate and fast numerical algorithm for the dissipation process of excess pore water pressure, largely simplifies data preparation, shows that the shape parameters from solid mechanics are also suitable for the dissipation process.
AB - Purpose - Develop a local radial point interpolation method (LRPIM) to analyze the dissipation process of excess pore water pressure in porous media and verify its numerical capability.Design/methodology/approach - Terzaghi's consolidation theory is used to describe the dissipation process. A local residual form is formulated over only a sub-domain. This form is spatially discretized by radial point interpolation method (RPIM) with basis of multiquadrics (MQ) and thin-plate spline (TPS), and temporally discretized by finite difference method. One-dimensional (ID) and two-dimensional consolidation problems are numerically analyzed.Findings - The LRPIM is suitable, efficient and accurate to simulate this dissipation process. The shape parameters, q = 1.03, R = 0.1 for MQ and 17 = 4.001 for TPS, are still valid.Research limitations/implications - The asymmetric system matrix in LRPIM spends more resources in storage and CPU time.Practical implications - Local residual form requires no background mesh, thus being a truly meshless method. This provides a fast and practical algorithm for engineering computation.Originality/value - This paper provides a simple, accurate and fast numerical algorithm for the dissipation process of excess pore water pressure, largely simplifies data preparation, shows that the shape parameters from solid mechanics are also suitable for the dissipation process.
U2 - 10.1108/09615530510601468
DO - 10.1108/09615530510601468
M3 - Article
VL - 15
SP - 567
EP - 587
JO - International Journal of Numerical Methods for Heat & Fluid Flow
JF - International Journal of Numerical Methods for Heat & Fluid Flow
SN - 0961-5539
IS - 6
ER -