Area of research
Mechanics of Materials · Electrical and Electronic Engineering
Research interest
Research focused on Peridynamics and Discretization, with related work in Finite element method, Regularized meshless method, Polygon mesh. Notable publications include 'Coupling of FEM meshes with Peridynamic grids', 'An effective way to couple FEM meshes and Peridynamics grids for the solution of static equilibrium problems', and 'A coupled meshless finite point/Peridynamic method for 2D dynamic fracture analysis'.
An adaptive thermo-mechanical peridynamic model for fracture analysis in ceramics
A local collocation method to construct Dirichlet-type absorbing boundary conditions for transient scalar wave propagation problems
An adaptive multi-grid peridynamic method for dynamic fracture analysis
A generalized finite difference method based on the Peridynamic differential operator for the solution of problems in bounded and unbounded domains
Coupling of FEM meshes with Peridynamic grids
OpenCL implementation of a high performance 3D Peridynamic model on graphics accelerators
Coupling of 2D discretized Peridynamics with a meshless method based on classical elasticity using switching of nodal behaviour
The meshless finite point method for transient elastodynamic problems
An effective way to couple FEM meshes and Peridynamics grids for the solution of static equilibrium problems
A coupled meshless finite point/Peridynamic method for 2D dynamic fracture analysis