
doi: 10.2172/459443
The authors present a numerical method for solving Poisson`s equation, with variable coefficients and Dirichlet boundary conditions, on two-dimensional regions. The approach uses a finite-volume discretization, which embeds the domain in a regular Cartesian grid. They treat the solution as a cell-centered quantity, even when those centers are outside the domain. Cells that contain a portion of the domain boundary use conservation differencing of second-order accurate fluxes, on each cell volume. The calculation of the boundary flux ensures that the conditioning of the matrix is relatively unaffected by small cell volumes. This allows them to use multi-grid iterations with a simple point relaxation strategy. They have combined this with an adaptive mesh refinement (AMR) procedure. They provide evidence that the algorithm is second-order accurate on various exact solutions, and compare the adaptive and non-adaptive calculations.
Numerical Solution, Computers, 99 Mathematics, Management, Miscellaneous, Mesh Generation, Poisson Equation, Boundary Conditions, Law, Iterative Methods, Information Science, Algorithms, Accuracy
Numerical Solution, Computers, 99 Mathematics, Management, Miscellaneous, Mesh Generation, Poisson Equation, Boundary Conditions, Law, Iterative Methods, Information Science, Algorithms, Accuracy
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