• DocumentCode
    913853
  • Title

    A new numerical grid truncation scheme for the finite difference of Laplace´s equation

  • Author

    Pinello, William ; Gribbons, Michael ; Cangellaris, Andreas

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Arizona Univ., Tucson, AZ, USA
  • Volume
    32
  • Issue
    3
  • fYear
    1996
  • fDate
    5/1/1996 12:00:00 AM
  • Firstpage
    1397
  • Lastpage
    1400
  • Abstract
    A modified form of Laplace´s equation, based on coordinate stretching, is proposed, that lends itself to a new convenient numerical grid truncation methodology for the solution of Laplace´s equation in open regions. The proposed method eliminates the need for approximate local boundary conditions the truncation boundary of the numerical grid. Thus, it provides for a simple, robust, computationally efficient and very accurate grid truncation scheme. First, an analytic justification of the proposed grid truncation methodology is presented. Next, its numerical implementation is discussed in conjunction with the numerical solution of Laplace´s equation in unbounded two-dimensional regions. Numerical studies are used to illustrate the choice of the parameters used in the numerical implementation of this new truncation scheme, and quantify their impact on solution accuracy. A separable boundary value problem is used to motivate the proposed truncation scheme. The numerical studies and associated numerical results emphasize the calculation of per-unit-length capacitances for two-dimensional conductor configurations of the type used for unshielded planar transmission lines
  • Keywords
    Laplace equations; approximation theory; boundary-value problems; capacitance; electromagnetic fields; electromagnetic wave absorption; finite difference methods; finite element analysis; transmission line theory; EM wave absorption; Laplace´s equation; approximate local boundary conditions; coordinate stretching; finite difference; numerical grid truncation; numerical implementation; numerical solution; open regions; parameters; per-unit-length capacitances; separable boundary value problem; solution accuracy; two-dimensional conductor configurations; unbounded two-dimensional regions; unshielded planar transmission lines; Boundary conditions; Boundary value problems; Capacitance; Conductors; Difference equations; Electronics packaging; Finite difference methods; Finite element methods; Grid computing; Laplace equations; Nonhomogeneous media; Physics; Planar transmission lines; Robustness;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.497508
  • Filename
    497508