• DocumentCode
    1509975
  • Title

    A higher order parallelized multilevel fast multipole algorithm for 3-D scattering

  • Author

    Donepudi, Kalyan C. ; Jin, Jian-Ming ; Velamparambil, Sanjay ; Song, Jiming ; Chew, Weng Cho

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
  • Volume
    49
  • Issue
    7
  • fYear
    2001
  • fDate
    7/1/2001 12:00:00 AM
  • Firstpage
    1069
  • Lastpage
    1078
  • Abstract
    A higher order multilevel fast multipole algorithm (MLFMA) is presented for solving integral equations of electromagnetic wave scattering by three-dimensional (3-D) conducting objects. This method employs higher order parametric elements to provide accurate modeling of the scatterer´s geometry and higher order interpolatory vector basis functions for an accurate representation of the electric current density on the scatterer´s surface. This higher order scheme leads to a significant reduction in the mesh density, thus the number of unknowns, without compromising the accuracy of geometry modeling. It is applied to the electric field integral equation (EFIE), the magnetic field integral equation (MFIE), and the combined field integral equation (CFIE), using Galerkin´s testing approach. The resultant numerical system of equations is then solved using the MLFMA. Appropriate preconditioning techniques are employed to speedup the MLFMA solution. The proposed method is further implemented on distributed-memory parallel computers to harness the maximum power from presently available machines. Numerical examples are given to demonstrate the accuracy and efficiency of the method as well as the convergence of the higher order scheme
  • Keywords
    Galerkin method; conducting bodies; convergence of numerical methods; current density; distributed memory systems; electric field integral equations; electromagnetic wave scattering; interpolation; magnetic field integral equations; parallel algorithms; parallel machines; physics computing; 3D conducting objects; 3D scattering; CFIE; EFIE; Galerkin´s testing; MFIE; MLFMA; combined field integral equation; distributed-memory parallel computers; electric current density; electric field integral equation; electromagnetic wave scattering; higher order interpolatory vector basis functions; higher order parallelized algorithm; higher order parametric elements; higher order scheme convergence; integral equations; magnetic field integral equation; mesh density; method accuracy; method efficiency; multilevel fast multipole algorithm; preconditioning techniques; scatterer geometry modelling; scatterer surface; Concurrent computing; Current; Distributed computing; Electromagnetic scattering; Geometry; Integral equations; MLFMA; Magnetic fields; Solid modeling; Testing;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/8.933487
  • Filename
    933487