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E-raamat: Development of Complex Electromagnetic Problems using FDTD Subgridding in Hybrid Computational Techniques

  • Formaat: 348 pages
  • Ilmumisaeg: 01-Oct-2014
  • Kirjastus: Nova Science Publishers Inc
  • ISBN-13: 9781633216822
  • Formaat - PDF+DRM
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  • Formaat: 348 pages
  • Ilmumisaeg: 01-Oct-2014
  • Kirjastus: Nova Science Publishers Inc
  • ISBN-13: 9781633216822

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Complex electromagnetic problems using new hybridised computational techniques combining the frequency domain Method of Moments (MoM), Finite-Difference Time-Domain (FDTD) and a subgridded Finite-Difference Time-Domain (SGFDTD) method are studied and discussed in detail. The techniques are desirable to predict electromagnetic absorption in inhomogeneous, anisotropic and lossy dielectric materials irradiated by geometrically intricate sources. In Method of Moments modelling, the surface kernel solution is derived for 1-D, 2-D and 3-D. The electric surface patch integral formulation is solved by independent linear basis function methods in the circumferential and axial directions of the antenna wires. A similar orthogonal basis function is used on the end surface and appropriate attachments with the wire surface are employed to satisfy the requirements of current continuity. The surface current distributions on structures which may include closely spaced parallel wires are investigated and analysed. The results are found to be stable and showed good agreement with less comprehensive earlier work by others. Moreover, Galerkin technique is employed to predict the effect of a chiral bianisotropic substrate of a rectangular microstrip resonator in the spectral domain. The work also investigates the interaction between overhead high voltage transmission lines and underground utility pipelines using the FDTD technique for the whole structure, combined with a subgridding method at points of interest. The induced fields above the pipeline are computed. The Perfectly Matched Layer (PML) concept has been utilized to circumvent open-region geometries. The establishment of edge elements has greatly improved the performance of this method and the computational burden due to huge numbers of time steps, in the order of tens of millions, has been eased to tens of thousands by employing quasi-static methods.
Preface vii
Chapter 1 Numerical Solution of Maxwell Equations Using FDTD and MoM
1(16)
K. N. Ramli
R. A. Abd-Alhameed
P. S. Excell
Chapter 2 FDTD Technique for Field Truncation
17(28)
K. N. Ramli
R. A. Abd-Alhameed
P. S. Excell
Chapter 3 Surface Kernel Solution of the Method of Moments
45(68)
K. N. Ramli
M. Lashab
K. H. Sayidmarie
R. A. Abd-Alhameed
Chapter 4 Quasi-Static Finite-Difference Time-Domain Subgridding Technique
113(30)
K. N. Ramli
R. A. Abd-Alhameed
P. S. Excell
Chapter 5 Effect of Anisotropic Magneto-Chirality on Microstrip Resonator Characteristics
143(64)
C. Zebiri
F. Benabdelaziz
M. Lashab
Chapter 6 Interaction of EM Fields to the Human Body Using Hybrid Computational Method
207(26)
K. N. Ramli
R. A. Abd-Alhameed
P. S. Excell
Chapter 7 Quasi-Static FDTD Scheme for Electrically-Small Regions in Free Space, Lossless and Lossy Penetrable Media
233(32)
C. H. See
A. S. Abdullah
J. M. Noras
R. A. Abd-Alhameed
Chapter 8 Computation of Electromagnetic Field Inside a Tissue Using Quasi-Static and Lumped-Element FDTD Scheme
265(44)
C. H. See
R. A. Abd-Alhameed
M. J. Ngala
P. S. Excell
Chapter 9 Simulation of Antennas Coupled to Lossy Dielectric Volumes
309(20)
M. A. Mangoud
R. A. Abd-Alhameed
P. S. Excell
About the Editors 329(2)
Index 331