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Structural topology optimization for the design of broadband dielectric resonator antennas using the finite difference time domain technique
Author(s) -
Nomura Tsuyoshi,
Sato Kazuo,
Taguchi Kenji,
Kashiwa Tatsuya,
Nishiwaki Shinji
Publication year - 2007
Publication title -
international journal for numerical methods in engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.421
H-Index - 168
eISSN - 1097-0207
pISSN - 0029-5981
DOI - 10.1002/nme.1974
Subject(s) - topology optimization , finite difference time domain method , topology (electrical circuits) , dielectric resonator , computer science , broadband , antenna (radio) , electronic engineering , dielectric resonator antenna , resonator , mathematical optimization , finite element method , mathematics , engineering , telecommunications , physics , electrical engineering , optics , structural engineering
Abstract Dielectric resonator antennas (DRAs) are a relatively new class of antenna that utilizes the radiation phenomena of dielectric resonators in open space. Since mainly analytical approaches have been applied to investigate DRA designs, the current DRA forms are limited to simple geometric shapes and high‐performance DRAs with complex shapes have not yet been developed. Topology optimization is capable of yielding high‐performance structures, and has been extensively applied to a variety of structural optimization problems. Applying it to the task of DRA design may be extremely useful for the design of high‐performance antennas. On the other hand, the finite difference time domain (FDTD) method has been used to numerically evaluate general antenna performance, since it is numerically robust during time domain analyses and can handle complex models. Thus, the integration of topology optimization with the FDTD method has the potential to enable innovative designs of advanced antennas that offer exceptional performance. In this research, we propose a new topology optimization method for the design of DRAs that aim to operate with enhanced bandwidths, using the FDTD method. First, the concept of topology optimization is briefly discussed, and a way to integrate topology optimization with the FDTD method is proposed. Next, design requirements are clarified and the corresponding objective functions and the optimization problem are formulated. An optimization algorithm is constructed based on these formulations. Finally, several DRA design examples are presented to confirm the usefulness of the proposed method. Copyright © 2007 John Wiley & Sons, Ltd.

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