Topology optimization of antennas and waveguide transitions

This thesis introduces a topology optimization approach to design, from scratch, efficient microwave devices, such as antennas and waveguide transitions. The design of these devices is formulated as a general optimization problem that aims to build the whole layout of the device in order to extremiz...

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Main Author: Hassan, Emadeldeen
Format: Doctoral Thesis
Language:English
Published: Umeå universitet, Institutionen för datavetenskap 2015
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-102505
http://nbn-resolving.de/urn:isbn:978-91-7601-255-0
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spelling ndltd-UPSALLA1-oai-DiVA.org-umu-1025052017-12-20T05:28:57ZTopology optimization of antennas and waveguide transitionsengHassan, EmadeldeenUmeå universitet, Institutionen för datavetenskapUmeå : Umeå University2015Maxwell's equationstopology optimizationantennaswaveguide transitionfinite-difference time-domaingradient-based optimizationadjoint-field problemmicrowave devices.Computer ScienceDatavetenskap (datalogi)This thesis introduces a topology optimization approach to design, from scratch, efficient microwave devices, such as antennas and waveguide transitions. The design of these devices is formulated as a general optimization problem that aims to build the whole layout of the device in order to extremize a chosen objective function. The objective function quantifies some required performance and is evaluated using numerical solutions to the 3D~Maxwell's equations by the finite-difference time-domain (FDTD) method. The design variables are the local conductivity at each Yee~edge in a given design domain, and a gradient-based optimization method is used to solve the optimization problem. In all design problems, objective function gradients are computed based on solutions to adjoint-field problems, which are also FDTD discretization of Maxwell's equations but solved with different source excitations. For any number of design variables, the computation of the objective function gradient requires one solution to the original field problem and one solution to the associated adjoint-field problem. The optimization problem is solved iteratively using the globally convergent Method of Moving Asymptotes (GCMMA). By the proposed approach, various design problems, including tens of thousands of design variables, are formulated and solved in a few hundred iterations. Examples of solved design problems are the design of wideband antennas, dual-band microstrip antennas, wideband directive antennas, and wideband coaxial-to-waveguide transitions. The fact that the proposed approach allows a fine-grained control over the whole layout of such devices results in novel devices with favourable performance. The optimization results are successfully verified with a commercial software package. Moreover, some devices are fabricated and their performance is successfully validated by experiments. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-102505urn:isbn:978-91-7601-255-0UMINF, 0348-0542 ; 15:07application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Maxwell's equations
topology optimization
antennas
waveguide transition
finite-difference time-domain
gradient-based optimization
adjoint-field problem
microwave devices.
Computer Science
Datavetenskap (datalogi)
spellingShingle Maxwell's equations
topology optimization
antennas
waveguide transition
finite-difference time-domain
gradient-based optimization
adjoint-field problem
microwave devices.
Computer Science
Datavetenskap (datalogi)
Hassan, Emadeldeen
Topology optimization of antennas and waveguide transitions
description This thesis introduces a topology optimization approach to design, from scratch, efficient microwave devices, such as antennas and waveguide transitions. The design of these devices is formulated as a general optimization problem that aims to build the whole layout of the device in order to extremize a chosen objective function. The objective function quantifies some required performance and is evaluated using numerical solutions to the 3D~Maxwell's equations by the finite-difference time-domain (FDTD) method. The design variables are the local conductivity at each Yee~edge in a given design domain, and a gradient-based optimization method is used to solve the optimization problem. In all design problems, objective function gradients are computed based on solutions to adjoint-field problems, which are also FDTD discretization of Maxwell's equations but solved with different source excitations. For any number of design variables, the computation of the objective function gradient requires one solution to the original field problem and one solution to the associated adjoint-field problem. The optimization problem is solved iteratively using the globally convergent Method of Moving Asymptotes (GCMMA). By the proposed approach, various design problems, including tens of thousands of design variables, are formulated and solved in a few hundred iterations. Examples of solved design problems are the design of wideband antennas, dual-band microstrip antennas, wideband directive antennas, and wideband coaxial-to-waveguide transitions. The fact that the proposed approach allows a fine-grained control over the whole layout of such devices results in novel devices with favourable performance. The optimization results are successfully verified with a commercial software package. Moreover, some devices are fabricated and their performance is successfully validated by experiments.
author Hassan, Emadeldeen
author_facet Hassan, Emadeldeen
author_sort Hassan, Emadeldeen
title Topology optimization of antennas and waveguide transitions
title_short Topology optimization of antennas and waveguide transitions
title_full Topology optimization of antennas and waveguide transitions
title_fullStr Topology optimization of antennas and waveguide transitions
title_full_unstemmed Topology optimization of antennas and waveguide transitions
title_sort topology optimization of antennas and waveguide transitions
publisher Umeå universitet, Institutionen för datavetenskap
publishDate 2015
url http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-102505
http://nbn-resolving.de/urn:isbn:978-91-7601-255-0
work_keys_str_mv AT hassanemadeldeen topologyoptimizationofantennasandwaveguidetransitions
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