Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator

Microwave filters play key roles in controlling the frequency response at specific locations of any communications, radar, or test system. Microwave resonators provide the frequency selective building blocks necessary for filter design. Reconfigurable/ tunable microwave resonators have facilitated t...

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Main Author: Barrera, Joel
Other Authors: Huff, Gregory H.
Format: Others
Language:en_US
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-2011-12-10455
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-2011-12-104552014-01-16T03:56:42ZAnalysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide ResonatorBarrera, JoelSubstrate Integrated WaveguideTunable ResonatorReconfigurable ResonatorFluidic DispersionsMaterial MeasurementsMicrowave filters play key roles in controlling the frequency response at specific locations of any communications, radar, or test system. Microwave resonators provide the frequency selective building blocks necessary for filter design. Reconfigurable/ tunable microwave resonators have facilitated the design of tunable filters. Recently, MEMS based tuning mechanisms developed widely tunable resonators maintaining high Q; however, limit in the number of reconfiguration states. This thesis proposes a fluidic-reconfigurable Xband SIW resonator capable of continuous tunability across the reconfiguration range. A dielectric post of fluidic dispersions with variable material properties embedded in a two inductive post static SIW resonator defines the tuning mechanism. The development of an analytical closed-form expression for the resonant frequency and Q across reconfiguration, a circuit model, and full-wave simulation predicts the tunable performance with estimated material properties of the fluidic dispersion. Measured data on an initial tunable SIW resonator design showed good reconfiguration performance but more losses than expected which could potentially be explained from the discovery of a major design error not associated with the resonator itself. A second tunable SIW resonator designed and fabricated proves the material properties of the fluidic dispersions contain more losses than estimated and hinder the resonators performance. By comparing simulated and measured data new estimates for the material properties of the fluidic dispersion are proposed which agree with trends in recent literature. Low-loss fluidic dispersions will enable a significant performance increase in the current tunable SIW resonator. Two low-cost material measurement systems are designed to expedite research efforts in finding low-loss microwave fluidics. Both systems accurately compute dielectric constant but not loss tangents. The initial systems provide necessary first steps in the design of future highly accurate material measurement systems.Huff, Gregory H.Nevels, RobertHarris, HarlanBhattacharya, Raktim2012-02-14T22:20:07Z2012-02-16T16:18:20Z2014-01-15T07:05:30Z2011-122012-02-14December 2011Thesisthesistextapplication/pdfhttp://hdl.handle.net/1969.1/ETD-TAMU-2011-12-10455en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Substrate Integrated Waveguide
Tunable Resonator
Reconfigurable Resonator
Fluidic Dispersions
Material Measurements
spellingShingle Substrate Integrated Waveguide
Tunable Resonator
Reconfigurable Resonator
Fluidic Dispersions
Material Measurements
Barrera, Joel
Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
description Microwave filters play key roles in controlling the frequency response at specific locations of any communications, radar, or test system. Microwave resonators provide the frequency selective building blocks necessary for filter design. Reconfigurable/ tunable microwave resonators have facilitated the design of tunable filters. Recently, MEMS based tuning mechanisms developed widely tunable resonators maintaining high Q; however, limit in the number of reconfiguration states. This thesis proposes a fluidic-reconfigurable Xband SIW resonator capable of continuous tunability across the reconfiguration range. A dielectric post of fluidic dispersions with variable material properties embedded in a two inductive post static SIW resonator defines the tuning mechanism. The development of an analytical closed-form expression for the resonant frequency and Q across reconfiguration, a circuit model, and full-wave simulation predicts the tunable performance with estimated material properties of the fluidic dispersion. Measured data on an initial tunable SIW resonator design showed good reconfiguration performance but more losses than expected which could potentially be explained from the discovery of a major design error not associated with the resonator itself. A second tunable SIW resonator designed and fabricated proves the material properties of the fluidic dispersions contain more losses than estimated and hinder the resonators performance. By comparing simulated and measured data new estimates for the material properties of the fluidic dispersion are proposed which agree with trends in recent literature. Low-loss fluidic dispersions will enable a significant performance increase in the current tunable SIW resonator. Two low-cost material measurement systems are designed to expedite research efforts in finding low-loss microwave fluidics. Both systems accurately compute dielectric constant but not loss tangents. The initial systems provide necessary first steps in the design of future highly accurate material measurement systems.
author2 Huff, Gregory H.
author_facet Huff, Gregory H.
Barrera, Joel
author Barrera, Joel
author_sort Barrera, Joel
title Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
title_short Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
title_full Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
title_fullStr Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
title_full_unstemmed Analysis and Design of a Fluidic-Reconfigurable Substrate Integrated Waveguide Resonator
title_sort analysis and design of a fluidic-reconfigurable substrate integrated waveguide resonator
publishDate 2012
url http://hdl.handle.net/1969.1/ETD-TAMU-2011-12-10455
work_keys_str_mv AT barrerajoel analysisanddesignofafluidicreconfigurablesubstrateintegratedwaveguideresonator
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