The microwave network approach has been applied to the guided wave problems in the dielectric waveguides for millimeter waves made of a dielectric strip and a planar dielectric layer. This approach utilizes transmission-lines and equivalent networks which furnish physical insight, and application of the so-called transverse resonance technique yields, in very simple fashion, approximate but fairly accurate analytical expressions for the dispersion relations of these dielectric waveguides. The results computed from these relations for the strip dielectric guide, the insulated image guide, the single material guide and the inverted strip dielectric guide which have recently received considerable attention agree well with the experimental results by McLevige et al. and Azarmanèche et al. and the results obtained numerically by Ogusu.
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Masanori KOSHIBA, Michio SUZUKI, "Microwave Network Analyses of Dielectric Waveguides for Millimeter Waves Made of Dielectric Strip and Planar Dielectric Layer" in IEICE TRANSACTIONS on transactions,
vol. E63-E, no. 5, pp. 344-350, May 1980, doi: .
Abstract: The microwave network approach has been applied to the guided wave problems in the dielectric waveguides for millimeter waves made of a dielectric strip and a planar dielectric layer. This approach utilizes transmission-lines and equivalent networks which furnish physical insight, and application of the so-called transverse resonance technique yields, in very simple fashion, approximate but fairly accurate analytical expressions for the dispersion relations of these dielectric waveguides. The results computed from these relations for the strip dielectric guide, the insulated image guide, the single material guide and the inverted strip dielectric guide which have recently received considerable attention agree well with the experimental results by McLevige et al. and Azarmanèche et al. and the results obtained numerically by Ogusu.
URL: https://globals.ieice.org/en_transactions/transactions/10.1587/e63-e_5_344/_p
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@ARTICLE{e63-e_5_344,
author={Masanori KOSHIBA, Michio SUZUKI, },
journal={IEICE TRANSACTIONS on transactions},
title={Microwave Network Analyses of Dielectric Waveguides for Millimeter Waves Made of Dielectric Strip and Planar Dielectric Layer},
year={1980},
volume={E63-E},
number={5},
pages={344-350},
abstract={The microwave network approach has been applied to the guided wave problems in the dielectric waveguides for millimeter waves made of a dielectric strip and a planar dielectric layer. This approach utilizes transmission-lines and equivalent networks which furnish physical insight, and application of the so-called transverse resonance technique yields, in very simple fashion, approximate but fairly accurate analytical expressions for the dispersion relations of these dielectric waveguides. The results computed from these relations for the strip dielectric guide, the insulated image guide, the single material guide and the inverted strip dielectric guide which have recently received considerable attention agree well with the experimental results by McLevige et al. and Azarmanèche et al. and the results obtained numerically by Ogusu.},
keywords={},
doi={},
ISSN={},
month={May},}
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TY - JOUR
TI - Microwave Network Analyses of Dielectric Waveguides for Millimeter Waves Made of Dielectric Strip and Planar Dielectric Layer
T2 - IEICE TRANSACTIONS on transactions
SP - 344
EP - 350
AU - Masanori KOSHIBA
AU - Michio SUZUKI
PY - 1980
DO -
JO - IEICE TRANSACTIONS on transactions
SN -
VL - E63-E
IS - 5
JA - IEICE TRANSACTIONS on transactions
Y1 - May 1980
AB - The microwave network approach has been applied to the guided wave problems in the dielectric waveguides for millimeter waves made of a dielectric strip and a planar dielectric layer. This approach utilizes transmission-lines and equivalent networks which furnish physical insight, and application of the so-called transverse resonance technique yields, in very simple fashion, approximate but fairly accurate analytical expressions for the dispersion relations of these dielectric waveguides. The results computed from these relations for the strip dielectric guide, the insulated image guide, the single material guide and the inverted strip dielectric guide which have recently received considerable attention agree well with the experimental results by McLevige et al. and Azarmanèche et al. and the results obtained numerically by Ogusu.
ER -