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<title>Analysis of Longitudinal Rectangular Waveguide Based Power Dividers/Combiners Using Multicavity Modeling Technique</title>
<link>http://127.0.0.1/xmlui/handle/123456789/523</link>
<description/>
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<dc:date>2026-04-17T13:28:24Z</dc:date>
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<title>Analysis of Longitudinal Rectangular Waveguide Based Power Dividers/Combiners Using Multicavity Modeling Technique</title>
<link>http://127.0.0.1/xmlui/handle/123456789/524</link>
<description>Analysis of Longitudinal Rectangular Waveguide Based Power Dividers/Combiners Using Multicavity Modeling Technique
Panda, Debendra Kumar
A complete method of moment (MOM) analysis of longitudinal rectangular&#13;
waveguide power dividers/combiners using multi cavity modeling technique (MCMT) is&#13;
the subject matter of this thesis. The technique replaces all the apertures and&#13;
discontinuities of the rectangular waveguide based structures with equivalent magnetic&#13;
current densities, so that the given structure can be analyzed using magnetic field integral&#13;
equation (MFIE). The magnetic field scattered inside the cavity region due to magnetic&#13;
current source is determined by using the cavity Green’s function of the electric vector&#13;
potential. The cavity Green’s function has been derived by solving the Helmholtz&#13;
equation for the electric vector potential for unit source. The scattered magnetic fields in&#13;
the waveguide region due to the presence of the transverse magnetic current densities are&#13;
solved by rigorous mode matching method. The main advantage of this technique is that&#13;
it is possible to find the electric field across any given aperture, which is either parallel or&#13;
perpendicular to the direction of propagation. This helps in extending the study to the&#13;
power handling capability of the waveguide structure. Further longitudinal power&#13;
dividers/combiners analyzed and designed in this thesis are compact in size and the&#13;
output ports are in same plane which is an added advantage for phased array applications.&#13;
Mainly, different kind of 1:2 and 1:3 power dividers and combiners are designed and&#13;
analyzed in this thesis. In the longitudinal 1:2 power dividers/combiners family&#13;
longitudinal E and H-plane power dividers/combiners, folded E and H-plane tee junction&#13;
circuits are analyzed. E-plane junctions circuits are not matched to the junction so&#13;
matching posts are inserted to the structure to get wide frequency response. Similar&#13;
techniques are adapted to H-plane 1:3 power dividers and combiners’ cases. Crosstalk&#13;
effect due to fabrication error has also been studied. Algorithms have been developed&#13;
using MATLAB for determination of various quantities involved. Computed results&#13;
obtained for the above waveguide power dividers and combiners have been verified by&#13;
measured data with those of commercially available software simulated data.
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<dc:date>2009-01-01T00:00:00Z</dc:date>
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