Highly efficient full-wave electromagnetic analysis of 3D arbitrarily-shaped waveguide microwave devices using an integral equation technique
A novel technique for the full-wave analysis of 3-D complex waveguide devices is presented. This new formulation, based on the Boundary Integral-Resonant Mode Expansion (BI-RME) method, allows the rigorous full-wave electromagnetic characterization of 3-D arbitrarily shaped metallic structures makin...
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Zusammenfassung: | A novel technique for the full-wave analysis of 3-D complex waveguide devices is presented.
This new formulation, based on the Boundary Integral-Resonant Mode Expansion (BI-RME) method, allows
the rigorous full-wave electromagnetic characterization of 3-D arbitrarily shaped metallic structures making
use of extremely low CPU resources (both time and memory). The unknown electric current density on
the surface of the metallic elements is represented by means of Rao-Wilton-Glisson basis functions, and an
algebraic procedure based on a singular value decomposition is applied to transform such functions
into the classical solenoidal and nonsolenoidal basis functions needed by the original BI-RME technique.
The developed tool also provides an accurate computation of the electromagnetic fields at an arbitrary
observation point of the considered device, so it can be used for predicting high-power breakdown
phenomena. In order to validate the accuracy and efficiency of this novel approach, several new designs
of band-pass waveguides filters are presented. The obtained results (S-parameters and electromagnetic
fields) are successfully compared both to experimental data and to numerical simulations provided by
a commercial software based on the finite element technique. The results obtained show that the new
technique is specially suitable for the efficient full-wave analysis of complex waveguide devices considering
an integrated coaxial excitation, where the coaxial probes may be in contact with the metallic insets of
the component.
This work was supported by the Ministerio de Economia y Competitividad, Spanish Government, under the Research Projects TEC2013-47037-C5-1-R and TEC2013-47037-C5-4-R.
Vidal Pantaleoni, A.; San Blas Oltra, ÁA.; Quesada Pereira, FD.; Pérez Soler, FJ.; Gil Raga, J.; Vicente Quiles, CP.; Gimeno Martinez, B... (2015). Highly efficient full-wave electromagnetic analysis of 3D arbitrarily-shaped waveguide microwave devices using an integral equation technique. Radio Science. 50(7):642-655. https://doi.org/10.1002/2015RS005685 |
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