DocumentCode :
2021119
Title :
Periodically loaded waveguide analysis by propagating and evanescent mode superposition
Author :
Weitsch, Y. ; Eibert, T.F.
Author_Institution :
Lehrstuhl fur Hochfrequenztech., Tech. Univ. Munchen, Munich, Germany
fYear :
2009
fDate :
Sept. 29 2009-Oct. 1 2009
Firstpage :
1271
Lastpage :
1274
Abstract :
A method to retrieve the eigenvalues of periodically loaded waveguides is presented, where the cumbersome eigenvalue problem is converted into a driven problem type by introducing the wave transfer matrix of a periodic unit cell section. The procedure has already been used before, but we extend the formulation to problems, where only evanescent modes can exist in the homogeneous waveguide. Thus, in order to represent left-handed modes on the loaded waveguide, the superimposed evanescent modes of the homogenous waveguide must transport real power, as known from the tunnelling effect. In conclusion, the periodically loaded waveguide modes are constructed by a series expansion of waveguide modes of the homogeneous waveguide resulting in an eigenvalue problem with very few unknowns. Dispersion results for a corrugated rectangular hollow waveguide are shown and compared to reference results from literature.
Keywords :
eigenvalues and eigenfunctions; metamaterials; periodic structures; rectangular waveguides; cumbersome eigenvalue problem; evanescent mode superposition; homogeneous waveguide; homogenous waveguide; left-handed modes; periodically loaded waveguide analysis; rectangular hollow waveguide; superimposed evanescent modes; tunnelling effect; wave transfer matrix; Eigenvalues and eigenfunctions; Hollow waveguides; Loaded waveguides; Magnetic materials; Metamaterials; Microwave propagation; Rectangular waveguides; Scattering; Software tools; Transmission line matrix methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Microwave Conference, 2009. EuMC 2009. European
Conference_Location :
Rome
Print_ISBN :
978-1-4244-4748-0
Type :
conf
Filename :
5296284
Link To Document :
بازگشت